Movatterモバイル変換


[0]ホーム

URL:


Skip to main content

Advertisement

Springer Nature Link
Log in

Roles of Aquaporins in Root Responses to Irrigation

  • Published:
Plant and Soil Aims and scope Submit manuscript

Abstract

Due to current environmental issues concerning the use of water for irrigation, the improvement of crop water-use efficiency and a reduction in water consumption has become a priority. New irrigation methods that reduce water use, while still maintaining production have been developed. To optimise these techniques knowledge of above- and below-ground plant physiological responses is necessary. During growth, plant roots are exposed to cycles of wetting and drying in normal rain-fed and irrigation situations. This review concentrates on the below-ground aspects, in particular the water permeability ofroots. Significant research has been conducted on the root anatomy and hydraulic conductivity of desert plants subjected to wetting and drying. Major intrinsic proteins (MIPs), most of which show aquaporin (water-channel) activity are likely to be involved in balancing the water relations of the plants during water deficit. However, many MIPs seem to allow permeation of other small neutral solutes and some may allow permeation of ions under certain conditions. The ability of the plant to rapidly respond to rewetting may be important in maintaining productivity. It has been suggested that aquaporins may beinvolved in this rapid response. The down-regulation of the aquaporins during dry conditions can also limit water loss to the soil, and intrinsic sensitivity of aquaporins to water potential is shown here to be very strong in some cases (NOD26). However, the response of aquaporins in various plant species to water deficits has been quite varied. Another component of aquaporin regulation in response to various stresses (hypoxia/anoxia, salinity and chilling) may be related to redistribution of flow to more favourable regions of the soil. Some irrigation techniques may be triggering these responses. Diurnal fluctuations of root hydraulic conductance that is related to aquaporin expression seem to match the expected transpirational demands of the shoot, and it remains to be seen if shoot-to-root signalling may be important in regulation of root aquaporins. If so, canopy management typical of horticultural crops may impact on root hydraulic conductance. An understanding of the regulation of aquaporins may assist in the development of improved resistance to water stress and greater efficiency of water use bytaking into account where and when roots best absorb water.

This is a preview of subscription content,log in via an institution to check access.

Access this article

Log in via an institution

Subscribe and save

Springer+ Basic
¥17,985 /Month
  • Get 10 units per month
  • Download Article/Chapter or eBook
  • 1 Unit = 1 Article or 1 Chapter
  • Cancel anytime
Subscribe now

Buy Now

Price includes VAT (Japan)

Instant access to the full article PDF.

Similar content being viewed by others

Explore related subjects

Discover the latest articles and news from researchers in related subjects, suggested using machine learning.

Abbreviations

MIP:

major intrinsic protein

TIP:

tonoplast intrinsic protein

PIP:

plasma membrane intrinsic protein

Lp :

hydraulic conductivity

Lo :

hydraulic conductance

Pf :

osmotic water permeability

PRD:

partial root zone drying

RDI:

regulated deficit irrigation

References

  • P R Adler G E Wilcox A H MarkhartSuffixIII (1996)ArticleTitleAmmonium decreases muskmelon root system hydraulic conductivityJ. Plant Nutr.19 1395–1403OccurrenceHandle1:CAS:528:DyaK28Xmsleisro%3D

    CAS  Google Scholar 

  • R Aharon Y Shahak S Wininger R Bendov Y Kapulnik G Galili (2003)ArticleTitleOverexpression of a plasma membrane aquaporin in transgenic tobacco improves plant vigor under favorable growth conditions but not under drought or salt stressPlant Cell15 439–447OccurrenceHandle10.1105/tpc.009225OccurrenceHandle12566583OccurrenceHandle1:CAS:528:DC%2BD3sXhtlOmtbg%3DOccurrenceHandle000181008700011

    Article PubMed CAS ISI  Google Scholar 

  • H Azaizeh B Gunse E Steudle (1992)ArticleTitleEffects of NaCl and CaCl2 on Water Transport across Root Cells of Maize (Zea mays L.) SeedlingsPlant Physiol.99 886–894OccurrenceHandle1:CAS:528:DyaK38XlsVOns7g%3DOccurrenceHandle16669016

