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Beetle

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From Wikipedia, the free encyclopedia
Order of insects
For the car, seeVolkswagen Beetle. For other uses, seeBeetle (disambiguation).
"Beetles" redirects here. For the English rock band, seethe Beatles.
"Coleoptera" redirects here; not to be confused withCoeloptera orCleopatra.

Beetle
Temporal range:299–0 MaEarliestPermianPresent
Clockwise from top left: female golden stag beetle (Lamprima aurata),rhinoceros beetle (Megasoma sp.), long nose weevil (Rhinotia hemistictus), cowboy beetle (Chondropyga dorsalis), and a species ofAmblytelus
Scientific classificationEdit this classification
Domain:Eukaryota
Kingdom:Animalia
Phylum:Arthropoda
Class:Insecta
Clade:Coleopterida
Order:Coleoptera
Linnaeus,1758
Suborders[1]

Seesubgroups of the order Coleoptera

Beetles areinsects that form theorderColeoptera (/klˈɒptərə/), in the superorderHolometabola. Their front pair of wings are hardened into wing-cases,elytra, distinguishing them from most other insects. The Coleoptera, with about 400,000 described species, is the largest of all orders, constituting almost 40% of described insects and 25% of all known animal species;[2] new species are discovered frequently, with estimates suggesting that there are between 0.9 and 2.1 million total species. However, the number of beetle species is challenged by the number of species indipterans (flies) andhymenopterans (wasps).

Found in almost every habitat except the sea and thepolar regions, they interact with theirecosystems in several ways: beetles often feed on plants andfungi, break down animal and plant debris, and eat otherinvertebrates. Some species are serious agricultural pests, such as theColorado potato beetle, while others such asCoccinellidae (ladybirds or ladybugs) eataphids,scale insects,thrips, and other plant-sucking insects that damage crops. Some others also have unusual characteristics, such asfireflies, which use a light-emitting organ for mating and communication purposes.

Beetles typically have a particularly hardexoskeleton including theelytra, though some such as therove beetles have very short elytra whileblister beetles have softer elytra. The generalanatomy of a beetle is quite uniform and typical of insects, although there are several examples of novelty, such as adaptations inwater beetles which trap air bubbles under the elytra for use while diving. Beetles areholometabolans, which means that they undergo completemetamorphosis, with a series of conspicuous and relatively abrupt changes in body structure between hatching and becoming adult after a relatively immobilepupal stage. Some, such asstag beetles, have a markedsexual dimorphism, the males possessing enormously enlargedmandibles which they use to fight other males. Many beetles areaposematic, with bright colors and patterns warning of their toxicity, while others are harmlessBatesian mimics of such insects. Many beetles, including those that live in sandy places, have effectivecamouflage.

Beetles are prominentin human culture, from thesacred scarabs ofancient Egypt tobeetlewing art and use aspets orfighting insects for entertainment and gambling. Many beetle groups are brightly and attractively colored making them objects of collection and decorative displays. Over 300 species areused as food, mostly aslarvae; species widely consumed includemealworms andrhinoceros beetle larvae. However, the major impact of beetles on human life is as agricultural, forestry, and horticulturalpests. Serious pest species include theboll weevil of cotton, theColorado potato beetle, thecoconut hispine beetle, themountain pine beetle, and many others. Most beetles, however, do not cause economic damage and some, such as numerous species oflady beetles, are beneficial by helping to control insect pests. The scientific study of beetles is known ascoleopterology.

Etymology

[edit]
Coleoptera at theState Museum of Natural History, Karlsruhe, Germany

The name of the taxonomic order, Coleoptera, comes from theGreekkoleopteros (κολεόπτερος), given to the group byAristotle for theirelytra, hardened shield-like forewings, fromkoleos, sheath, andpteron, wing. The English name beetle comes from theOld English wordbitela, little biter, related tobītan (to bite),[3][4] leading toMiddle Englishbetylle.[5] Another Old English name for beetle isċeafor, chafer, used in names such ascockchafer, from the Proto-Germanic *kebrô ("beetle"; compare GermanKäfer, Dutchkever, Afrikaanskewer).[6]

Distribution and diversity

[edit]

Beetles are by far the largest order of insects: the roughly 400,000 species make up about 40% of all insect species so far described, and about 25% of all animal species.[1][7][8][9][10][11] A 2015 study provided four independent estimates of the total number of beetle species, giving a mean estimate of some 1.5 million with a "surprisingly narrow range"[12] spanning all four estimates from a minimum of 0.9 to a maximum of 2.1 million beetle species. The four estimates made use of host-specificity relationships (1.5 to 1.9 million), ratios with other taxa (0.9 to 1.2 million), plant:beetle ratios (1.2 to 1.3), and extrapolations based on body size by year of description (1.7 to 2.1 million).[12][13]

This immense diversity led the evolutionary biologistJ. B. S. Haldane to quip, when sometheologians asked him what could be inferred about the mind of theChristian God from the works of His Creation, "An inordinate fondness for beetles".[14]

However, the ranking of beetles as most diverse has been challenged. Multiple studies posit that Diptera (flies) and/or Hymenoptera (sawflies, wasps, ants and bees) may have more species.[15][16][17]

Beetles are found in nearly all habitats, including freshwater and coastal habitats, wherever vegetative foliage is found, from trees and their bark to flowers, leaves, and underground near roots - even inside plants in galls, in every plant tissue, including dead or decaying ones.[18] Tropical forest canopies have a large and diverse fauna of beetles,[19] includingCarabidae,[20]Chrysomelidae,[21] andScarabaeidae.[22]

The heaviest beetle, indeed the heaviest insect stage, is thelarva of thegoliath beetle,Goliathus goliatus, which can attain a mass of at least 115 g (4.1 oz) and a length of 11.5 cm (4.5 in). Adult male goliath beetles are the heaviest beetle in its adult stage, weighing 70–100 g (2.5–3.5 oz) and measuring up to 11 cm (4.3 in).[23] Adultelephant beetles,Megasoma elephas andMegasoma actaeon often reach 50 g (1.8 oz) and 10 cm (3.9 in).[24]

The longest beetle is theHercules beetleDynastes hercules, with a maximum overall length of at least 16.7 cm (6.6 in) including the very longpronotal horn. The smallest recorded beetle and the smallest free-living insect (as of 2015[update]), is thefeatherwing beetleScydosella musawasensis which may measure as little as 325 μm in length.[25]

Evolution

[edit]

Late Paleozoic and Triassic

[edit]
Fossil and life restoration ofMoravocoleus permianus (Tshekardocoleidae) from the Early Permian of the Czech Republic, representative of the morphology of early beetles

The oldest known beetle isColeopsis, from the earliest Permian (Asselian) of Germany, around 295 million years ago.[26] Early beetles from the Permian, which are collectively grouped into the "Protocoleoptera" are thought to have beenxylophagous (wood eating) andwood boring. Fossils from this time have been found in Siberia and Europe, for instance in the red slate fossil beds of Niedermoschel near Mainz, Germany.[27] Further fossils have been found in Obora, Czech Republic and Tshekarda in the Ural mountains, Russia.[28] However, there are only a few fossils from North America before themiddle Permian, although both Asia and North America had been united toEuramerica. The first discoveries from North America made in theWellington Formation of Oklahoma were published in 2005 and 2008.[29][30] The earliest members of modern beetle lineages appeared during theLate Permian. In thePermian–Triassic extinction event at the end of the Permian, most "protocoleopteran" lineages became extinct. Beetle diversity did not recover to pre-extinction levels until theMiddle Triassic.[31]

Jurassic

[edit]
Beetlegenera were mainly saprophages (detritivores) in thePermian andTriassic. During theJurassic,herbivorous and thencarnivorous genera became more common. In theCenozoic, genera at all threetrophic levels became far more numerous.

During theJurassic (210 to 145 mya), there was a dramatic increase in the diversity of beetle families,[29] including the development and growth of carnivorous and herbivorous species. TheChrysomeloidea diversified around the same time, feeding on a wide array of plant hosts fromcycads andconifers toangiosperms.[32] Close to the Upper Jurassic, the Cupedidae decreased, but the diversity of the early plant-eating species increased. Most recent plant-eating beetles feed on flowering plants or angiosperms, whose success contributed to a doubling of plant-eating species during theMiddle Jurassic. However, the increase of the number of beetle families during the Cretaceous does not correlate with the increase of the number of angiosperm species.[33] Around the same time, numerous primitive weevils (e.g.Curculionoidea) and click beetles (e.g.Elateroidea) appeared. The first jewel beetles (e.g.Buprestidae) are present, but they remained rare until the Cretaceous.[34][35][36] The first scarab beetles were not coprophagous but presumably fed on rotting wood with the help of fungus; they are an early example of amutualistic relationship.

There are more than 150 important fossil sites from the Jurassic, the majority in Eastern Europe and North Asia. Outstanding sites includeSolnhofen in UpperBavaria, Germany,[37] Karatau in SouthKazakhstan,[38] the Yixian formation inLiaoning, North China,[39] as well as the Jiulongshan formation and further fossil sites inMongolia. In North America there are only a few sites with fossil records of insects from the Jurassic, namely the shell limestone deposits in the Hartford basin, the Deerfield basin and the Newark basin.[29][40]

Cretaceous

[edit]

TheCretaceous saw the fragmenting of the southern landmass, with the opening of the southern Atlantic Ocean and the isolation of New Zealand, while South America, Antarctica, and Australia grew more distant.[32] The diversity of Cupedidae andArchostemata decreased considerably. Predatory ground beetles (Carabidae) and rove beetles (Staphylinidae) began to distribute into different patterns; theCarabidae predominantly occurred in the warm regions, while theStaphylinidae andclick beetles (Elateridae) preferred temperate climates. Likewise, predatory species ofCleroidea andCucujoidea hunted their prey under the bark of trees together with thejewel beetles (Buprestidae). The diversity of jewel beetles increased rapidly, as they were the primary consumers of wood,[41] whilelonghorn beetles (Cerambycidae) were rather rare: their diversity increased only towards the end of the Upper Cretaceous.[29] The first coprophagous beetles are from the Upper Cretaceous[42] and may have lived on the excrement of herbivorous dinosaurs.[43] The first species where both larvae and adults are adapted to an aquatic lifestyle are found. Whirligig beetles (Gyrinidae) were moderately diverse, although other early beetles (e.g. Dytiscidae) were less, with the most widespread being the species ofCoptoclavidae, which preyed on aquatic fly larvae.[29]A 2020 review of the palaeoecological interpretations of fossil beetles from Cretaceous ambers has suggested thatsaproxylicity was the most common feeding strategy, withfungivorous species in particular appearing to dominate.[44]

Many fossil sites worldwide contain beetles from the Cretaceous. Most are in Europe and Asia and belong to the temperate climate zone during the Cretaceous.[39] Lower Cretaceous sites include the Crato fossil beds in the Araripe basin in theCeará, North Brazil, as well as overlying Santana formation; the latter was near the equator at that time. In Spain, important sites are nearMontsec andLas Hoyas. In Australia, the Koonwarra fossil beds of the Korumburra group,South Gippsland, Victoria, are noteworthy. Major sites from the Upper Cretaceous include Kzyl-Dzhar in South Kazakhstan and Arkagala in Russia.[29]

Cenozoic

[edit]
Fossilbuprestid beetle from theEocene (50 mya)Messel pit, which retains itsstructural color[45]

Beetle fossils are abundant in the Cenozoic; by theQuaternary (up to 1.6 mya), fossil species are identical to living ones, while from theLate Miocene (5.7 mya) the fossils are still so close to modern forms that they are most likely the ancestors of living species. Thelarge oscillations in climate during the Quaternary caused beetles to change their geographic distributions so much that current location gives little clue to the biogeographical history of a species. It is evident that geographic isolation of populations must often have been broken as insects moved under the influence of changing climate, causing mixing of gene pools, rapid evolution, and extinctions, especially in middle latitudes.[46]

Phylogeny

[edit]

The very large number of beetle species poses special problems forclassification. Some families contain tens of thousands of species, and need to be divided into subfamilies and tribes.Polyphaga is the largest suborder, containing more than 300,000 described species in more than 170 families, includingrove beetles (Staphylinidae), scarab beetles (Scarabaeidae),blister beetles (Meloidae),stag beetles (Lucanidae) and true weevils (Curculionidae).[10][47] These polyphagan beetle groups can be identified by the presence of cervicalsclerites (hardened parts of the head used as points of attachment for muscles) absent in the other suborders.[48]Adephaga contains about 10 families of largely predatory beetles, includesground beetles (Carabidae), water beetles (Dytiscidae) andwhirligig beetles (Gyrinidae). In these insects, thetestes are tubular and the first abdominal sternum (a plate of theexoskeleton) is divided by the hindcoxae (the basal joints of the beetle's legs).[49]Archostemata contains four families of mainly wood-eating beetles, includingreticulated beetles (Cupedidae) and thetelephone-pole beetle.[50]The Archostemata have an exposed plate called the metatrochantin in front of the basal segment or coxa of the hind leg.[51]Myxophaga contains about 65 described species in four families, mostly very small, includingHydroscaphidae and the genusSphaerius.[52] The myxophagan beetles are small and mostly alga-feeders. Their mouthparts are characteristic in lacking galeae and having a mobile tooth on their left mandible.[53]

The consistency of beetlemorphology, in particular their possession ofelytra, has long suggested that Coleoptera ismonophyletic, though there have been doubts about the arrangement of thesuborders, namely theAdephaga,Archostemata,Myxophaga andPolyphaga within thatclade.[54][32][55][56][57] The twisted-wing parasites,Strepsiptera, are thought to be a sister group to the beetles, having split from them in theEarly Permian.[56][58][59][60]

Molecular phylogenetic analysis confirms that the Coleoptera are monophyletic. Duane McKenna et al. (2015) used eight nuclear genes for 367 species from 172 of 183 Coleopteran families. They split the Adephaga into 2 clades, Hydradephaga and Geadephaga, broke up the Cucujoidea into 3 clades, and placed the Lymexyloidea within the Tenebrionoidea. The Polyphaga appear to date from the Triassic. Most extant beetle families appear to have arisen in the Cretaceous.[60] Thecladogram is based on McKenna (2015).[60] The number of species in each group (mainly superfamilies) is shown in parentheses, and boldface if over 10,000.[61] English common names are given where possible. Dates of origin of major groups are shown in italics in millions of years ago (mya).[61]

Coleoptera

Archostemata (40)

160 mya

Myxophaga (94)

220 mya
240 mya
Adephaga

Hydradephaga (5,560) e.g.Dytiscidae (diving beetles)

Geadephaga (35,000) e.g.Carabidae (ground beetles)

200 mya
Polyphaga

Scirtoidea (800) +Derodontoidea (29)

200 mya

Staphylinoidea (48,000, rove beetles and allies)

195 mya

Scarabaeoidea (35,000, scarabs, stag beetles, etc.)

145 mya

Hydrophiloidea (2,800, water scavenger beetles)

Histeroidea (3,800, clown beetles)

Elateriformia

Nosodendridae (70)

Dascilloidea (180)

Buprestoidea (14,000, jewel beetles)

Byrrhoidea (400, pill and turtle beetles, etc.)

Elateroidea (23,000, click and soldier beetles, fireflies)

190 mya

Bostrichoidea (3150, deathwatch, powderpost and skin beetles)

Cucujiformia

Coccinelloidea (6,000, ladybirds or lady beetles)

Tenebrionoidea (35,000, leaf/flower beetles, etc.) andLymexyloidea

180 mya

Cleroidea (9,900, checkered beetles and allies)

Cucujoidea (8,000)

Phytophaga
Chrysomeloidea

Chrysomelidae (35,000, leaf beetles)

Cerambycidae (25,000, longhorn beetles)

Curculionoidea (97,000, weevils)

170 mya
190 mya
225 mya
285 mya

External morphology

[edit]
Beetle body structure, usingcockchafer. A: head, B: thorax, C: abdomen. 1: antenna, 2: compound eye, 3: femur, 4: elytron (wing cover), 5: tibia, 6: tarsus, 7: claws, 8: mouthparts, 9: prothorax, 10: mesothorax, 11: metathorax, 12: abdominal sternites, 13: pygidium.

Beetles are generally characterized by a particularly hardexoskeleton and hard forewings (elytra) not usable for flying. Almost all beetles have mandibles that move in a horizontal plane. The mouthparts are rarely suctorial, though they are sometimes reduced; the maxillae always bear palps. The antennae usually have 11 or fewer segments, except in some groups like the Cerambycidae (longhorn beetles) and the Rhipiceridae (cicada parasite beetles). The coxae of the legs are usually located recessed within a coxal cavity. The genitalic structures are telescoped into the last abdominal segment in all extant beetles. Beetle larvae can often be confused with those of other holometabolan groups.[51] The beetle's exoskeleton is made up of numerous plates, calledsclerites, separated by thin sutures. This design provides armored defenses while maintaining flexibility. The generalanatomy of a beetle is quite uniform, although specific organs andappendages vary greatly in appearance and function between the many families in the order. Like all insects, beetles' bodies are divided into three sections: the head, the thorax, and the abdomen.[8] Because there are so many species, identification is quite difficult, and relies on attributes including the shape of the antennae, thetarsal formulae[a] and shapes of these small segments on the legs, the mouthparts, and the ventral plates (sterna, pleura, coxae). In many species accurate identification can only be made by examination of the unique male genitalic structures.[62]

Head

[edit]
Front view of the head ofLamia textor

The head, having mouthparts projecting forward or sometimes downturned, is usually heavilysclerotized and is sometimes very large.[7] The eyes arecompound and may display remarkable adaptability, as in the case of the aquatic whirligig beetles (Gyrinidae), where they are split to allow a view both above and below the waterline. A fewLonghorn beetles (Cerambycidae) and weevils as well as some fireflies (Rhagophthalmidae)[63] have divided eyes, while many have eyes that are notched, and a few haveocelli, small, simpleeyes usually farther back on the head (on thevertex); these are more common in larvae than in adults.[64] The anatomical organization of the compound eyes may be modified and depends on whether a species is primarily crepuscular, or diurnally or nocturnally active.[65] Ocelli are found in the adult carpet beetle (as a single central ocellus inDermestidae), some rove beetles (Omaliinae), and theDerodontidae.[64]

Polyphylla fullo has distinctive fan-likeantennae, one of several distinct forms for the appendages among beetles.

Beetleantennae are primarily organs of sensory perception and can detect motion, odor and chemical substances,[66] but may also be used to physically feel a beetle's environment. Beetle families may use antennae in different ways. For example, when moving quickly, tiger beetles may not be able to see very well and instead hold their antennae rigidly in front of them in order to avoid obstacles.[67]Certain Cerambycidae use antennae to balance, and blister beetles may use them for grasping. Some aquatic beetle species may use antennae for gathering air and passing it under the body whilst submerged. Equally, some families use antennae during mating, and a few species use them for defense. In the cerambycidOnychocerus albitarsis, the antennae have venom injecting structures used in defense, which is unique amongarthropods.[68] Antennae vary greatly in form, sometimes between the sexes, but are often similar within any given family. Antennae may beclubbed,threadlike,angled,shaped like a string of beads,comb-like (either on one side or both, bipectinate), ortoothed. The physical variation of antennae is important for the identification of many beetle groups. The Curculionidae have elbowed or geniculate antennae. Feather like flabellate antennae are a restricted form found in the Rhipiceridae and a few other families. The Silphidae have a capitate antennae with a spherical head at the tip. The Scarabaeidae typically have lamellate antennae with the terminal segments extended into long flat structures stacked together. The Carabidae typically have thread-like antennae. The antennae arises between the eye and the mandibles and in the Tenebrionidae, the antennae rise in front of a notch that breaks the usually circular outline of the compound eye. They are segmented and usually consist of 11 parts, the first part is called the scape and the second part is the pedicel. The other segments are jointly called the flagellum.[66][69][70]

Beetles havemouthparts like those ofgrasshoppers. Themandibles appear as large pincers on the front of some beetles. The mandibles are a pair of hard, often tooth-like structures that move horizontally to grasp, crush, or cut food or enemies (seedefence, below). Two pairs of finger-like appendages, the maxillary and labial palpi, are found around the mouth in most beetles, serving to move food into the mouth. In many species, the mandibles are sexually dimorphic, with those of the males enlarged enormously compared with those of females of the same species.[7]

Thorax

[edit]

The thorax issegmented into the two discernible parts, the pro- and pterothorax. The pterothorax is the fused meso- and metathorax, which are commonly separated in other insect species, although flexibly articulate from the prothorax. When viewed from below, the thorax is that part from which all three pairs of legs and both pairs of wings arise. The abdomen is everything posterior to the thorax.[8] When viewed from above, most beetles appear to have three clear sections, but this is deceptive: on the beetle's upper surface, the middle section is a hard plate called thepronotum, which is only the front part of the thorax; the back part of the thorax is concealed by the beetle'swings. This further segmentation is usually best seen on the abdomen.[citation needed][71]

Acilius sulcatus, a diving beetle with hind legs adapted asswimming limbs

Legs

[edit]

The multisegmentedlegs end in two to five small segments called tarsi. Like many other insect orders, beetles have claws, usually one pair, on the end of the last tarsal segment of each leg. While most beetles use their legs for walking, legs have been variously adapted for other uses. Aquatic beetles including theDytiscidae (diving beetles),Haliplidae, and many species ofHydrophilidae, the legs, often the last pair, are modified for swimming, typically with rows of long hairs. Male diving beetles have suctorial cups on their forelegs that they use to grasp females.[72] Other beetles havefossorial legs widened and often spined for digging. Species with such adaptations are found among the scarabs, ground beetles, andclown beetles (Histeridae). The hind legs of some beetles, such asflea beetles (within Chrysomelidae) and flea weevils (within Curculionidae), have enlarged femurs that help them leap.[73]

Wings

[edit]
Checkered beetleTrichodes alvearius taking off, showing the hard elytra (forewings adapted as wing-cases) held stiffly away from the flight wings

The forewings of beetles are not used forflight, but form elytra which cover the hind part of the body and protect the hindwings. The elytra are usually hard shell-like structures which must be raised to allow the hindwings to move for flight.[74] However, in the soldier beetles (Cantharidae), the elytra are soft, earning this family the name of leatherwings.[75] Other soft wing beetles include thenet-winged beetleCalopteron discrepans, which has brittle wings that rupture easily in order to release chemicals for defense.[76]

Beetles' flight wings are crossed with veins and are folded after landing, often along these veins, and stored below the elytra. A fold (jugum) of the membrane at the base of each wing is characteristic.[74] Some beetles have lost the ability to fly. These include some ground beetles (Carabidae) and some true weevils (Curculionidae), as well as desert- and cave-dwelling species of other families. Many have the two elytra fused together, forming a solid shield over the abdomen. In a few families, both the ability to fly and the elytra have been lost, as in theglow-worms (Phengodidae), where the femalesresemble larvae throughout their lives.[77] The presence of elytra and wings does not always indicate that the beetle will fly. For example, thetansy beetle walks between habitats despite being physically capable of flight.[78]

Abdomen

[edit]

Theabdomen is the section behind the metathorax, made up of a series of rings, each with a hole for breathing and respiration, called aspiracle, composing three different segmented sclerites: the tergum, pleura, and the sternum. The tergum in almost all species is membranous, or usually soft and concealed by the wings and elytra when not in flight. The pleura are usually small or hidden in some species, with each pleuron having a single spiracle. The sternum is the most widely visible part of the abdomen, being a more or less sclerotized segment. The abdomen itself does not have any appendages, but some (for example,Mordellidae) have articulating sternal lobes.[79]

Anatomy and physiology

[edit]
A beetle's body systems

Digestive system

[edit]

Thedigestive system of beetles is primarily adapted for a herbivorous diet. Digestion takes place mostly in the anteriormidgut, although in predatory groups like theCarabidae, most digestion occurs in the crop by means of midgut enzymes. In theElateridae, the larvae are liquid feeders that extraorally digest their food by secreting enzymes.[8] The alimentary canal basically consists of a short, narrowpharynx, a widened expansion, the crop, and a poorly developedgizzard. This is followed by the midgut, that varies in dimensions between species, with a large amount ofcecum, and the hindgut, with varying lengths. There are typically four to sixMalpighian tubules.[7]

Nervous system

[edit]

Thenervous system in beetles contains all the types found in insects, varying between different species, from three thoracic and seven or eight abdominal ganglia which can be distinguished to that in which all the thoracic and abdominal ganglia are fused to form a composite structure.[8]

Respiratory system

[edit]
Dytiscusspiracles (right) on upper side of abdomen, normally covered by the elytra, are in contact with an air bubble when the beetle dives.

Like most insects, beetles inhale air, for theoxygen it contains, and exhalecarbon dioxide, via atracheal system. Air enters the body throughspiracles, and circulates within the haemocoel in a system oftracheae and tracheoles, through whose walls the gases can diffuse.[8]

Diving beetles, such as theDytiscidae, carry a bubble of air with them when they dive. Such a bubble may be contained under the elytra or against the body by specializedhydrophobic hairs. The bubble covers at least some of the spiracles, permitting air to enter the tracheae.[8] The function of the bubble is not only to contain a store of air but to act as aphysical gill. The air that it traps is in contact with oxygenated water, so as the animal's consumption depletes the oxygen in the bubble, more oxygen can diffuse in to replenish it.[80] Carbon dioxide is more soluble in water than either oxygen or nitrogen, so it readily diffuses out faster than in. Nitrogen is the most plentiful gas in the bubble, and the least soluble, so it constitutes a relatively static component of the bubble and acts as a stable medium for respiratory gases to accumulate in and pass through. Occasional visits to the surface are sufficient for the beetle to re-establish the constitution of the bubble.[81]

Circulatory system

[edit]

Like other insects, beetles haveopen circulatory systems, based onhemolymph rather than blood. As in other insects, a segmented tube-like heart is attached to the dorsal wall of thehemocoel. It has paired inlets orostia at intervals down its length, and circulates the hemolymph from the main cavity of the haemocoel and out through the anterior cavity in the head.[82]

Specialized organs

[edit]

Different glands are specialized for different pheromones to attract mates. Pheromones from species ofRutelinae are produced fromepithelial cells lining the inner surface of the apical abdominal segments; amino acid-based pheromones ofMelolonthinae are produced from eversible glands on the abdominal apex. Other species produce different types of pheromones.Dermestids produceesters, and species ofElateridae producefatty acid-derived aldehydes andacetates.[8] To attract a mate, fireflies (Lampyridae) use modified fat body cells with transparent surfaces backed with reflective uric acid crystals to produce light bybioluminescence. Light production is highly efficient, by oxidation ofluciferin catalyzed by enzymes (luciferases) in the presence ofadenosine triphosphate (ATP) and oxygen, producingoxyluciferin, carbon dioxide, and light.[8]

Tympanal organs or hearing organs consist of a membrane (tympanum) stretched across a frame backed by an air sac and associated sensory neurons, are found in two families.[83] Several species of the genusCicindela (Carabidae) have hearing organs on the dorsal surfaces of their first abdominal segments beneath the wings; two tribes in theDynastinae (within theScarabaeidae) have hearing organs just beneath their pronotal shields or neck membranes. Both families are sensitive to ultrasonic frequencies, with strong evidence indicating they function to detect the presence of bats by their ultrasonic echolocation.[8]

Reproduction and development

[edit]

Beetles are members of thesuperorderHolometabola, and accordingly most of them undergo completemetamorphosis. The typical form of metamorphosis in beetles passes through four main stages: theegg, thelarva, thepupa, and theimago or adult.[84] The larvae are commonly calledgrubs and the pupa sometimes is called the chrysalis. In some species, the pupa may be enclosed in a cocoon constructed by the larva towards the end of its finalinstar. Some beetles, such as typical members of the familiesMeloidae andRhipiphoridae, go further, undergoinghypermetamorphosis in which the first instar takes the form of atriungulin.[85]

Mating

[edit]
Punctate flower chafers (Neorrhina punctata, Scarabaeidae) mating

Some beetles have intricate mating behaviour.Pheromone communication is often important in locating a mate.Different species use different pheromones.Scarab beetles such as theRutelinae use pheromones derived fromfatty acid synthesis and others use pheromones from organic compounds, while other scarabs such as theMelolonthinae useamino acids and terpenoids. Another way beetles find mates is seen in thefireflies (Lampyridae) which arebioluminescent, with abdominal light-producing organs. The males and females engage in a complex dialog before mating; each species has a unique combination of flight patterns, duration, composition, and intensity of the light produced.[8]

Before mating, males and females may stridulate, or vibrate the objects they are on. In the Meloidae, the male climbs onto the dorsum of the female and strokes his antennae on her head, palps, and antennae. InEupompha, the male draws his antennae along his longitudinal vertex. They may not mate at all if they do not perform the precopulatory ritual.[8] This mating behavior may be different amongst dispersed populations of the same species. For example, the mating of aRussian population oftansy beetle (Chrysolina graminis) is preceded by an elaborate ritual involving the male tapping the female's eyes, pronotum and antennae with its antennae, which is not evident in the population of this species in theUnited Kingdom.[86]

In another example, theintromittent organ of malethistle tortoise beetles is a long, tube-like structure called theflagellum which is thin and curved. When not in use, the flagellum is stored inside theabdomen of the male and can extend out to be longer than the male when needed. During mating, this organ bends to the complex shape of the femalereproductive organ, which includes a coiled duct that the male must penetrate with the organ. Furthermore, these physical properties of the thistle tortioise beetle have been studied because the ability of a thin, flexible structure to harden without buckling or rupturing is mechanically challenging and may have important implications for the development of microscopiccatheters in modern medicine.[87]

Competition can play a part in the mating rituals of species such asburying beetles (Nicrophorus), the insects fighting to determine which can mate. Many male beetles areterritorial and fiercely defend their territories from intruding males. In such species, the male often has horns on the head or thorax, making its body length greater than that of a female. Copulation is generally quick, but in some cases lasts for several hours. During copulation,sperm cells are transferred to the female tofertilize the egg.[7]

Life cycle

[edit]
The life cycle of thestag beetle includes threeinstars.