    CAS PubMed  Google Scholar 

  • H Azaizeh E Steudle (1991)ArticleTitleEffects of salinity on water transport of excised maize (Zea mays L.) rootsPlant Physiol.97 1136–1145OccurrenceHandle1:CAS:528:DyaK38XotVKhsg%3D%3DOccurrenceHandle16668500

    CAS PubMed  Google Scholar 

  • I Baiges A R Schäffner A Mas (2001)ArticleTitleEight cDNA encoding putative aquaporins in Vitis hydbrid Richter-110 and their differential expressionJ. Exp. Bot.52 1949–1951OccurrenceHandle10.1093/jexbot/52.362.1949OccurrenceHandle11520885OccurrenceHandle1:CAS:528:DC%2BD3MXms12ktr0%3D

    Article PubMed CAS  Google Scholar 

  • F Barrieu F Chaumon M J Chrispeels (1998)ArticleTitleHigh expression of the tonoplast aquaporin ZmTIP1 in epidermal and conducting tissues of maizePlant Physiol.117 1153–1163OccurrenceHandle10.1104/pp.117.4.1153OccurrenceHandle9701571OccurrenceHandle1:CAS:528:DyaK1cXlsFaqsb0%3D

    Article PubMed CAS  Google Scholar 

  • D E Barrowclough C A Peterson E Steudle (2000)ArticleTitleRadial hydraulic conductivity along developing onion rootsJ. Exp. Bot.51 547–557OccurrenceHandle10.1093/jexbot/51.344.547OccurrenceHandle10938811OccurrenceHandle1:CAS:528:DC%2BD3cXit1Kmsr0%3D

    Article PubMed CAS  Google Scholar 

  • L Barthes E Deléens A Bousser J Hoarau J-L Prioul (1996)ArticleTitleXylem exudation is related to nitrate assimilation pathway in detopped maize seedlings: use of nitrate reductase and glutamine synthase inhibitors as toolsJ. Exp. Bot.47 485–495OccurrenceHandle1:CAS:528:DyaK28XivFeqtbc%3D

    CAS  Google Scholar 

  • A Biela K Grote B Otto S Hoth R Hederich R Kaldenhoff (1999)ArticleTitleThe Nicotiana tabacum plasma membrane aquaporin NtAQP1 is mercury insensitive and permeable to glycerolPlant J.18 565–570OccurrenceHandle10.1046/j.1365-313X.1999.00474.xOccurrenceHandle10417707OccurrenceHandle1:CAS:528:DyaK1MXkvFektbc%3D

    Article PubMed CAS  Google Scholar 

  • T P Birner E Steudle (1993)ArticleTitleEffects of anaerobic conditions on water and solute relations, and on active-transport in roots of maize (Zea mays L.)Planta190 474–483OccurrenceHandle10.1007/BF00224786OccurrenceHandle1:CAS:528:DyaK3sXltlGrtLk%3DOccurrenceHandleA1993LK46300007

    Article CAS ISI  Google Scholar 

  • A J Bloom M A Zwieniecki J B Passioura L B Randall N M Holbrook D A St Clair (2004)ArticleTitleWater relations under root chilling in a sensitive and tolerant tomato speciesPlant Cell Environ27 971–979OccurrenceHandle10.1111/j.1365-3040.2004.01200.x

    Article  Google Scholar 

  • M Carvajal D T Cooke D T Clarkson (1996)ArticleTitleResponses of wheat plants to nutrition deprivation may involve the regulation of water-channel functionPlanta199 372–381OccurrenceHandle10.1007/BF00195729OccurrenceHandle1:CAS:528:DyaK28XksFGlsLw%3DOccurrenceHandleA1996UX21700007

    Article CAS ISI  Google Scholar 

  • F J Cabanero V Martinez M Carvajal (2004)ArticleTitleDoes calcium determine water uptake under saline conditions in pepper plants, or is it water flux which determines calcium uptake?Plant Sci.166 443–450OccurrenceHandle1:CAS:528:DC%2BD2cXntVOqsw%3D%3D