Egg

[edit]

Essentially all beetles lay eggs, though somemyrmecophilousAleocharinae and someChrysomelinae which live in mountains or the subarctic areovoviviparous, laying eggs which hatch almost immediately.[84] Beetle eggs generally have smooth surfaces and are soft, though theCupedidae have hard eggs. Eggs vary widely between species: the eggs tend to be small in species with many instars (larval stages), and in those that lay large numbers of eggs.A female may lay from several dozen to several thousand eggs during her lifetime, depending on the extent of parental care. This ranges from the simple laying of eggs under a leaf, to the parental care provided byscarab beetles, which house, feed and protect their young. TheAttelabidae roll leaves and lay their eggs inside the roll for protection.[8][88]

Larva

[edit]

Thelarva is usually the principal feeding stage of the beetlelife cycle. Larvae tend to feed voraciously once they emerge from their eggs. Some feed externally on plants, such as those of certain leaf beetles, while others feed within their food sources. Examples of internal feeders are mostBuprestidae and longhorn beetles. The larvae of many beetle families are predatory like the adults (ground beetles, ladybirds, rove beetles). The larval period varies between species, but can be as long as several years. The larvae ofskin beetles undergo a degree of reversed development when starved, and later grow back to the previously attained level of maturity. The cycle can be repeated many times (seeBiological immortality).[89] Larval morphology is highly varied amongst species, with well-developed and sclerotized heads, distinguishable thoracic and abdominal segments (usually the tenth, though sometimes the eighth or ninth).[7]

Scarabaeiform larva ofHercules beetle

Beetle larvae can be differentiated from other insect larvae by their hardened, often darkened heads, the presence of chewing mouthparts, andspiracles along the sides of their bodies. Like adult beetles, the larvae are varied in appearance, particularly between beetle families. Beetles with somewhat flattened, highly mobile larvae include the ground beetles and rove beetles; their larvae are described as campodeiform. Some beetle larvae resemble hardened worms with dark head capsules and minute legs. These are elateriform larvae, and are found in theclick beetle (Elateridae) anddarkling beetle (Tenebrionidae) families. Some elateriform larvae of click beetles are known as wireworms. Beetles in theScarabaeoidea have short, thick larvae described as scarabaeiform, more commonly known as grubs.[90]

All beetle larvae go through severalinstars, which are the developmental stages between eachmoult. In many species, the larvae simply increase in size with each successive instar as more food is consumed. In some cases, however, more dramatic changes occur. Among certain beetle families or genera, particularly those that exhibit parasitic lifestyles, the first instar (theplanidium) is highly mobile to search out a host, while the following instars are more sedentary and remain on or within their host. This is known ashypermetamorphosis; it occurs in theMeloidae,Micromalthidae, andRipiphoridae.[91] The blister beetleEpicauta vittata (Meloidae), for example, has three distinct larval stages. Its first stage, thetriungulin, has longer legs to go in search of the eggs of grasshoppers. After feeding for a week it moults to the second stage, called the caraboid stage, which resembles the larva of acarabid beetle. In another week it moults and assumes the appearance of ascarabaeid larva—the scarabaeidoid stage. Its penultimate larval stage is the pseudo-pupa or the coarcate larva, which will overwinter and pupate until the next spring.[92]

The larval period can vary widely. A fungus feeding staphylinidPhanerota fasciata undergoes three moults in 3.2 days at room temperature whileAnisotoma sp. (Leiodidae) completes its larval stage in the fruiting body of slime mold in 2 days and possibly represents the fastest growing beetles. Dermestid beetles,Trogoderma inclusum can remain in an extended larval state under unfavourable conditions, even reducing their size between moults. A larva is reported to have survived for 3.5 years in an enclosed container.[8]

Pupa and adult

[edit]
The ivory-marked beetle,Eburia quadrigeminata, may live up to 40 years inside thehardwoods on which the larva feeds.

As with all holometabolans, beetle larvae pupate, and from thesepupae emerge fully formed, sexually mature adult beetles, orimagos. Pupae never have mandibles (they areadecticous). In most pupae, the appendages are not attached to the body and are said to beexarate; in a few beetles (Staphylinidae, Ptiliidae etc.) the appendages are fused with the body (termed asobtect pupae).[7]

Adults have extremely variable lifespans, from weeks to years, depending on the species.[7][51] Some wood-boring beetles can have extremely long life-cycles. It is believed that when furniture or house timbers are infested by beetle larvae, the timber already contained the larvae when it was first sawn up. Abirch bookcase 40 years old released adultEburia quadrigeminata (Cerambycidae), whileBuprestis aurulenta and otherBuprestidae have been documented as emerging as much as 51 years after manufacture of wooden items.[93]

Behaviour

[edit]

Locomotion

[edit]
Photinus pyralis, firefly, in flight

The elytra allow beetles to both fly and move through confined spaces, doing so by folding the delicate wings under the elytra while not flying, and folding their wings out just before takeoff. The unfolding and folding of the wings is operated by muscles attached to the wing base; as long as the tension on the radial and cubital veins remains, the wings remain straight.[8] Some beetle species (manyCetoniinae; someScarabaeinae,Curculionidae andBuprestidae) fly with the elytra closed, with the metathoracic wings extended under the lateral elytra margins.[94] The altitude reached by beetles in flight varies. One study investigating the flight altitude of the ladybird speciesCoccinella septempunctata andHarmonia axyridis using radar showed that, whilst the majority in flight over a single location were at 150–195 m above ground level, some reached altitudes of over 1100 m.[95]

Many rove beetles have greatly reduced elytra, and while they are capable of flight, they most often move on the ground: their soft bodies and strong abdominal muscles make them flexible, easily able to wriggle into small cracks.[96]

Aquatic beetles use several techniques for retaining air beneath the water's surface. Diving beetles (Dytiscidae) hold air between the abdomen and the elytra when diving. Hydrophilidae have hairs on their under surface that retain a layer of air against their bodies. Adult crawlingwater beetles use both their elytra and their hindcoxae (the basal segment of the back legs) in air retention, whilewhirligig beetles simply carry an air bubble down with them whenever they dive.[97]

Communication

[edit]

Beetles have a variety of ways to communicate, including the use ofpheromones. Themountain pine beetle emits a pheromone to attract other beetles to a tree. The mass of beetles are able to overcome the chemical defenses of the tree. After the tree's defenses have been exhausted, the beetles emit an anti-aggregation pheromone. This species canstridulate to communicate,[98] but others may use sound to defend themselves when attacked.[99]

Parental care

[edit]
A dung beetle rolling dung

Parental care is found in a few families[100] of beetle, perhaps for protection against adverse conditions and predators.[8] The rove beetleBledius spectabilis lives insalt marshes, so the eggs and larvae are endangered by the risingtide. The maternal beetle patrols the eggs and larvae, burrowing to keep them from flooding andasphyxiating, and protects them from the predatory carabid beetleDicheirotrichus gustavii and from theparasitoidal waspBarycnemis blediator, which kills some 15% of the larvae.[101]

Burying beetles are attentive parents, and participate in cooperative care and feeding of their offspring. Both parents work to bury small animal carcass to serve as a food resource for their young and build a brood chamber around it. The parents prepare the carcass and protect it from competitors and from early decomposition. After their eggs hatch, the parents keep the larvae clean of fungus and bacteria and help the larvae feed by regurgitating food for them.[102]

Somedung beetles provide parental care, collecting herbivore dung and laying eggs within that food supply, an instance ofmass provisioning. Some species do not leave after this stage, but remain to safeguard their offspring.[103]

Most species of beetles do not display parental care behaviors after the eggs have been laid.[104]

Subsociality, where females guard their offspring, is well-documented in two families of Chrysomelidae, Cassidinae and Chrysomelinae.[105][106][107][108][109]

Eusociality

[edit]

Eusociality involves cooperative brood care (including brood care of offspring from other individuals), overlapping generations within a colony of adults, and a division of labor into reproductive and non-reproductive groups.[110] Few organisms outsideHymenoptera exhibit this behavior; the only beetle to do so is the weevilAustroplatypus incompertus.[111] ThisAustralian species lives in horizontal networks of tunnels, in theheartwood ofEucalyptus trees. It is one of more than 300 species of wood-boringAmbrosia beetles which distribute the spores of ambrosia fungi.[112] The fungi grow in the beetles' tunnels, providing food for the beetles and their larvae; female offspring remain in the tunnels and maintain the fungal growth, probably never reproducing.[112][111] Cooperative brood care is also found in the bess beetles (Passalidae) where the larvae feed on the semi-digested faeces of the adults.[113]

Feeding

[edit]
Hycleus sp. (Meloidae) feeding on the petals ofIpomoea carnea

Beetles are able to exploit a wide diversity of food sources available in their many habitats. Some areomnivores, eating both plants and animals. Other beetles are highly specialized in their diet. Many species of leaf beetles, longhorn beetles, and weevils are very host-specific, feeding on only a single species of plant.Ground beetles androve beetles (Staphylinidae), among others, are primarily carnivorous and catch and consume many otherarthropods and small prey, such as earthworms and snails. While most predatory beetles are generalists, a few species have more specific prey requirements or preferences.[114] In some species, digestive ability relies upon asymbiotic relationship withfungi - some beetles have yeasts living their guts, including some yeasts previously undiscovered anywhere else.[115]

Decaying organic matter is a primary diet for many species. This can range fromdung, which is consumed bycoprophagous species (such as certainscarab beetles in theScarabaeidae), to dead animals, which are eaten bynecrophagous species (such as thecarrion beetles,Silphidae). Some beetles found in dung and carrion are in fact predatory. These include members of theHisteridae andSilphidae, preying on the larvae ofcoprophagous andnecrophagous insects.[116] Many beetles feed under bark, some feed on wood while others feed on fungi growing on wood or leaf-litter. Some beetles have specialmycangia, structures for the transport of fungal spores.[117]

Ecology

[edit]
Acamouflagedlonghorn beetle,Ecyrus dasycerus

Anti-predator adaptations

[edit]

Beetles, both adults and larvae, are the prey of many animalpredators includingmammals frombats torodents,birds,lizards,amphibians,fishes,dragonflies,robberflies,reduviid bugs,ants, other beetles, andspiders.[118][119] Beetles use a variety ofanti-predator adaptations to defend themselves. These includecamouflage andmimicry against predators that hunt by sight, toxicity, and defensive behaviour.

Camouflage

[edit]
Further information:Camouflage

Camouflage is common and widespread among beetle families, especially those that feed on wood or vegetation, such asleaf beetles (Chrysomelidae, which are often green) andweevils. In some species, sculpturing or various colored scales or hairs cause beetles such as theavocado weevilHeilipus apiatus to resemble bird dung or other inedible objects.[118] Many beetles that live in sandy environments blend in with the coloration of that substrate.[120]

Mimicry and aposematism

[edit]
Clytus arietis (Cerambycidae), aBatesian mimic of wasps
Further information:Mimicry andAposematism

Somelonghorn beetles (Cerambycidae) are effectiveBatesian mimics ofwasps. Beetles may combine coloration with behavioural mimicry, acting like the wasps they already closely resemble. Many other beetles, includingladybirds,blister beetles, andlycid beetles secrete distasteful or toxic substances to make them unpalatable or poisonous, and are oftenaposematic, where bright or contrastingcoloration warn off predators; many beetles and other insects mimic these chemically protected species.[121]

Blister beetles such asHycleus have brilliantaposematic coloration, warning of their toxicity.
The bloody-nosed beetle,Timarcha tenebricosa,defending itself by releasing a droplet of noxious red liquid (base of leg, on right)

Chemical defense is important in some species, usually being advertised by bright aposematic colors. SomeTenebrionidae use their posture for releasing noxious chemicals to warn off predators. Chemical defenses may serve purposes other than just protection from vertebrates, such as protection from a wide range of microbes. Some species sequester chemicals from the plants they feed on, incorporating them into their own defenses.[120]

Other species have special glands to produce deterrent chemicals. The defensive glands of carabid ground beetles produce a variety ofhydrocarbons,aldehydes,phenols,quinones,esters, andacids released from an opening at the end of the abdomen. African carabid beetles (for example,Anthia) employ the same chemicals as ants:formic acid.[121]Bombardier beetles have well-developed pygidial glands that empty from the sides of the intersegment membranes between the seventh and eighth abdominal segments. The gland is made of two containing chambers, one forhydroquinones andhydrogen peroxide, the other holding hydrogen peroxide andcatalase enzymes. These chemicals mix and result in an explosive ejection, reaching a temperature of around 100 °C (212 °F), with the breakdown of hydroquinone to hydrogen, oxygen, and quinone. The oxygen propels the noxious chemical spray as a jet that can be aimed accurately at predators.[8]

Other defenses

[edit]

Large ground-dwelling beetles such asCarabidae, therhinoceros beetle and the longhorn beetles defend themselves using strongmandibles, or heavily sclerotised (armored) spines or horns to deter or fight off predators.[120] Many species of weevil that feed out in the open on leaves of plants react to attack by employing a drop-off reflex. Some combine it withthanatosis, in which they close up their appendages and "play dead".[122] The click beetles (Elateridae) can suddenly catapult themselves out of danger by releasing the energy stored by a click mechanism, which consists of a stout spine on the prosternum and a matching groove in the mesosternum.[118] Some species startle an attacker by producing sounds through a process known asstridulation.[99]

Parasitism

[edit]

A few species of beetles areectoparasitic on mammals. One such species,Platypsyllus castoris, parasitises beavers (Castor spp.). This beetle lives as a parasite both as a larva and as an adult, feeding on epidermal tissue and possibly on skin secretions and wound exudates. They are strikingly flattened dorsoventrally, no doubt as an adaptation for slipping between the beavers' hairs. They are wingless and eyeless, as are many other ectoparasites.[123] Others are kleptoparasites of other invertebrates, such as thesmall hive beetle (Aethina tumida) that infestshoney bee nests,[124] while many species are parasiticinquilines orcommensal in the nests of ants.[125] A few groups of beetles are primaryparasitoids of other insects, feeding off of, and eventually killing their hosts.[126]

Pollination

[edit]
An Israeli Copper Flower-Chafer (Protaetia cuprea ignicollis) on a crown daisy (Glebionis coronaria)

Beetle-pollinated flowers are usually large, greenish or off-white in color, and heavily scented. Scents may be spicy, fruity, or similar to decaying organic material. Beetles were most likely the first insects to pollinate flowers.[127] Most beetle-pollinated flowers are flattened or dish-shaped, with pollen easily accessible, although they may includetraps to keep the beetle longer. The plants' ovaries are usually well protected from the biting mouthparts of their pollinators. The beetle families that habitually pollinate flowers are theBuprestidae,Cantharidae,Cerambycidae,Cleridae,Dermestidae,Lycidae,Melyridae,Mordellidae,Nitidulidae andScarabaeidae.[128] Beetles may be particularly important in some parts of the world such as semiarid areas of southern Africa andsouthern California[129] and the montane grasslands ofKwaZulu-Natal in South Africa.[130]

Mutualism

[edit]
1: Adultambrosia beetle burrows into wood and lays eggs, carrying fungal spores in itsmycangia.
2: Larva feeds on fungus, which digests wood, removing toxins, to mutual benefit.
3: Larva pupates.

Mutualism is well known in a few beetles, such as theambrosia beetle, which partners with fungi to digest the wood of dead trees. The beetles excavate tunnels in dead trees in which they cultivate fungal gardens, their sole source of nutrition. After landing on a suitable tree, an ambrosia beetle excavates a tunnel in which it releases spores of its fungalsymbiont. The fungus penetrates the plant's xylem tissue, digests it, and concentrates the nutrients on and near the surface of the beetle gallery, so the weevils and the fungus both benefit. The beetles cannot eat the wood due to toxins, and uses its relationship with fungi to help overcome the defenses of its host tree in order to provide nutrition for their larvae.[131] Chemically mediated by a bacterially produced polyunsaturated peroxide,[132] this mutualistic relationship between the beetle and the fungus iscoevolved.[131][133]

Beetle found in Tharparkar District
Tenebrionid beetle in theThar Desert

Tolerance of extreme environments

[edit]
The fogstand beetle of theNamib Desert,Stenocara gracilipes, is able to survive bycollecting water from fog on its back.
Further information:Insect thermoregulation andInsect winter ecology

About 90% of beetle species enter a period of adultdiapause, a quiet phase with reduced metabolism to tide unfavourable environmental conditions. Adult diapause is the most common form of diapause in Coleoptera. To endure the period without food (often lasting many months) adults prepare by accumulating reserves of lipids, glycogen, proteins and other substances needed for resistance to future hazardous changes of environmental conditions. This diapause is induced by signals heralding the arrival of the unfavourable season; usually the cue isphotoperiodic. Short (decreasing) day length serves as a signal of approaching winter and induces winter diapause (hibernation).[134] A study of hibernation in the Arctic beetlePterostichus brevicornis showed that the body fat levels of adults were highest in autumn with thealimentary canal filled with food, but empty by the end of January. This loss of body fat was a gradual process, occurring in combination with dehydration.[135]

All insects arepoikilothermic,[136] so the ability of a few beetles to live in extreme environments depends on their resilience to unusually high or low temperatures. Thebark beetlePityogenes chalcographus can survive−39°C whilst overwintering beneath tree bark;[137] the Alaskan beetleCucujus clavipes puniceus is able to withstand−58°C; its larvae may survive−100°C.[138] At these low temperatures, the formation of ice crystals in internal fluids is the biggest threat to survival to beetles, but this is prevented through the production of antifreeze proteins that stop water molecules from grouping together. The low temperatures experienced byCucujus clavipes can be survived through their deliberate dehydration in conjunction with the antifreeze proteins. This concentrates the antifreezes several fold.[139] Thehemolymph of the mealworm beetleTenebrio molitor contains severalantifreeze proteins.[140] The Alaskan beetleUpis ceramboides can survive −60 °C: itscryoprotectants arexylomannan, a molecule consisting of asugar bound to afatty acid,[141] and the sugar-alcohol,threitol.[142]

Conversely, desert dwelling beetles are adapted to tolerate high temperatures. For example, theTenebrionid beetleOnymacris rugatipennis can withstand50°C.[143] Tiger beetles in hot, sandy areas are often whitish (for example,Habroscelimorpha dorsalis), to reflect more heat than a darker color would. These beetles also exhibits behavioural adaptions to tolerate the heat: they are able to stand erect on their tarsi to hold their bodies away from the hot ground, seek shade, and turn to face the sun so that only the front parts of their heads are directly exposed.[144]

The fogstand beetle of theNamib Desert,Stenocara gracilipes, is able tocollect water from fog, as its elytra have a textured surface combininghydrophilic (water-loving) bumps and waxy,hydrophobic troughs. The beetle faces the early morning breeze, holding up its abdomen; droplets condense on the elytra and run along ridges towards their mouthparts. Similar adaptations are found in several other Namib desert beetles such asOnymacris unguicularis.[145]

Some terrestrial beetles that exploit shoreline and floodplain habitats have physiological adaptations for surviving floods. In the event of flooding, adult beetles may be mobile enough to move away from flooding, but larvae and pupa often cannot. Adults ofCicindela togata are unable to survive immersion in water, but larvae are able to survive a prolonged period, up to 6 days, ofanoxia during floods. Anoxia tolerance in the larvae may have been sustained by switching to anaerobic metabolic pathways or by reducing metabolic rate.[146] Anoxia tolerance in the adult carabid beetlePelophilia borealis was tested in laboratory conditions and it was found that they could survive a continuous period of up to 127 days in an atmosphere of 99.9% nitrogen at 0 °C.[147]

Migration

[edit]
Main article:Insect migration

Many beetle species undertake annual mass movements which are termed as migrations. These include the pollen beetleMeligethes aeneus[148] and many species ofcoccinellids.[149] These mass movements may also be opportunistic, in search of food, rather than seasonal. A 2008 study of an unusually large outbreak of Mountain Pine Beetle (Dendroctonus ponderosae) inBritish Columbia found that beetles were capable of flying 30–110 km per day in densities of up to 18,600 beetles per hectare.[150]

Relationship to humans

[edit]

In ancient cultures

[edit]
Main article:Scarab (artifact)
xpr
Scarabee
inhieroglyphs
Gardiner: L1
A scarab in theValley of the Kings

Several species of dung beetle, especially the sacred scarab,Scarabaeus sacer, were revered inAncient Egypt.[151][152] The hieroglyphic image of the beetle may have had existential, fictional, or ontologic significance.[153] Images of the scarab in bone,ivory, stone,Egyptian faience, and precious metals are known from the Sixth Dynasty and up to the period of Roman rule. The scarab was of prime significance in the funerary cult of ancient Egypt.[154] The scarab was linked toKhepri, the god of the risingsun, from the supposed resemblance of the rolling of the dung ball by the beetle to the rolling of the sun by the god.[151] Some of ancient Egypt's neighbors adopted the scarab motif forseals of varying types. The best-known of these are the JudeanLMLK seals, where eight of 21 designs contained scarab beetles, which were used exclusively to stamp impressions on storage jars during the reign ofHezekiah.[155] Beetles are mentioned as a symbol of the sun, as in ancient Egypt, inPlutarch's 1st centuryMoralia.[156] TheGreek Magical Papyri of the 2nd century BC to the 5th century AD describe scarabs as an ingredient in a spell.[157]

Pliny the Elder discusses beetles in hisNatural History,[158] describing thestag beetle: "Some insects, for the preservation of their wings, are covered with an erust (elytra)—the beetle, for instance, the wing of which is peculiarly fine and frail. To these insects a sting has been denied by Nature; but in one large kind we find horns of a remarkable length, two-pronged at the extremities, and forming pincers, which the animal closes when it is its intention to bite."[159][160] The stag beetle is recorded in a Greek myth byNicander and recalled byAntoninus Liberalis in whichCerambus[b] is turned into a beetle: "He can be seen on trunks and has hook-teeth, ever moving his jaws together. He is black, long and has hard wings like a great dung beetle".[161] The story concludes with the comment that the beetles were used as toys by young boys, and that the head was removed and worn as a pendant.[160][162]

As pests

[edit]
Cotton boll weevil

About 75% of beetle species are phytophagous in both the larval and adult stages. Many feed on economically important plants and stored plant products, including trees, cereals, tobacco, and dried fruits.[7] Some, such as theboll weevil, which feeds on cotton buds and flowers, can cause extremely serious damage to agriculture. The boll weevil crossed theRio Grande nearBrownsville,Texas, to enter theUnited States fromMexico around 1892,[163] and had reached southeasternAlabama by 1915. By the mid-1920s, it had entered all cotton-growing regions in the US, traveling 40 to 160 miles (60–260 km) per year. It remains the most destructive cotton pest in North America.Mississippi State University has estimated, since the boll weevil entered the United States, it has cost cotton producers about $13 billion, and in recent times about $300 million per year.[163]

Thebark beetle,elm leaf beetle and the Asian longhorned beetle (Anoplophora glabripennis)[164] are among the species that attackelm trees. Bark beetles (Scolytidae) carryDutch elm disease as they move from infected breeding sites to healthy trees. The disease has devastated elm trees across Europe and North America.[165]

Larvae of theColorado potato beetle,Leptinotarsa decemlineata, a serious crop pest

Some species of beetle have evolved immunity to insecticides. For example, theColorado potato beetle,Leptinotarsa decemlineata, is a destructive pest of potato plants. Its hosts include other members of theSolanaceae, such asnightshade,tomato,eggplant andcapsicum, as well as the potato. Different populations have between them developed resistance to all major classes of insecticide.[166] The Colorado potato beetle was evaluated as a tool ofentomological warfare duringWorld War II, the idea being to use the beetle and its larvae to damage the crops of enemy nations.[167] Germany tested its Colorado potato beetle weaponisation program south ofFrankfurt, releasing 54,000 beetles.[168]

Thedeath watch beetle,Xestobium rufovillosum (Ptinidae), is a serious pest of older wooden buildings in Europe. It attackshardwoods such asoak andchestnut, always where some fungal decay has taken or is taking place. The actual introduction of the pest into buildings is thought to take place at the time of construction.[169]

Other pests include the coconut hispine beetle,Brontispa longissima, which feeds on youngleaves,seedlings and maturecoconut trees, causing serious economic damage in thePhilippines.[170] Themountain pine beetle is a destructive pest of mature or weakenedlodgepole pine, sometimes affecting large areas of Canada.[171]

As beneficial resources

[edit]
Coccinella septempunctata, a predatory beetle beneficial to agriculture

Beetles can be beneficial to human economics by controlling the populations of pests. The larvae and adults of some species oflady beetles (Coccinellidae) feed onaphids that are pests. Other lady beetles feed onscale insects,whitefly andmealybugs.[172] If normal food sources are scarce, they may feed on smallcaterpillars, youngplant bugs, orhoneydew andnectar.[173]Ground beetles (Carabidae) are commonpredators of many insect pests, including fly eggs, caterpillars, and wireworms.[174] Ground beetles can help to controlweeds by eating their seeds in the soil, reducing the need forherbicides to protect crops.[175] The effectiveness of some species in reducing certain plant populations has resulted in the deliberate introduction of beetles in order to control weeds. For example, the genusCalligrapha is native to North America but has been used to controlParthenium hysterophorus in India andAmbrosia artemisiifolia in Russia.[176][177]

Dung beetles (Scarabidae) have been successfully used to reduce the populations of pestilent flies, such asMusca vetustissima andHaematobia exigua which are serious pests of cattle inAustralia.[178] The beetles make the dung unavailable to breeding pests by quickly rolling and burying it in the soil, with the added effect of improving soil fertility, tilth, and nutrient cycling.[179] TheAustralian Dung Beetle Project (1965–1985), introduced species of dung beetle to Australia from South Africa and Europe to reduce populations ofMusca vetustissima, following successful trials of this technique inHawaii.[178] TheAmerican Institute of Biological Sciences reports that dung beetles, such asEuoniticellus intermedius, save the United States cattle industry an estimated US$380 million annually through burying above-ground livestock feces.[180]

TheDermestidae are often used intaxidermy and in the preparation of scientific specimens, to clean soft tissue from bones.[181] Larvae feed on and remove cartilage along with other soft tissue.[182][183]

As food and medicine

[edit]
See also:Entomophagy andInsects as food
Mealworms in a bowl forhuman consumption

Beetles are the most widely eaten insects, with about 344 species used as food, usually at the larval stage.[184] Themealworm (the larva of thedarkling beetle) and therhinoceros beetle are among the species commonly eaten.[185] A wide range of species is also used infolk medicine to treat those suffering from a variety of disorders and illnesses, though this is done without clinical studies supporting the efficacy of such treatments.[186]

As biodiversity indicators

[edit]

Due to their habitat specificity, many species of beetles have been suggested as suitable as indicators, their presence, numbers, or absence providing a measure of habitat quality. Predatory beetles such as the tiger beetles (Cicindelidae) have found scientific use as an indicator taxon for measuring regional patterns of biodiversity. They are suitable for this as their taxonomy is stable; their life history is well described; they are large and simple to observe when visiting a site; they occur around the world in many habitats, with species specialised to particular habitats; and their occurrence by species accurately indicates other species, both vertebrate and invertebrate.[187] According to the habitats, many other groups such as the rove beetles in human-modified habitats, dung beetles in savannas[188] and saproxylic beetles in forests[189] have been suggested as potential indicator species.[190]

In art and adornment

[edit]
Main articles:Beetlewing andLive insect jewelry
Zopheridae injewellery at theTexas A&M University Insect Collection
Pendant watch in shape of beetle, Switzerland 1850–1900 gold, diamond, enamel

Many beetles have durable elytra that has been used as material in art, withbeetlewing the best example.[191] Sometimes, they are incorporated into ritual objects for their religious significance. Whole beetles, either as-is or encased in clear plastic, are made into objects ranging from cheap souvenirs such as key chains to expensive fine-art jewellery. In parts of Mexico, beetles of the genusZopherus are made intoliving brooches by attaching costume jewelry and golden chains, which is made possible by the incredibly hard elytra and sedentary habits of the genus.[192]

In entertainment

[edit]

Fighting beetles are usedfor entertainment and gambling. This sport exploits the territorial behavior and mating competition of certain species of large beetles. In theChiang Mai district of northern Thailand, maleXylotrupes rhinoceros beetles are caught in the wild and trained for fighting. Females are held inside a log to stimulate the fighting males with their pheromones.[193] These fights may be competitive and involve gambling both money and property.[194] InSouth Korea theDytiscidae speciesCybister tripunctatus is used in a roulette-like game.[195]

Beetles are sometimes used as instruments: the Onabasulu ofPapua New Guinea historically used the "hugu" weevilRhynchophorus ferrugineus as a musical instrument by letting the human mouth serve as a variableresonance chamber for the wing vibrations of the live adult beetle.[194]

As pets

[edit]

Some species of beetle are kept aspets, for example diving beetles (Dytiscidae) may be kept in a domestic fresh water tank.[196]

"Remarkable Beetles Found at Simunjon, Borneo".[c] A few of the 2,000 species of beetle collected byAlfred Russel Wallace inBorneo

InJapan the practice of keeping horned rhinoceros beetles (Dynastinae) and stag beetles (Lucanidae) is particularly popular amongst young boys.[197] Such is the popularity in Japan thatvending machines dispensing live beetles were developed in 1999, each holding up to 100 stag beetles.[198][199]