    CAS  Google Scholar 

  • M Carvajal A Cerda V Martinez (2000)ArticleTitleDoes calcium ameliorate the negative effect of NaCl on melon root water transport by regulating aquaporin activity?New Phytol.145 439–447OccurrenceHandle10.1046/j.1469-8137.2000.00593.xOccurrenceHandle1:CAS:528:DC%2BD3cXisleitbk%3D

    Article CAS  Google Scholar 

  • M Carvajal V Martinez F C Alcaraz (1999)ArticleTitlePhysiological function of water channels as affected by salinity in roots of paprika pepperPhysiol. Plant.105 95–101OccurrenceHandle10.1034/j.1399-3054.1999.105115.xOccurrenceHandle1:CAS:528:DyaK1MXitFCktbs%3D

    Article CAS  Google Scholar 

  • M T Chahine (1992)ArticleTitleThe hydrological cycle and its influence on climateNature3509 373–380

    Google Scholar 

  • F Chaumont F Barrieu R Jung M J Chrispeels (2000)ArticleTitlePlasma membrane intrinsic proteins from maize cluster in two sequence subgroups with differential aquaporin activityPlant Physiol.122 1025–1034OccurrenceHandle10.1104/pp.122.4.1025OccurrenceHandle10759498OccurrenceHandle1:CAS:528:DC%2BD3cXktFSqtb4%3D

    Article PubMed CAS  Google Scholar 

  • F Chaumont F Barrieu E Wojcik M J Chrispeels R Jung (2001)ArticleTitleAquaporins constitute a large and highly divergent protein family in maizePlant Physiol.125 1206–1215OccurrenceHandle10.1104/pp.125.3.1206OccurrenceHandle11244102OccurrenceHandle1:CAS:528:DC%2BD3MXitFWrt7o%3D

    Article PubMed CAS  Google Scholar 

  • M J Chrispeels R Morillon C Maurel P Gerbeau P Kjellbom I Johansson (2001)ArticleTitleAquaporins in plants: structure, function, regulation and role in plant water relationsCurr Top Membr Aqaporins51 277–334OccurrenceHandle1:CAS:528:DC%2BD3MXivV2nt74%3D

    CAS  Google Scholar 

  • D T Clarkson M Carvajal T Henzler R N Waterhouse A J Smyth D T Cooke E. Steudle (2000)ArticleTitleRoot hydraulic conductance: diurnal aquaporin expression and the effects of nutrient stressJ. Exp. Bot.51 61–70OccurrenceHandle10.1093/jexbot/51.342.61OccurrenceHandle10938796OccurrenceHandle1:CAS:528:DC%2BD3cXpslKjtw%3D%3D

    Article PubMed CAS  Google Scholar 

  • H Cochard R Martin P Gross M B Bogeat-Triboulot (2000)ArticleTitleTemperature effects on hydraulic conductance and water relations of Quercus robur LJ. Exp. Bot.51 1255–1259OccurrenceHandle10.1093/jexbot/51.348.1255OccurrenceHandle10937701OccurrenceHandle1:CAS:528:DC%2BD3cXlsVyjtLY%3D

    Article PubMed CAS  Google Scholar 

  • T D Colmer (2003)ArticleTitleLong-distance transport of gases in plants: a perspective on internal aeration and radial oxygen loss from rootsPlant Cell Environ.26 17–36OccurrenceHandle10.1046/j.1365-3040.2003.00846.xOccurrenceHandle1:CAS:528:DC%2BD3sXhtlKrtLs%3D

    Article CAS  Google Scholar 

  • R T Cruz W R Jordan M C Drew (1992)ArticleTitleStructural changes and associated reduction of hydraulic conductance in roots of Sorghum bicolour L following exposure to water deficitPlant Physiol.99 203–212OccurrenceHandle1:CAS:528:DyaK38XksVCks78%3DOccurrenceHandle16668850