As things to collect

[edit]

Beetle collecting became extremely popular in theVictorian era.[200] The naturalistAlfred Russel Wallace collected (by his own count) a total of 83,200 beetles during the eight years described in his 1869 bookThe Malay Archipelago, including 2,000 species new to science.[201]

As inspiration for technologies

[edit]
Further information:Biomimetics

Several coleopteran adaptations have attracted interest inbiomimetics with possible commercial applications. Thebombardier beetle's powerful repellent spray has inspired the development of a fine mist spray technology, claimed to have a low carbon impact compared to aerosol sprays.[202] Moisture harvesting behavior by the Namib desert beetle (Stenocara gracilipes) has inspired a self-filling water bottle which utiliseshydrophilic andhydrophobic materials to benefit people living in dry regions with no regular rainfall.[203]

Living beetles have been used ascyborgs. ADefense Advanced Research Projects Agency funded project implanted electrodes intoMecynorhina torquata beetles, allowing them to be remotely controlled via a radio receiver held on its back, as proof-of-concept for surveillance work.[204] Similar technology has been applied to enable a human operator to control the free-flight steering and walking gaits ofMecynorhina torquata as well as graded turning, backward walking and feedback control ofZophobas morio.[205][206][207][208][209]

Research published in 2020 sought to create a robotic camera backpack for beetles. Miniature cameras weighing 248 mg were attached to live beetles of theTenebrionid generaAsbolus andEleodes. The cameras filmed over a 60° range for up to 6 hours.[210][211]

In conservation

[edit]

Since beetles form such a large part of the world's biodiversity, their conservation is important, and equally, loss of habitat and biodiversity is essentially certain to impact on beetles. Many species of beetles have very specific habitats and long life cycles that make them vulnerable. Some species are highly threatened while others are already feared extinct.[212] Island species tend to be more susceptible as in the case ofHelictopleurus undatus of Madagascar which is thought to have gone extinct during the late 20th century.[213] Conservationists have attempted to arouse a liking for beetles with flagship species like the stag beetle,Lucanus cervus,[214] and tiger beetles (Cicindelidae). In Japan the Genji firefly,Luciola cruciata, is extremely popular, and in South Africa the Addo elephant dung beetle offers promise for broadeningecotourism beyond thebig five tourist mammal species. Popular dislike of pest beetles, too, can be turned into public interest in insects, as can unusual ecological adaptations of species like the fairy shrimp hunting beetle,Cicinis bruchi.[215]

Notes

[edit]
  1. ^These count fore, mid, and hind leg tarsal segments, such as 5-5-4.
  2. ^The wood-gnawing longhorn beetle genusCerambyx is named for him.
  3. ^The plate was labelled "Neocerambyx æneas, Cladognathus tarandus, Diurus furcellatus, Ectatorhinus Wallacei, Megacriodes Saundersii, Cyriopalpus Wallacei".

See also

[edit]

References

[edit]
  1. ^abBouchard, P.; Bousquet, Y.; Davies, A.; Alonso-Zarazaga, M.; Lawrence, J.; Lyal, C.; Newton, A.; Reid, C.; Schmitt, M.; Ślipiński, A.; Smith, A. (2011)."Family-group names in Coleoptera (Insecta)".ZooKeys (88):1–972.Bibcode:2011ZooK...88....1B.doi:10.3897/zookeys.88.807.PMC 3088472.PMID 21594053.
  2. ^Stork, Nigel E. (January 7, 2018)."How Many Species of Insects and Other Terrestrial Arthropods Are There on Earth?".Annual Review of Entomology.63 (1):31–45.doi:10.1146/annurev-ento-020117-043348.PMID 28938083.S2CID 23755007.
  3. ^Harper, Douglas."Coleoptera".Online Etymology Dictionary.
  4. ^Harper, Douglas."Beetle".Online Etymology Dictionary.
  5. ^"Beetle". Merriam-Webster Online Dictionary. RetrievedFebruary 20, 2016.
  6. ^Harper, Douglas."Chafer".Online Etymology Dictionary.
  7. ^abcdefghiGilliott, Cedric (August 1995).Entomology (2 ed.). Springer-Verlag. p. 96.ISBN 978-0-306-44967-3.
  8. ^abcdefghijklmnopqMcHugh (2009)
  9. ^Rosenzweig, M. L. (1995).Species Diversity in Space and Time. Cambridge: Cambridge University Press. p. 2.ISBN 978-0-521-49952-1.
  10. ^abHunt, T.; Bergsten, J.; Levkanicova, Z.; Papadopoulou, A.; John, O. S.; Wild, R.; Hammond, P. M.; Ahrens, D.; Balke, M.; Caterino, M. S.; Gómez-Zurita, J.; Ribera, I; Barraclough, T. G.; Bocakova, M.; Bocak, L; Vogler, A. P. (2007). "A Comprehensive Phylogeny of Beetles Reveals the Evolutionary Origins of a Superradiation".Science.318 (5858):1913–1916.Bibcode:2007Sci...318.1913H.doi:10.1126/science.1146954.PMID 18096805.S2CID 19392955.
  11. ^Hammond, Peter (1992). "Species Inventory". In Groombridge, Brian (ed.).Global Biodiversity: Status of the Earth's Living Resources(PDF). London: Chapman & Hall. pp. 17–39.ISBN 978-0-412-47240-4.
  12. ^abStork, Nigel E.; McBroom, James; Gely, Claire; Hamilton, Andrew J. (2015)."New approaches narrow global species estimates for beetles, insects, and terrestrial arthropods".PNAS.116 (24):7519–7523.Bibcode:2015PNAS..112.7519S.doi:10.1073/pnas.1502408112.PMC 4475949.PMID 26034274.
  13. ^Gullan, P.J.; Cranston, P.S. (2014).The Insects: An Outline of Entomology (5 ed.). John Wiley & Sons. p. 6.ISBN 978-1-4443-3036-6.
  14. ^Hutchinson, G. E. (1959). "Homage to Santa Rosalia or why are there so many kinds of animals?".The American Naturalist.93 (870):145–159.doi:10.1086/282070.JSTOR 2458768.S2CID 26401739.
  15. ^Hebert, Paul D. N.; Ratnasingham, Sujeevan; Zakharov, Evgeny V.; Telfer, Angela C.; Levesque-Beaudin, Valerie; Milton, Megan A.; Pedersen, Stephanie; Jannetta, Paul; deWaard, Jeremy R. (September 5, 2016)."Counting animal species with DNA barcodes: Canadian insects".Philosophical Transactions of the Royal Society B: Biological Sciences.371 (1702): 20150333.doi:10.1098/rstb.2015.0333.ISSN 0962-8436.PMC 4971185.PMID 27481785.
  16. ^Borkent, Art; Brown, Brian V.; Adler, Peter H.; Amorim, Dalton De Souza; Barber, Kevin; Bickel, Daniel; Boucher, Stephanie; Brooks, Scott E.; Burger, John; Burington, Z.L.; Capellari, Renato S.; Costa, Daniel N.R.; Cumming, Jeffrey M.; Curler, Greg; Dick, Carl W. (March 27, 2018)."Remarkable fly (Diptera) diversity in a patch of Costa Rican cloud forest: Why inventory is a vital science".Zootaxa.4402 (1):53–90.doi:10.11646/zootaxa.4402.1.3.hdl:10138/234433.ISSN 1175-5334.PMID 29690278.S2CID 13819313.
  17. ^Forbes, Andrew A.; Bagley, Robin K.; Beer, Marc A.; Hippee, Alaine C.; Widmayer, Heather A. (July 12, 2018)."Quantifying the unquantifiable: why Hymenoptera, not Coleoptera, is the most speciose animal order".BMC Ecology.18 (1): 21.Bibcode:2018BMCE...18...21F.doi:10.1186/s12898-018-0176-x.ISSN 1472-6785.PMC 6042248.PMID 30001194.
  18. ^Gullan, P. J.; Cranston, P. S. (2014).The Insects: An Outline of Entomology (5 ed.). John Wiley & Sons. p. 517.ISBN 978-1-4443-3036-6.
  19. ^Kirmse S, Adis J, Morawetz W. 2003. Flowering events and beetle diversity in Venezuela. In: Basset Y, Novotny V, Miller SE, Kitching RL, editors. Arthropods of tropical forests: Spatio-temporal dynamics and resource use in the canopy. Cambridge: Cambridge University Press; p. 256–265.
  20. ^Arndt, Erik; Kirmse, Susan; Erwin, Terry L. (2001). "Arboreal Beetles of Neotropical Forests:AgraFabricius, Larval Descriptions with Notes on Natural History and Behaviour (Coleoptera, Carabidae, Lebiini, Agrina)".The Coleopterists Bulletin.55 (3):297–310.doi:10.1649/0010-065x(2001)055[0297:abonfa]2.0.co;2.S2CID 52065045.
  21. ^Kirmse, Susan; Chaboo, Caroline S. (2018). "Polyphagy and florivory prevail in a leaf-beetle community (Coleoptera: Chrysomelidae) inhabiting the canopy of a tropical lowland rainforest in southern Venezuela".Journal of Natural History.52 (41–42):2677–2721.Bibcode:2018JNatH..52.2677K.doi:10.1080/00222933.2018.1548666.S2CID 91732501.
  22. ^Kirmse, Susan; Ratcliffe, Brett C. (2019)."Composition and Host-Use Patterns of a Scarab Beetle (Coleoptera: Scarabaeidae) Community Inhabiting the Canopy of a Lowland Tropical Rainforest in Southern Venezuela".The Coleopterists Bulletin.73: 149.doi:10.1649/0010-065X-73.1.149.S2CID 108786139.
  23. ^"Heaviest insect".Guinness World Records. RetrievedFebruary 1, 2017.
  24. ^Williams, David M. (2001)."Chapter 30 — Largest Insect".Book of Insect Records.University of Florida. Archived fromthe original on July 18, 2011.
  25. ^Polilov, Alexey (2015)."How small is the smallest? New record and remeasuring of Scydosella musawasensis Hall, 1999 (Coleoptera, Ptiliidae), the smallest known free-living insect".ZooKeys (526):61–64.Bibcode:2015ZooK..526...61P.doi:10.3897/zookeys.526.6531.PMC 4607844.PMID 26487824.
  26. ^Kirejtshuk, Alexander G.; Poschmann, Markus; Prokop, Jakub; Garrouste, Romain; Nel, André (July 4, 2014)."Evolution of the elytral venation and structural adaptations in the oldest Palaeozoic beetles (Insecta: Coleoptera: Tshekardocoleidae)".Journal of Systematic Palaeontology.12 (5):575–600.Bibcode:2014JSPal..12..575K.doi:10.1080/14772019.2013.821530.ISSN 1477-2019.S2CID 85163674.
  27. ^Hörnschemeyer, T.; Stapf, H. "Die Insektentaphozönose von Niedermoschel (Asselian, unt. Perm; Deutschland)".Schriften der Alfred-Wegener-Stiftung (in German) (99/8): 98.
  28. ^Kukalová, J. (1969). "On the systematic position of the supposed Permian beetles, Tshecardocoleidae, with a description of a new collection from Moravia".Sborník Geologických Věd, Paleontologie.11:139–161.
  29. ^abcdefBenisch, Christoph (2010)."Phylogeny of the beetles".The beetle fauna of Germany. Kerbtier. RetrievedMarch 16, 2011.
  30. ^Beckemeyer, R. J.; Engel, M. S. (2008)."A second specimen ofPermocoleus (Coleoptera) from the Lower Permian Wellington Formation of Noble County, Oklahoma"(PDF).Journal of the Kansas Entomological Society.81 (1):4–7.doi:10.2317/JKES-708.01.1.S2CID 86835593. Archived fromthe original(PDF) on July 18, 2011.
  31. ^Zhao, Xianye; Yu, Yilun; Clapham, Matthew E; Yan, Evgeny; Chen, Jun; Jarzembowski, Edmund A; Zhao, Xiangdong; Wang, Bo (November 8, 2021). Perry, George H; Fikacek, Martin (eds.)."Early evolution of beetles regulated by the end-Permian deforestation".eLife.10: e72692.doi:10.7554/eLife.72692.ISSN 2050-084X.PMC 8585485.PMID 34747694.
  32. ^abcMcHugh (2009), p. 186
  33. ^Labandeira, C. C.; Sepkoski, J. J. (1993)."Insect diversity in the fossil record"(PDF).Science.261 (5119):310–315.Bibcode:1993Sci...261..310L.CiteSeerX 10.1.1.496.1576.doi:10.1126/science.11536548.PMID 11536548. Archived fromthe original(PDF) on March 31, 2012.
  34. ^Gratshev, Vadim G.; Zherikhin, Vladimir V. (October 15, 2003)."Insect diversity in the fossil record"(PDF).Acta Zoologica Cracoviensia.261 (5119):129–138.Bibcode:1993Sci...261..310L.CiteSeerX 10.1.1.496.1576.doi:10.1126/science.11536548.PMID 11536548. Archived fromthe original(PDF) on December 29, 2016. RetrievedMarch 16, 2011.
  35. ^Chang, H.; Zhang, F.; Ren, D. (2008)."A new genus and two new species of fossil elaterids from the Yixian Formation of Western Liaoning, China (Coleoptera: Elateridae)"(PDF).Zootaxa.1785 (1):54–62.doi:10.11646/zootaxa.1785.1.3. Archived fromthe original(PDF) on July 4, 2011.
  36. ^Alexeev, A. V. (1993)."Jurassic and Lower Cretaceous Buprestidae (Coleoptera) from Eurasia"(PDF).Paleontological Journal (1A):9–34.Archived(PDF) from the original on March 26, 2010.
  37. ^Ponomarenko, Alexandr G. (1985)."Fossil insects from the Tithonian 'Solnhofener Plattenkalke' in the Museum of Natural History, Vienna"(PDF).Annalen des Naturhistorischen Museums in Wien.87 (1):135–144.Archived(PDF) from the original on July 4, 2011.
  38. ^Yan, E. V. (2009)."A new genus of elateriform beetles (Coleoptera, Polyphaga) from the Middle-Late Jurassic of Karatau"(PDF).Paleontological Journal.43 (1):78–82.Bibcode:2009PalJ...43...78Y.doi:10.1134/S0031030109010080.S2CID 84621777. Archived fromthe original(PDF) on July 18, 2011.
  39. ^abTan, J.-J.; Ren, D.; Liu, M. (2005)."New ommatids from the Late Jurassic of western Liaoning, China (Coleoptera: Archostemata)"(PDF).Insect Science.12 (3):207–216.Bibcode:2005InsSc..12..207T.doi:10.1111/j.1005-295X.2005.00026.x.S2CID 83733980. Archived fromthe original(PDF) on July 18, 2011.
  40. ^Ponomarenko, A. G. (1997)."New beetles of the family Cupedidae from the Mesozoic of Mongolia. Ommatini, Mesocupedini, Priacmini"(PDF).Paleontological Journal.31 (4):389–399. Archived fromthe original(PDF) on September 25, 2006.
  41. ^Alexeev, A. V. (2009)."New Jewel Beetles (Coleoptera: Buprestidae) from the Cretaceous of Russia, Kazakhstan, and Mongolia"(PDF).Paleontological Journal.43 (3):277–281.Bibcode:2009PalJ...43..277A.doi:10.1134/s0031030109030058.S2CID 129618839. Archived fromthe original(PDF) on July 18, 2011.
  42. ^Chin, K.; Gill, B. D. (1996). "Dinosaurs, dung beetles, and conifers; participants in a Cretaceous food web".PALAIOS.11 (3):280–285.Bibcode:1996Palai..11..280C.doi:10.2307/3515235.JSTOR 3515235.
  43. ^Arillo, Antonio & Ortuño, Vicente M. (2008). "Did dinosaurs have any relation with dung-beetles? (The origin of coprophagy)".Journal of Natural History.42 (19&20):1405–1408.Bibcode:2008JNatH..42.1405A.doi:10.1080/00222930802105130.S2CID 83643794.
  44. ^David Peris; Jes Rust (2020)."Cretaceous beetles (Insecta: Coleoptera) in amber: the palaeoecology of this most diverse group of insects".Zoological Journal of the Linnean Society.189 (4):1085–1104.doi:10.1093/zoolinnean/zlz118.
  45. ^McNamara, M. E.; Briggs, D. E. G.; Orr, P. J.; Noh, H.; Cao, H. (2011)."The original colours of fossil beetles".Proceedings of the Royal Society B: Biological Sciences.279 (1731):1114–1121.doi:10.1098/rspb.2011.1677.PMC 3267148.PMID 21957131.
  46. ^Coope, G. R. (1979). "Late Cenozoic Fossil Coleoptera: Evolution, Biogeography, and Ecology".Annual Review of Ecology and Systematics.10:246–267.doi:10.1146/annurev.es.10.110179.001335.JSTOR 2096792.
  47. ^Maddison, D. R. (1995)."Polyphaga".Tree of Life web project. RetrievedFebruary 27, 2016.
  48. ^Beutel, R. G.; Lawrence, J. F. (2005). "4. Coleoptera (Morphology)". In Kristensen, N. P.; Beutel, R. G. (eds.).Handbook of Zoology, Band 4: Arthropoda, 2: Insecta, Coleoptera, Beetles. Volume 1: Morphology and Systematics (Archostemata, Adephaga, Myxophaga, Polyphaga partim). p. 23.ISBN 978-3-11-017130-3.
  49. ^Beutel, R. G.; Ribera, I. (2005). "7. Adephaga Schellenberg, 1806". In Kristensen, N. P.; Beutel, R. G. (eds.).Handbook of Zoology, Band 4: Arthropoda, 2: Insecta, Coleoptera, Beetles. Volume 1: Morphology and Systematics (Archostemata, Adephaga, Myxophaga, Polyphaga partim). p. 54.ISBN 978-3-11-017130-3.
  50. ^"Suborder Archostemata – Reticulated and Telephone-pole Beetles". BugGuide. 2006. RetrievedJanuary 26, 2017.
  51. ^abcLawrence, John F.; Ślipiński, Adam (2013).Australian Beetles. Morphology, Classification and Keys. CSIRO. pp. 1–16.ISBN 978-0-643-09728-5.
  52. ^Mesaros, Gabor (2013)."Sphaeriusidae (Coleoptera, Myxophaga): A new beetle family to the fauna of Serbia".Bulletin of the Natural History Museum (6):71–74.doi:10.5937/bnhmb1306071m.
  53. ^Beutel, Rolf G.; Leschen, Richard (2005).Handbook of Zoology. Volume 4. Part 38. Arthropoda. Morphology and Systematics (Archostemata, Adephaga, Myxophaga, Polyphaga partim). Walter de Gruyter. p. 43.
  54. ^Whiting, Michael F. (2002). "Phylogeny of the holometabolous insect orders: molecular evidence".Zoologica Scripta.31 (1):3–15.doi:10.1046/j.0300-3256.2001.00093.x.S2CID 45544978.
  55. ^Beutel, R.; Haas, F. (2000)."Phylogenetic relationships of the suborders of Coleoptera (Insecta)".Cladistics.16 (1):103–141.doi:10.1111/j.1096-0031.2000.tb00350.x.PMID 34902922.S2CID 56131113.
  56. ^abKukalová-Peck, J.; Lawrence, J. F. (1993). "Evolution of the hind wing in Coleoptera".Canadian Entomologist.125 (2):181–258.doi:10.4039/Ent125181-2.S2CID 52888506.
  57. ^Maddison, D. R.; Moore, W.; Baker, M. D.; Ellis, T. M.; Ober, K. A.; Cannone, J. J.; Gutell, R. R. (2009)."Monophyly of terrestrial adephagan beetles as indicated by three nuclear genes (Coleoptera: Carabidae and Trachypachidae)".Zoologica Scripta.38 (1):43–62.doi:10.1111/j.1463-6409.2008.00359.x.PMC 2752903.PMID 19789725.
  58. ^Maddison, David R. (September 11, 2000)."Coleoptera. Beetle".Tree of Life Web Project. tolweb.org. RetrievedMarch 18, 2011.
  59. ^Niehuis, Oliver; Hartig, Gerrit; Grath, Sonja; et al. (2012)."Genomic and Morphological Evidence Converge to Resolve the Enigma of Strepsiptera".Current Biology.22 (14):1309–1313.doi:10.1016/j.cub.2012.05.018.PMID 22704986.
  60. ^abcMcKenna, Duane D.; Wild, Alexander L.; et al. (2015)."The beetle tree of life reveals that Coleoptera survived end-Permian mass extinction to diversify during the Cretaceous terrestrial revolution".Systematic Entomology.40 (4):835–880.Bibcode:2015SysEn..40..835M.doi:10.1111/syen.12132.hdl:10057/11540.
  61. ^abHunt, Toby; et al. (2007). "A Comprehensive Phylogeny of Beetles Reveals the Evolutionary Origins of a Superradiation".Science.318 (5858):1913–19116.Bibcode:2007Sci...318.1913H.doi:10.1126/science.1146954.PMID 18096805.S2CID 19392955.
  62. ^"Introduction to the Identification of Beetles (Coleoptera)"(PDF). University of Florida. RetrievedMarch 15, 2017.
  63. ^Lau T.F.S.; Meyer-Rochow V.B. (2006). "Sexual dimorphism in the compound eye ofRhagophthalmus ohbai (Coleoptera; Rhagophthalmidae): I. Morphology and ultrastructure".Journal of Asia-Pacific Entomology.9:19–30.doi:10.1016/S1226-8615(08)60271-X.
  64. ^abHangay, G.; Zborowski, P. (2010).A Guide to the Beetles of Australia. CSIRO. p. 10.ISBN 978-0-643-09487-1.
  65. ^Gokan N.; Meyer-Rochow V.B. (2000). "Morphological comparisons of compound eyes in Scarabaeoidea (Coleoptera) related to the beetles' daily activity maxima and phylogenetic positions".Journal of Agricultural Science (Tokyo Nogyo Daigaku).45 (1):15–61.
  66. ^abBenisch, Christoph (2007)."3. Antennae, Beetle morphology". Kerbtier.de (Beetle fauna of Germany). RetrievedMarch 14, 2017.