    CAS PubMed  Google Scholar 

  • W J Davies J L Rodriguez E L Fiscus (1982)ArticleTitleStomatal behaviour and water movement through roots of wheat plants treated with abscisic acidPlant Cell Environ.5 485–493

    Google Scholar 

  • I C Dodd (2005)ArticleTitleRoot-to-shoot signallingPlant Soil274 251–270OccurrenceHandle10.1007/s11104-004-0966-0OccurrenceHandle1:CAS:528:DC%2BD2MXhtVWiurfM

    Article CAS  Google Scholar 

  • P R Dry (1997) Response of grapevines to partial drying of the root system Doctoral Thesis University of Adelaide Australia

    Google Scholar 

  • P R Dry B R Loveys (1998)ArticleTitleFactors influencing grapevine vigour and the potential for control with partial rootzone dryingAust. J. Grape Wine Res.4 140–148

    Google Scholar 

  • P R Dry B R Loveys (1999)ArticleTitleGrapevine shoot growth and stomatal conductance are reduced when part of the root system is driedVitis38 151–156OccurrenceHandle000084920700003

    ISI  Google Scholar 

  • P R Dry B R Loveys H During (2000)ArticleTitlePartial drying of the rootzone of grape I Transient changes in shoot growth and gas exchangeVitis39 3–7OccurrenceHandle000087203400002

    ISI  Google Scholar 

  • J G Dubrovsky G B North P S Nobel (1998)ArticleTitleRoot growth developmental changes in the apex and hydraulic conductivity for Opuntia ficus-indica during droughtNew Phytol.138 75–82OccurrenceHandle10.1046/j.1469-8137.1998.00884.x

    Article  Google Scholar 

  • H During (1990)ArticleTitleStomatal adaptation of grapevine leaves to water stressProceedings5th Int. Symp. Grapevine Breeding. Vitis Special Issue 366–370

    Google Scholar 

  • M Eckert A Biela F Siefritz R Kaldenhoff (1999)ArticleTitleNew aspects of plant aquaporin regulation and specificityJ. Exp. Bot.50 1541–1545OccurrenceHandle10.1093/jexbot/50.339.1541OccurrenceHandle1:CAS:528:DyaK1MXms1OgtrY%3D

    Article CAS  Google Scholar 

  • A Fennell A H Markhart (1998)ArticleTitleRapid acclimation of root hydraulic conductivity to low temperatureJ. Exp. Bot.49 879–884OccurrenceHandle10.1093/jexbot/49.322.879OccurrenceHandle1:CAS:528:DyaK1cXjs1Sju7Y%3D

    Article CAS  Google Scholar 

  • K Fetter V WilderParticleVan M Moshelion F Chaumont (2004)ArticleTitleInteractions between plasma membrane aquaporins modulate their water channel activityPlant Cell16 215–228OccurrenceHandle10.1105/tpc.017194OccurrenceHandle14671024OccurrenceHandle1:CAS:528:DC%2BD2cXosVeksg%3D%3DOccurrenceHandle000188229000017

    Article PubMed CAS ISI  Google Scholar 

  • C Fizames S Munos C Cazettes P Nacry J Boucherez F Gaymard D Piquemal V Delorme T Commes P Doumas R Cooke J Marti H Sentenac A Gojon (2004)ArticleTitleThe Arabidopsis root transcriptome by serial analysis of gene expressionGene identification using the genome sequence. Plant Physiol.134 67–80OccurrenceHandle1:CAS:528:DC%2BD2cXhtVagtbg%3D

    CAS  Google Scholar 

  • J Foreman V Demidchik J H F Bothwell P Mylona H Miedema M A Torres P Linstead S Costa C Brownlee J D G Jones J M Davies L Dolan (2003)ArticleTitleReactive oxygen species produced by NADPH oxidase regulate plant cell growthNature422 442–446OccurrenceHandle10.1038/nature01485OccurrenceHandle12660786OccurrenceHandle1:CAS:528:DC%2BD3sXitlGgtLg%3DOccurrenceHandle000181801200047

    Article PubMed CAS ISI  Google Scholar 

  • J Frensch E Steudle (1989)ArticleTitleAxial and radial hydraulic resistance to roots of maize (Zea mays L.)Plant Physiol.91 719–726OccurrenceHandle16667092

    PubMed  Google Scholar 

  • M Gaspar A Bousser I Sissoeff O Roche J Hoarau A Mahe (2003)ArticleTitleCloning and characterization of ZmPIP1–5b, and aquaporin transporting water and ureaPlant Sci.165 21–31OccurrenceHandle10.1016/S0168-9452(03)00117-1OccurrenceHandle1:CAS:528:DC%2BD3sXks1Wlsb8%3D

    Article CAS  Google Scholar 

  • M Gaspar I Sissoeff A Bousser O Roche A Mahe J Hoarau (2001)ArticleTitleTransient variations of water transfer induced by HgCl2 in excised roots of young maize plants: new data on the inhibition processAust. J. Plant Physiol.28 1175–1186OccurrenceHandle1:CAS:528:DC%2BD38Xht1Oltbg%3D

    CAS  Google Scholar 

  • P Gerbeau J Guclu P Ripoche C Maurel (1999)ArticleTitleAquaporin Nt-TIPa can account for the high permeability of tobacco cell vacuolar membrane to small neutral solutesPlant J.18 577–587OccurrenceHandle10.1046/j.1365-313x.1999.00481.xOccurrenceHandle10417709OccurrenceHandle1:CAS:528:DyaK1MXlsFGhsbw%3D

    Article PubMed CAS  Google Scholar 

  • P Gerbeau G Amodeo T Henzler V Santoni P Ripoche C Maurel (2002)ArticleTitleThe water permeability of Arabidopsis plasma membrane is regulated by divalent cations and pHPlant J.30 71–81OccurrenceHandle10.1046/j.1365-313X.2002.01268.xOccurrenceHandle11967094OccurrenceHandle1:CAS:528:DC%2BD38XjvFGgsrw%3D

    Article PubMed CAS  Google Scholar 

  • J Gibbs D W Turner W Armstrong K Sivasithamparam H Greenway (1998)ArticleTitleResponse to oxygen deficiency in primary maize rootsII. Development of oxygen deficiency in the stele has limited short-term impact on radial hydraulic conductivity. Aust. J. Plant Physiol.25 759–763OccurrenceHandle1:CAS:528:DyaK1cXnsFCqtbw%3D

    CAS  Google Scholar 

  • D J G Gowing W J Davies H G Jones (1990)ArticleTitleA positive root-sourced signal as an indicator of soil drying in apple Malus×domestica BorkhJ. Exp. Bot.41 1535–1540

    Google Scholar 

  • J F Guenther N Chanmanivone M P Galetovic I S Wallace J A Cobb D M Roberts (2003)ArticleTitlePhosphorylation of soybean nodulin 26 on serine 262 enhances water permeability and is regulated developmentally and by osmotic signalsPlant Cell15 981–991OccurrenceHandle10.1105/tpc.009787OccurrenceHandle12671092OccurrenceHandle1:CAS:528:DC%2BD3sXjtFSlsbg%3DOccurrenceHandle000185078100016

    Article PubMed CAS ISI  Google Scholar 

  • S Guo H Brück B Sattelmacher (2002)ArticleTitleEffects of supplied nitrogen form on growth and water uptake of French bean (Phaseolus vulgaris L.) plantsPlant Soil239 267–275OccurrenceHandle10.1023/A:1015014417018OccurrenceHandle1:CAS:528:DC%2BD38XktFWitr8%3D

    Article CAS  Google Scholar 

  • W Hartung A Sauter E Hose (2002)ArticleTitleAbscisic acid in the xylem, where does it come from where does it go to? JExp. Bot.53 27–32OccurrenceHandle1:CAS:528:DC%2BD3MXptlKgtLo%3D