  67. ^Zurek, D.B.; Gilbert, C. (2014)."Static antennae act as locomotory guides that compensate for visual motion blur in a diurnal, keen-eyed predator".Proceedings of the Royal Society B: Biological Sciences.281 (1779): 20133072.doi:10.1098/rspb.2013.3072.PMC 3924084.PMID 24500171.
  68. ^Berkov, Amy; Rodríguez, Nelson; Centeno, Pedro (2007). "Convergent evolution in the antennae of a cerambycid beetle,Onychocerus albitarsis, and the sting of a scorpion".Naturwissenschaften.95 (3):257–61.Bibcode:2008NW.....95..257B.doi:10.1007/s00114-007-0316-1.PMID 18004534.S2CID 30226487.
  69. ^"Antennae Types". University of Sydney. Archived fromthe original on February 22, 2018. RetrievedJanuary 26, 2017.
  70. ^Arnett, R. H. Jr.; Thomas, M. C. (2001).American Beetles, Volume I: Archostemata, Myxophaga, Adephaga, Polyphaga: Staphyliniformia. CRC Press. pp. 3–7.ISBN 978-1-4822-7432-5.
  71. ^Kusinitz, M. (2021). Beetles. In K. H. Nemeh & J. L. Longe (Eds.),The Gale Encyclopedia of Science (6th ed., Vol. 1). Gale. 531-536. Gale Document Number: CX8124400293
  72. ^Green, Kristina Karlsson; Kovalev, Alexander; Svensson, Erik I.; Gorb, Stanislav N. (2013)."Male clasping ability, female polymorphism and sexual conflict: fine-scale elytral morphology as a sexually antagonistic adaptation in female diving beetles".Journal of the Royal Society Interface.10 (86): 20130409.doi:10.1098/rsif.2013.0409.PMC 3730688.PMID 23825114.
  73. ^Burkness, S.; Hahn, J. (2007)."Flea beetles in home gardens".University of Minnesota Extension. RetrievedJanuary 26, 2017.
  74. ^abCarpenter, George Herbert (1899).Insects, their structure and life.
  75. ^Philips, Chris; Fread, Elizabeth; Kuhar, Tom,Leatherwing (Soldier) Beetles(PDF), archived fromthe original(PDF) on November 30, 2016, retrievedMarch 14, 2017
  76. ^Donald W. Hall; Marc A. Branham (2016)."Calopteron discrepans (Newman) (Insecta: Coleoptera: Lycidae)".University of Florida. RetrievedMarch 15, 2017.
  77. ^Lawrence, J. F.; Hastings, A. M.; Dallwitz, M. J.; Paine, T. A.; Zurcher, E. J. (2005)."Elateriformia (Coleoptera): descriptions, illustrations, identification, and information retrieval for families and subfamilies". RetrievedJanuary 26, 2017.
  78. ^Beenen, R; Winkelman, J. K. (2001). "Aantekeningen over Chrysomelidae in Nederland 5".Entomologische Berichten (in Dutch).61:63–67.
  79. ^Arnett, Ross H. Jr; Thomas, Michael C. (2000).American Beetles, Volume I: Archostemata, Myxophaga, Adephaga, Polyphaga: Staphyliniformia. CRC Press. p. 8.ISBN 978-1-4822-7432-5.
  80. ^Seymour, Roger S.; Matthews, Philip G. D. (2012)."Physical gills in diving insects and spiders: Theory and experiment".The Journal of Experimental Biology.216 (2):164–70.doi:10.1242/jeb.070276.PMID 23255190.
  81. ^Schmidt-Nielsen, Knut (January 15, 1997)."Insect Respiration".Animal Physiology: Adaptation and Environment (5th ed.).Cambridge University Press. p. 55.ISBN 978-0-521-57098-5.
  82. ^Miller, T. A. (1985). "Chapter 8: Structure and Physiology of the Circulatory System". In Kerkut, G. A.; Gilbert, L. I. (eds.).Comprehensive Insect Physiology, Biochemistry and Pharmacology. Volume 3: Integument, Respiration and Circulation. Pergamom Press. pp. 289–355.ISBN 978-0-08-030804-3.
  83. ^Scoble, M. J. (1992).The Lepidoptera: Form, function, and diversity. Oxford University Press.ISBN 978-1-4020-6242-1.
  84. ^abWinkler, Josef Rudolf (1964).A Book of Beetles.Spring Books Science. pp. 30–32.
  85. ^Ozbek, H.; Szalokia, D. (1998)."A contribution to the knowledge of the Meloidae (Coleoptera) fauna of Turkey along with new record".Turkish Journal of Zoology.22:23–40.
  86. ^Medvedev, L. N.; Pavlov, S. I. (1988). "Mating behavior of the Chrysomelidae (Coleoptera)".Entomological Review.67:100–108.
  87. ^Matsumura, Yoko; Kovalev, Alexander E.; Gorb, Stanislav N. (December 2017)."Penetration mechanics of a beetle intromittent organ with bending stiffness gradient and a soft tip".Science Advances.3 (12): eaao5469.doi:10.1126/sciadv.aao5469.ISSN 2375-2548.PMC 5738233.PMID 29279866.
  88. ^Crowson, R. A. (2013).The Biology of the Coleoptera.Elsevier Science. pp. 358–370.ISBN 978-1-4832-1760-4.
  89. ^Beck, S. D.; Bharadwaj, R. K. (1972). "Reversed development and cellular ageing in an insect".Science.178 (4066):1210–1211.Bibcode:1972Sci...178.1210B.doi:10.1126/science.178.4066.1210.PMID 4637808.S2CID 34101370.
  90. ^"Definition of 'Scarabaeiform'".Amateur Entomologists' Society. RetrievedJanuary 27, 2017.
  91. ^Krinsky, W. L. (2009). "8 Beetles (Coleoptera)". In Mullen, G. R.; Durden, L. A. (eds.).Medical and Veterinary Entomology (2nd ed.).Elsevier. pp. 101–115.ISBN 978-0-12-372500-4.
  92. ^"Hypermetamorphosis of Striped Blister Beetle –Epicauta vittata". BugGuide. 2007. RetrievedJanuary 27, 2017.
  93. ^Zeng, Yong (1995)."Longest Life Cycle". University of Florida. RetrievedMarch 17, 2017.
  94. ^Šípek, Petr; Fabrizi, Silvia; Eberle, Jonas; Ahrens, Dirk (2016)."A molecular phylogeny of rose chafers (Coleoptera: Scarabaeidae: Cetoniinae) reveals a complex and concerted morphological evolution related to their flight mode".Molecular Phylogenetics and Evolution.101:163–175.doi:10.1016/j.ympev.2016.05.012.PMID 27165937.
  95. ^Jeffries, Daniel L.; Chapman, Jason;Roy, Helen E.; Humphries, Stuart; Harrington, Richard; Brown, Peter M. J.; Handley, Lori-J. Lawson (2013)."Characteristics and Drivers of High-Altitude Ladybird Flight: Insights from Vertical-Looking Entomological Radar".PLOS ONE.8 (2): e82278.Bibcode:2013PLoSO...882278J.doi:10.1371/journal.pone.0082278.PMC 3867359.PMID 24367512.
  96. ^Capinera, John L. (2008).Encyclopedia of Entomology (2 ed.). Springer Science & Business Media. pp. 3218–3219.ISBN 978-1-4020-6242-1.
  97. ^Arnett, R. H. Jr.; Thomas, M. C. (2001). "Haliplidae".American Beetles, Volume 1. CRC Press. pp. 138–143.ISBN 978-0-8493-1925-9.
  98. ^"Mountain Pine Beetle – Beetle Love". Parks Canada. RetrievedMarch 13, 2011.
  99. ^abMeyer-Rochow, V.B. (1971). "Observations on stridulating Australian beetles (Hydrophilidae, Cerambycidae, Passalidae, Dynastinae) using scanning electron microscopical and electrophysiological techniques".Forma et Functio.4:326–339.
  100. ^Brandmayr P. 1992. Short review of the presocial evolution in Coleoptera. Ethol Ecol Evol. 4:7–16.
  101. ^Wyatt, T. D. & Foster, W. A. (1989). "Parental care in the subsocial intertidal beetle,Bledius spectabilis, in relation to parasitism by the ichneumonid wasp,Barycnemis blediator".Behaviour.110 (1–4):76–92.doi:10.1163/156853989X00394.JSTOR 4534785.
  102. ^Milne, Lorus J.; Milne, Margery J. (1944). "Notes on the Behavior of Burying Beetles (Nicrophorus spp.)".Journal of the New York Entomological Society.52 (4):311–327.JSTOR 25005075.
  103. ^Hanski, Ilkka; Yves, Cambefort (1991).Dung Beetle Ecology. Princeton University Press. pp. 626–672.ISBN 978-0-691-08739-9.
  104. ^"Beetle | San Diego Zoo Animals & Plants".animals.sandiegozoo.org. RetrievedJuly 18, 2017.
  105. ^Chaboo, C.S.; Frieiro-Costa, F.A.; Gómez-Zurita, J.; Westerduijn, R. (2014). "Subsociality in leaf beetles (Coleoptera: Chrysomelidae: Cassidinae, Chrysomelinae)".Journal of Natural History.48:1–44.doi:10.1080/00222933.2014.909060.S2CID 84683405.
  106. ^Chaboo, CS (2002). "First report of immatures, genitalia and maternal care in Eugenysa columbiana (Boheman) (Coleoptera: Chrysomelidae: Cassidinae: Eugenysini)".The Coleopterists Bulletin.56:50–67.doi:10.1649/0010-065x(2002)056[0050:froiga]2.0.co;2.S2CID 85885981.
  107. ^Windsor, DM (1987)."Natural History of a Subsocial Tortoise Beetle, Acromis sparsa Boheman (Chrysomelidae, Cassidinae) in Panama".Psyche: A Journal of Entomology.94 (1–2):127–150.doi:10.1155/1987/19861.
  108. ^Reid, CAM; Beatson, M; Hasenpusch, J (2009). "The morphology and biology of Pterodunga mirabile Daccordi, an unusual subsocial chrysomeline (Coleoptera: Chrysomelidae)".J. Nat. Hist.43 (7–8):373–398.Bibcode:2009JNatH..43..373R.doi:10.1080/00222930802586016.S2CID 84744056.
  109. ^Windsor DM, Choe JC. 1994. Origins of parental care in chrysomelid beetles. In: Jolivet PH, Cox ML, Petitipierre E, editors. Novel aspects of the biology of Chrysomelidae. Series Entomologica 50. Dordrecht: Kluwer Academic Publishers; p. 111–117.
  110. ^Crespi, B. J.; Yanega, D. (1995). "The definition of eusociality".Behavioral Ecology.6 (1):109–115.doi:10.1093/beheco/6.1.109.
  111. ^abKent, D. S. & Simpson, J. A. (1992). "Eusociality in the beetleAustroplatypus incompertus (Coleoptera: Curculionidae)".Naturwissenschaften.79 (2):86–87.Bibcode:1992NW.....79...86K.doi:10.1007/BF01131810.S2CID 35534268.
  112. ^ab"Science: The Australian beetle that behaves like a bee".New Scientist. May 9, 1992. RetrievedOctober 31, 2010.
  113. ^Schuster, Jack C.; Schuster, Laura B. (1985)."Social behavior in Passalid beetles (Coleoptera: Passalidae): Cooperative brood care".Florida Entomologist.68 (2):266–272.doi:10.2307/3494359.JSTOR 3494359. Archived fromthe original on March 2, 2016. RetrievedMarch 17, 2017.
  114. ^Lobanov, A.L. (2002)."feeding".Beetle Biology And Ecology. Beetles (Coleoptera) and Coleopterologist. RetrievedMarch 13, 2011.
  115. ^McCoy, Peter (2016).Radical Mycology: A Treatise on Seeing & Working with Fungi. Chthaeus Press. p. 187.ISBN 978-0-9863996-0-2.
  116. ^Islam, M.; Hossain, A.; Mostafa, M. G.; Hossain, M. M. (2016)."Forensically important insects associated with the decomposition of mice carrion in Bangladesh".Jahangirnagar University Journal of Biological Science.5 (1):11–20.doi:10.3329/jujbs.v5i1.29739.
  117. ^Grebennikov, Vasily V.; Leschen, Richard A. B. (2010). "External exoskeletal cavities in Coleoptera and their possible mycangial functions".Entomological Science.13 (1):81–98.doi:10.1111/j.1479-8298.2009.00351.x.S2CID 84593757.
  118. ^abcEvans & Bellamy (2000), pp. 27–28
  119. ^Cott, H. B. (1940).Adaptive Coloration in Animals. Methuen. p. 414.
  120. ^abcEvans & Bellamy (2000), p. 126
  121. ^abEvans & Bellamy (2000)
  122. ^McHugh (2009), p. 199
  123. ^Peck, Stewart B. (2006)."Distribution and biology of the ectoparasitic beaver beetlePlatypsyllus castoris Ritsema in North America (Coleoptera: Leiodidae: Platypsyllinae)".Insecta Mundi.20 (1–2):85–94.
  124. ^Neumann, P. & Elzen, P. J. (2004)."The biology of the small hive beetle (Aethina tumida, Coleoptera: Nitidulidae): Gaps in our knowledge of an invasive species".Apidologie.35 (3):229–247.doi:10.1051/apido:2004010.
  125. ^Meyer, John R. (March 8, 2005)."Coleoptera".North Carolina State University. Archived fromthe original on May 24, 2000. RetrievedMarch 13, 2011.
  126. ^Weber, Donald C.; Saska, Pavel; Chaboo, Caroline S. (2008). "Carabid Beetles (Coleoptera: Carabidae) as Parasitoids".Encyclopedia of Entomology. Springer Netherlands. pp. 719–721.doi:10.1007/978-1-4020-6359-6_492.ISBN 978-1-4020-6242-1.
  127. ^Livingston, Stephanie (November 2019)."This amber-encased beetle may have been one of the first insects to pollinate flowers".Science.doi:10.1126/science.aba1758.S2CID 213876270. RetrievedJanuary 10, 2021.
  128. ^Gullan, P. J.; Cranston, P. S. (2014).The Insects: An Outline of Entomology (5 ed.). Wiley, John & Sons. p. 314.ISBN 978-1-4443-3036-6.
  129. ^Jones, G. D. & Jones, S. D. (2001)."The uses of pollen and its implication for entomology".Neotropical Entomology.30 (3):314–349.doi:10.1590/S1519-566X2001000300001.
  130. ^Ollerton, J.; Johnson, S. D.; Cranmer, L. & Kellie, S. (2003)."The pollination ecology of an assemblage of grassland asclepiads in South Africa".Annals of Botany.92 (6):807–834.doi:10.1093/aob/mcg206.PMC 4243623.PMID 14612378.
  131. ^abMalloch, D.; Blackwell, M. (1993). "Dispersal biology of ophiostomatoid fungi". In Wingfield, M. J.; K. A. Seifert; J. F. Webber (eds.).Ceratocystis and Ophiostoma: Taxonomy, Ecology and Pathology. St. Paul: APS. pp. 195–206.ISBN 978-0-89054-156-2.
  132. ^Scott, J. J.; Oh, D. C.; Yuceer, M. C.; Klepzig, K. D.; Clardy, J.; Currie, C. R. (2008)."Bacterial protection of beetle-fungus mutualism".Science.322 (5898): 63.Bibcode:2008Sci...322...63S.doi:10.1126/science.1160423.PMC 2761720.PMID 18832638.
  133. ^Francke-Grossmann, H. (1967). "Ectosymbiosis in wood inhabiting insects". In M. Henry (ed.).Symbiosis. Vol. 2. New York:Academic Press. pp. 141–205.
  134. ^Hodek, Ivo (2012)."Review Article: Adult diapause in Coleoptera".Psyche: A Journal of Entomology.2012:1–10.doi:10.1155/2012/249081.
  135. ^Kaufmann, T. (1971). "Hibernation in the Arctic beetle,Pterostichus brevicornis, in Alaska".Journal of the Kansas Entomological Society.44 (1):81–92.
  136. ^Gullan, P. J.; Cranston, P. S. (1994).The Insects: An Outline of Entomology. Chapman and Hall. pp. 103–104.ISBN 978-0-412-49360-7.
  137. ^Lombadero, Maria J.; Ayres, Matthew P.; Ayres, Bruce D.; Reeve, John D. (2000)."Cold tolerance of four species of bark beetle (Coleoptera: Scolytidae) in North America"(PDF).Environmental Ecology.29 (3):421–432.Archived(PDF) from the original on April 17, 2007.
  138. ^Sformo, T.; Walters, K.; Jeannet, K.; Wowk, B.; Fahy, G. M.; Barnes, B. M.; Duman, J. G. (2010)."Deep supercooling, vitrification and limited survival to −100°C in the Alaskan beetleCucujus clavipes puniceus (Coleoptera: Cucujidae) larvae".Journal of Experimental Biology.213 (3):502–509.doi:10.1242/jeb.035758.PMID 20086136.
  139. ^Brooks, Christopher (March 26, 2013)."The life of extremophiles: Surviving in hostile habitats". BBC Nature. RetrievedMarch 16, 2017.
  140. ^Graham, L. A; Liou, Y. C.; Walker, V. K.; Davies, P. L. (August 1997)."Hyperactive antifreeze protein from beetles".Nature.388 (6644):727–728.Bibcode:1997Natur.388..727G.doi:10.1038/41908.PMID 9285581.S2CID 205029622.The yellow mealworm beetle,Tenebrio molitor, contains a family of small Cys-rich and Thr-rich thermal hysteresis proteins that depress the hemolymph freezing point below the melting point by as much as 5.58°C(ΔT=thermal hysteresis). Thermal hysteresis protein expression was evaluated throughout development and after exposure to altered environmental conditions.
  141. ^Walters, K. R. Jr; Serianni, A. S.; Sformo, T.; Barnes, B. M.; Duman, J. G. (2009)."A nonprotein thermal hysteresis-producing xylomannan antifreeze in the freeze-tolerant Alaskan beetle Upis ceramboides".PNAS.106 (48):20210–20215.Bibcode:2009PNAS..10620210W.doi:10.1073/pnas.0909872106.PMC 2787118.PMID 19934038.
  142. ^Walters, K. R. Jr.; Pan, Q.; Serianni, A. S.; Duman, J. G. (2009)."Cryoprotectant biosynthesis and the selective accumulation of threitol in the freeze-tolerant Alaskan beetle,Upis ceramboides".Journal of Biological Chemistry.284 (25):16822–16831.doi:10.1074/jbc.M109.013870.PMC 2719318.PMID 19403530.
  143. ^Edney, E. B. (1971)."The body temperature of tenebrionid beetles in the Namib desert of southern Africa"(PDF).Journal of Experimental Biology.55:253–272.doi:10.1242/jeb.55.1.253.Archived(PDF) from the original on February 11, 2017.
  144. ^Knisley, C. B.; Schultz, T. D.; Hasewinkel, T. H. (1990). "Seasonal activity and thermoregulatory behavior ofCicindela patruela (Coleoptera: Cicindelidae)".Annals of the Entomological Society of America.83 (5):911–915.doi:10.1093/aesa/83.5.911.
  145. ^Parker, Andrew R.; Lawrence, Chris R. (November 1, 2001). "Water capture by a desert beetle".Nature.414 (6859):33–34.Bibcode:2001Natur.414...33P.doi:10.1038/35102108.PMID 11689930.S2CID 34785113.
  146. ^Hoback, W. Wyatt; Stanley, David W.; Higley, Leon G.; Barnhart, M. Christopher (1998). "Survival of immersion and anoxia by larval tiger beetles,Cicindela togata".The American Midland Naturalist.140 (1):27–33.doi:10.1674/0003-0031(1998)140[0027:SOIAAB]2.0.CO;2.S2CID 86163282.
  147. ^Conradi-Larsen, Else-Margrete; Sømme, Lauritz (1973). "Anaerobiosis in the overwintering beetlePelophila borealis".Nature.245 (5425):388–390.Bibcode:1973Natur.245..388C.doi:10.1038/245388a0.S2CID 4288059.
  148. ^Allison, R. (March 17, 2015)."Half of the UK sees start of pollen beetle migration". RetrievedMarch 16, 2017.
  149. ^Southwood, T. R. E. (1962). "Migration of Terrestrial Arthropods in Relation to Habitat".Biological Reviews.37 (2):171–211.doi:10.1111/j.1469-185X.1962.tb01609.x.S2CID 84711127.
  150. ^Dingle, H. (2014).Migration: The Biology of Life on the Move. Oxford University Press.
  151. ^abZabludoff, Marc (2008).Beetles. Malaysia: Michelle Bison. pp. 14–17.ISBN 978-0-7614-2532-8.
  152. ^Cambefort, Yves (2011)."Beetles as religious symbols". Insects.org. Archived fromthe original on October 18, 2016. RetrievedFebruary 10, 2017.
  153. ^Dollinger, André (January 2002)."Ancient Egyptian bestiary: Insects". Archived fromthe original on April 1, 2015. RetrievedJuly 19, 2011.
  154. ^Morales-Correa, Ben (2006)."Egyptian Symbols". All-About-Egypt. Archived fromthe original on August 20, 2011. RetrievedJuly 19, 2011.
  155. ^Ussishkin, David (2004).The New Archaeological Excavations at Lachish (1973–1994). Tel Aviv: Institute of Archaeology ofTel Aviv University. Archived fromthe original on July 3, 2018. RetrievedDecember 28, 2015.
  156. ^"Isis and Osiris",Moralia, in volume V of theLoeb Classical Library, 1936. "The race of beetles has no female, but all the males eject their sperm into a round pellet of material which they roll up by pushing it from the opposite side, just as the sun seems to turn the heavens in the direction opposite to its own course, which is from west to east.
  157. ^Betz, H. D., ed. (1992).The Greek Magical Papyri in Translation (Including the Demotic Spells) (2nd ed.).University of Chicago Press. pp. IV.52–85, VII.520, XII.101, XIII.1065–1070, XXXVI.170.
  158. ^Pliny the Elder."Natural History Book 11". Perseus.tufts.edu. RetrievedJanuary 25, 2017.
  159. ^Pliny the Elder."Natural History Book 11, Chapter 34". Perseus.tufts.edu. RetrievedJanuary 25, 2017.
  160. ^abBeavis, I. C. (1988).Insects and other Invertebrates in Classical Antiquity.University of Exeter. pp. 153–154.
  161. ^Antoninus Liberalis. Metamorphoses. Trans. Celoria, F. 1992.The Metamorphoses of Antoninus Liberalis: A translation with a commentary. London and New York, Routledge.
  162. ^Sprecher-Uebersax, E. (2008). "The Stag Beetle Lucanus Cervus (Coleoptera, Lucanidae) in Art and Mythology".Revue d'Écologie.63:145–151.
  163. ^abMississippi State University."History of the Boll Weevil in the United States".Economic impacts of the boll weevil. Archived fromthe original on May 12, 2008.
  164. ^Allen, E. A.; Humble, L. M. (2002). "Nonindigenous species introductions: A threat to Canada's forests and forest economy".Canadian Journal of Plant Pathology.24 (2):103–110.Bibcode:2002CaJPP..24..103A.doi:10.1080/07060660309506983.S2CID 85073955.
  165. ^Webber, Joan F. (2000). "Insect Vector Behavior and the Evolution of Dutch Elm Disease".The Elms. p. 47.doi:10.1007/978-1-4615-4507-1_3.ISBN 978-1-4613-7032-1.
  166. ^Alyokhin, A.; Baker, M.; Mota-Sanchez, D.; Dively, G.; Grafius, E. (2008). "Colorado potato beetle resistance to insecticides".American Journal of Potato Research.85 (6):395–413.doi:10.1007/s12230-008-9052-0.S2CID 41206911.
  167. ^Lockwood, Jeffrey A. (October 21, 2007)."Bug bomb:Why our next terrorist attack could come on six legs".Boston Globe. RetrievedFebruary 13, 2017.
  168. ^Heather, Neil W.; Hallman, Guy J. (2008).Pest Management and Phytosanitary Trade Barriers. CABI. pp. 17–18.doi:10.1079/9781845933432.0000.ISBN 978-1-84593-343-2.
  169. ^Adcock, Edward (2005)."Pests – Death watch beetle".Conservation and collective care.University of Oxford. Archived fromthe original on July 10, 2011. RetrievedJuly 17, 2011.
  170. ^Takano, Shun-Ichiro; Takasu, Keiji; Fushimi, Tsutomu; Ichiki, Ryoko T.; Nakamura, Satoshi (2014). "Suitability of four palm species for the development of the invasive pestBrontispa longissima(Coleoptera: Chrysomelidae) in the field".Entomological Science.17 (2):265–268.doi:10.1111/ens.12048.S2CID 85910791.
  171. ^"The Mountain Pine Beetle in British Columbia".Natural Resources Canada. August 19, 2008. Archived fromthe original on April 19, 2010. RetrievedJune 24, 2010.
  172. ^"Insecta: Coleoptera: Coccinellidae". Institute of Food and Agricultural Services,University of Florida. 2014. RetrievedFebruary 12, 2017.
  173. ^"'Deadly ladybird' sighted in UK".BBC News. October 5, 2004. RetrievedJune 17, 2010.
  174. ^Kromp, B. (1999). "Carabid beetles in sustainable agriculture: a review on pest control efficacy, cultivation aspects and enhancement".Agriculture, Ecosystems and Environment.74 (1–3):187–228.Bibcode:1999AgEE...74..187K.doi:10.1016/S0167-8809(99)00037-7.
  175. ^"Beetles play an important role in reducing weeds". Rothamsted Research. Archived fromthe original on July 3, 2018. RetrievedMarch 14, 2017.
  176. ^"Zygogramma bicolorata (Mexican beetle)". Invasive Species Compendium. 2012. RetrievedFebruary 12, 2017.
  177. ^Kovalev, O. V.; Reznik, S. Y.; Cherkashin, V. N. (1983). "Specific features of the methods of usingZygogramma Chevr. (Coleoptera, Chrysomelidae) in biological control of ragweeds (Ambrosia artemisiifolia L.,A. psilostachya D.C.)".Entomologicheskoe Obozrenije (in Russian).62:402–408.
  178. ^abBornemissza, George (1970)."Insectary Studies on the Control of Dung Breeding Flies by the Activity of the Dung Beetle,Onthophagus Gazella F. (Coleoptera: Scarabaeinae)".Australian Journal of Entomology.9:31–41.doi:10.1111/j.1440-6055.1970.tb00767.x.
  179. ^Brown, Jacqueline; Scholtz, Clarke H.; Janeau, Jean-Louis; Grellier, Seraphine & Podwojewski, Pascal (2010). "Dung beetles (Coleoptera: Scarabaeidae) can improve soil hydrological properties".Applied Soil Ecology.46 (1):9–16.doi:10.1016/j.apsoil.2010.05.010.hdl:2263/14419.
  180. ^Losey, John E.; Vaughan, Mace (2006)."The economic value of ecological services provided by insects"(PDF).BioScience.56 (4):311–323.doi:10.1641/0006-3568(2006)56[311:TEVOES]2.0.CO;2.S2CID 2970747. Archived fromthe original(PDF) on June 19, 2018. RetrievedJuly 17, 2011.
  181. ^Tomberlin, Jeffery K.; Sanford, Michelle R. (2012)."Forensic entomology and wildlife". In Huffman, Jane E.; Wallace, John R. (eds.).Wildlife Forensics: Methods and Applications. Developments in Forensic Science. Vol. 6 (2nd ed.).John Wiley & Sons. pp. 81–107.ISBN 978-1-119-95429-3.
  182. ^Dermestid Beetles working on a female Black Bear skull. 2014.Archived from the original on November 16, 2021. RetrievedJanuary 26, 2017.
  183. ^Fernández-Jalvo, Yolanda; Monfort, Maria Dolores Marín (2008). "Experimental taphonomy in museums: Preparation protocols for skeletons and fossil vertebrates under the scanning electron microscopy".Geobios.41 (1):157–181.Bibcode:2008Geobi..41..157F.doi:10.1016/j.geobios.2006.06.006.
  184. ^Ramos-Elorduy, Julieta; Menzel, Peter (1998).Creepy crawly cuisine: the gourmet guide to edible insects. Inner Traditions / Bear & Company. p. 5.ISBN 978-0-89281-747-4.
  185. ^Holland, Jennifer S. (May 14, 2013)."U.N. Urges Eating Insects; 8 Popular Bugs to Try".National Geographic. Archived fromthe original on June 6, 2013. RetrievedJanuary 26, 2017.
  186. ^Meyer-Rochow, V. B. (January 2017)."Therapeutic arthropods and other, largely terrestrial, folk-medicinally important invertebrates: a comparative survey and review".Journal of Ethnobiology and Ethnomedicine.13 (9): 9.doi:10.1186/s13002-017-0136-0.PMC 5296966.PMID 28173820.
  187. ^Pearson, David L.; Cassola, Fabio (1992). "World-Wide Species Richness Patterns of Tiger Beetles (Coleoptera: Cicindelidae): Indicator Taxon for Biodiversity and Conservation Studies".Conservation Biology.6 (3):376–391.Bibcode:1992ConBi...6..376P.doi:10.1046/j.1523-1739.1992.06030376.x.JSTOR 2386038.
  188. ^McGeoch, Melodie A.; Van Rensburg, Berndt J.; Botes, Antoinette (2002). "The verification and application of bioindicators: A case study of dung beetles in a savanna ecosystem".Journal of Applied Ecology.39 (4):661–672.Bibcode:2002JApEc..39..661M.doi:10.1046/j.1365-2664.2002.00743.x.
  189. ^Lachat, Thibault; Wermelinger, Beat; Gossner, Martin M.; Bussler, Heinz; Isacsson, Gunnar; Müller, Jörg (2012). "Saproxylic beetles as indicator species for dead-wood amount and temperature in European beech forests".Ecological Indicators.23:323–331.doi:10.1016/j.ecolind.2012.04.013.
  190. ^Bohac, Jaroslav (1999)."Staphylinid beetles as bioindicators"(PDF).Agriculture, Ecosystems & Environment.74 (1–3):357–372.Bibcode:1999AgEE...74..357B.CiteSeerX 10.1.1.496.4273.doi:10.1016/S0167-8809(99)00043-2.Archived(PDF) from the original on August 11, 2017.
  191. ^Life cycle of the rounded jewel beetles, Sternocera spp. วงจรชีวิตของแมลงทับกลมใช้เวลานานถึง 2 ปี – Siam Insect Zoo-Museum. Malaeng.com (2008-10-20). Retrieved on 2013-04-04.
  192. ^Ivie, Michael A. (2002). "105. Zopheridae". In Ross H. Arnett; Michael Charles Thomas (eds.).American Beetles: Polyphaga: Scarabaeoidea through Curculionoidea. Volume 2 of American Beetles.CRC Press. pp. 457–462.ISBN 978-0-8493-0954-0.
  193. ^Rennesson, Stephane; Cesard, Nicolas; Grimaud, Emmanuel (2008)."Duels en miniature: la délicate mise en scène des combats de scarabées au nord de la Thaïlande"(PDF).Insectes (in French).3 (151).Archived(PDF) from the original on August 21, 2010.
  194. ^abEraldo Medeiros Costa-Neto (2003)."Entertainment with insects: singing and fighting insects around the world. A brief review"(PDF).Etnobiología.3:21–29. RetrievedJanuary 30, 2021.
  195. ^Pemberton, R. W. (1990). "The Korean water beetle game".Pan-Pacific Entomologist.66 (2):172–174.
  196. ^Bateman, C.; Hulcr, J. (2016)."Predaceous Diving Beetles as Pets and the Self-Cleaning Aquarium"(PDF).University of Florida (IFAS Extension).Archived(PDF) from the original on February 2, 2017. RetrievedJanuary 27, 2017.
  197. ^Kawahara, A. Y. (2007)."Thirty-foot telescopic nets, bug-collecting video games, and beetle pets: Entomology in modern Japan"(PDF).American Entomologist.53 (3):160–172.doi:10.1093/ae/53.3.160. Archived fromthe original(PDF) on April 12, 2016. RetrievedJanuary 27, 2017.
  198. ^May, Mitchell (July 11, 1999)."Yen For Bugs".Chicago Tribune. RetrievedJanuary 27, 2017.
  199. ^Watts, Jonathan (August 11, 1999)."Vending machine beetles".The Guardian. RetrievedJanuary 27, 2017.
  200. ^Morse, Deborah Denenholz; Danahay, Martin A. (2007).Victorian Animal Dreams: Representations of Animals in Victorian Literature and Culture. Ashgate Publishing. p. 5.ISBN 978-0-7546-5511-4.the Victorian mania for beetle collecting
  201. ^Wallace, Alfred Russel (1869).The Malay Archipelago: The land of the orang–utan, and the bird of paradise. A narrative of travel, with sketches of man and nature (1 ed.). Macmillan. pp. vii–xiv.
  202. ^Swedish Biomimetics: The μMist Platform Technology (original URL =http://www.swedishbiomimetics.com/biomimetics_folder.pdf) (archive date = December 13, 2013)
  203. ^"Namib Desert beetle inspires self-filling water bottle".BBC News. November 23, 2012.
  204. ^Singer, Emily (January 29, 2009)."The Army's Remote-Controlled Beetle".MIT Technology Review. RetrievedMarch 16, 2017.
  205. ^Cao, Feng; Zhang, Chao; Hao Yu Choo; Sato, Hirotaka (2016)."Insect–computer hybrid legged robot with user-adjustable speed, step length and walking gait".Journal of the Royal Society Interface.13 (116): 20160060.doi:10.1098/rsif.2016.0060.PMC 4843679.PMID 27030043.
  206. ^Sato, Hirotaka; Doan, Tat Thang Vo; Kolev, Svetoslav; Huynh, Ngoc Anh; Zhang, Chao; Massey, Travis L.; Kleef, Joshua van; Ikeda, Kazuo;Abbeel, Pieter (March 16, 2015)."Deciphering the Role of a Coleopteran Steering Muscle via Free Flight Stimulation".Current Biology.25 (6):798–803.doi:10.1016/j.cub.2015.01.051.PMID 25784033.
  207. ^Vo Doan, Tat Thang; Tan, Melvin Y.W.; Bui, Xuan Hien; Sato, Hirotaka (November 3, 2017). "An Ultralightweight and Living Legged Robot".Soft Robotics.5 (1):17–23.doi:10.1089/soro.2017.0038.PMID 29412086.
  208. ^Nguyen, H. Duoc; Dung, V. Than; Sato, Hirotaka; Vo-Doan, T. Thang (February 1, 2023)."Efficient autonomous navigation for terrestrial insect-machine hybrid systems".Sensors and Actuators B: Chemical.376: 132988.arXiv:2204.13281.doi:10.1016/j.snb.2022.132988.ISSN 0925-4005.
  209. ^Vo-Doan, T. Thang; Dung, V. Than; Sato, Hirotaka (January 2022)."A Cyborg Insect Reveals a Function of a Muscle in Free Flight".Cyborg and Bionic Systems.2022.doi:10.34133/2022/9780504.ISSN 2692-7632.PMC 9494732.PMID 36285304.
  210. ^Vikram Iyer1; Ali Najafi; Johannes James; Sawyer Fuller; Shyamnath Gollakota (July 2020)."Wireless steerable vision for live insects and insect-scale robots".Science Robotics.5 (44): eabb0839.doi:10.1126/scirobotics.abb0839.PMID 33022605.S2CID 220688078.{{cite journal}}: CS1 maint: numeric names: authors list (link)
  211. ^Rob Picheta (July 15, 2020)."Scientists strapped a tiny camera to a beetle to test just how small video technology can get".CNN.
  212. ^Kotze, D. Johan; O'Hara, Robert B. (2003). "Species decline—but why? Explanations of carabid beetle (Coleoptera, Carabidae) declines in Europe".Oecologia.135 (1):138–148.Bibcode:2003Oecol.135..138K.doi:10.1007/s00442-002-1174-3.PMID 12647113.S2CID 11692514.
  213. ^Hanski, Ilkka; Koivulehto, Helena; Cameron, Alison; Rahagalala, Pierre (2007)."Deforestation and apparent extinctions of endemic forest beetles in Madagascar".Biology Letters.3 (3):344–347.doi:10.1098/rsbl.2007.0043.PMC 1995085.PMID 17341451.
  214. ^Campanaro, A.; Zapponi, L.; Hardersen, S.; Méndez, M.; Al Fulaij, N.; Audisio, P.; Bardiani, M.; Carpaneto, G. M.; Corezzola, S.; Della Rocca, F.; Harvey, D.; Hawes, C.; Kadej, M.; Karg, J.; Rink, M.; Smolis, A.; Sprecher, E.; Thomaes, A.; Toni, I.; Vrezec, A.; Zauli, A.; Zilioli, M.; Chiari, S. (2016). "A European monitoring protocol for the stag beetle, a saproxylic flagship species".Insect Conservation and Diversity.9 (6):574–584.doi:10.1111/icad.12194.S2CID 88754595.
  215. ^New, T. R. (2009).Beetles in Conservation. John Wiley & Sons. pp. ix,1–26, passim.ISBN 978-1-4443-1863-0.

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