    CAS  Google Scholar 

  • T. Henzler E. Steudle (2000)ArticleTitleTransport and metabolic degradation of hydrogen peroxide in Chara corallina: model calculations and measurements with the pressure probe suggest transport of H2O2 across water channelsJ. Exp. Bot.51 2053–2066OccurrenceHandle10.1093/jexbot/51.353.2053OccurrenceHandle11141179OccurrenceHandle1:CAS:528:DC%2BD3MXns1ersg%3D%3D

    Article PubMed CAS  Google Scholar 

  • T Henzler R N Waterhouse A J Smyth M Carvajal D T Cooke A R Schäffner E Steudle D T Clarkson (1999)ArticleTitleDiurnal variations in hydraulic conductivity and root pressure can be correlated with the expression of putative aquaporins in the roots of Lotus japonicusPlanta210 50–60OccurrenceHandle10.1007/s004250050653OccurrenceHandle10592032OccurrenceHandle1:CAS:528:DyaK1MXmvFGjs78%3DOccurrenceHandle000083866900007

    Article PubMed CAS ISI  Google Scholar 

  • AE Hill B Shachar-Hill Y Shachar-Hill (2004)ArticleTitleWhat are aquaporins for?J. Membr. Biol.197 1–32OccurrenceHandle10.1007/s00232-003-0639-6OccurrenceHandle15014915OccurrenceHandle1:CAS:528:DC%2BD2cXhvF2mt7o%3D

    Article PubMed CAS  Google Scholar 

  • J Hoarau L Barthes A Bousser E Deleens J L Prioul (1996)ArticleTitleEffect of nitrate on water transfer across roots of nitrogen pre-starved maize seedlingsPlanta200 405–415OccurrenceHandle10.1007/BF00231396OccurrenceHandle1:CAS:528:DyaK2sXisFyltQ%3D%3DOccurrenceHandleA1996WJ46600006

    Article CAS ISI  Google Scholar 

  • E Hose D T Clarkson E Steudle L Schreiber W Hartung (2001)ArticleTitleThe exodermis: a variable apoplastic barrierJ. Exp. Bot.52 2245–2264OccurrenceHandle10.1093/jexbot/52.365.2245OccurrenceHandle11709575OccurrenceHandle1:CAS:528:DC%2BD3MXptVeis70%3D

    Article PubMed CAS  Google Scholar 

  • E Hose E Steudle W Hartung (2000)ArticleTitleAbscisic acid and hydraulic conductivity of maize roots, a study using cell- and root-pressure probesPlanta211 874–882OccurrenceHandle10.1007/s004250000412OccurrenceHandle11144273OccurrenceHandle1:CAS:528:DC%2BD3cXotVKnt7k%3DOccurrenceHandle000165441600014

    Article PubMed CAS ISI  Google Scholar 

  • D Hukin C Doering-Saad C R Thomas J Pritchard (2002)ArticleTitleSensitivity of cell hydraulic conductivity to mercury is coincident with symplasmic isolation and expression of plasmalemma aquaporin genes in growing maize rootsPlanta215 1047–1056OccurrenceHandle12355166OccurrenceHandle1:CAS:528:DC%2BD38XovValu70%3DOccurrenceHandle000178995100019

    PubMed CAS ISI  Google Scholar 

  • H Javot V Lauvergeat V Santoni F Martin-Laurent J Guclu J Vinh J Heyes K I Franck A R Schaffner D Bouchez C Maurel (2003)ArticleTitleRole of a single aquaporin isoform in root water uptakePlant Cell15 509–522OccurrenceHandle10.1105/tpc.008888OccurrenceHandle12566588OccurrenceHandle1:CAS:528:DC%2BD3sXhtlOmur8%3DOccurrenceHandle000181008700016

    Article PubMed CAS ISI  Google Scholar 

  • H Javot C Maurel (2002)ArticleTitleThe role of aquaporins in root water uptakeAnn. Bot.90 301–313OccurrenceHandle10.1093/aob/mcf199OccurrenceHandle12234142OccurrenceHandle1:CAS:528:DC%2BD38XnvVOhu7k%3D

    Article PubMed CAS  Google Scholar 

  • K D Johnson M J Chrispeels (1992)ArticleTitleTonoplast-bound protein kinase phophorylates tonoplast intrinsic proteinPlant Physiol.100 1787–1795OccurrenceHandle1:CAS:528:DyaK3sXnslWisA%3D%3DOccurrenceHandle16653198

    CAS PubMed  Google Scholar 

  • U Johanson M Karlsson I Johansson S Gustavsson S Sjövall L Fraysse A R Weig P Kjellbom (2001)ArticleTitleThe complete set of genes encoding major intrinsic proteins in Arabidopsis provides a framework for a new nomenclature for major intrinsic proteins in plantsPlant Physiol.126 1358–1369OccurrenceHandle10.1104/pp.126.4.1358OccurrenceHandle11500536OccurrenceHandle1:CAS:528:DC%2BD3MXlvFOjtbk%3D

    Article PubMed CAS  Google Scholar 

  • I Johansson M Karlsson U Johanson C Larsson P Kjellbom (2000)ArticleTitleThe role of aquaporins in cellular and whole plant water balanceBiochim. Biophys. Acta Biomembranes1465 324–342OccurrenceHandle1:CAS:528:DC%2BD3cXit1Wgt7k%3D

    CAS  Google Scholar 

  • I Johansson M Karlsson V K Shukla M J Chrispeels C Larsson P Kjellbom (1998)ArticleTitleWater transport activity of the plasma membrane aquaporin PM28A is regulated by phosphorylationPlant Cell10 451–459OccurrenceHandle10.1105/tpc.10.3.451OccurrenceHandle9501117OccurrenceHandle1:CAS:528:DyaK1cXitFGms7k%3DOccurrenceHandle000072649500014

    Article PubMed CAS ISI  Google Scholar 

  • R Kaldenhoff K Grote J Zhu U Zimmeramann (1998)ArticleTitleSignificance of plasmalemma aquaporins for water-transport in Arabidopsis thalianaPlant J.14 121–128OccurrenceHandle10.1046/j.1365-313X.1998.00111.xOccurrenceHandle9681029OccurrenceHandle1:CAS:528:DyaK1cXjtV2isLo%3D

    Article PubMed CAS  Google Scholar 

  • R G Kaldenhoff A Kolling G Richter (1996)ArticleTitleRegulation of the Arabidopsis thaliana gene AthH2 PIP1bJ. Photochem. Photobiol.36 351–354OccurrenceHandle1:CAS:528:DyaK2sXksVSnuw%3D%3D

    CAS  Google Scholar 

  • M Kamaluddin J J Zwiazek (2001)ArticleTitleMetabolic inhibition of root water flow in red-osier dogwood (Cornus stolonifera) seedlingsJ. Exp. Bot.52 739–745OccurrenceHandle11413210OccurrenceHandle1:CAS:528:DC%2BD3MXltVaqu7o%3D

    PubMed CAS  Google Scholar 

  • P Kjellbom C Larsson I Johansson M Karlsson U Johanson (1999)ArticleTitleAquaporins and water homeostasis in plantsTrends Plant Sci.4 308–314OccurrenceHandle10.1016/S1360-1385(99)01438-7OccurrenceHandle10431220

    Article PubMed  Google Scholar 

  • E J Klok I W Wilson D Wilson S C Chapman R M Ewing S C Somerville W J Peacock R Dolferus E S Dennis (2002)ArticleTitleExpression profile analysis of the low-oxygen response in Arabidopsis root culturesPlant Cell14 2481–2494OccurrenceHandle10.1105/tpc.004747OccurrenceHandle12368499OccurrenceHandle1:CAS:528:DC%2BD38XotFelsLw%3DOccurrenceHandle000178740100013

    Article PubMed CAS ISI  Google Scholar 

  • Kriedemann P E and Goodwin I 2003 Regulated Deficit Irrigation and Partial Rootzone Drying Land & Water Australia, Canberra.

  • S H Lee A P Singh G C Chung S J Ahn E K Noh E Steudle (2004a)ArticleTitleExposure of roots of cucumber (Cucumis sativus) to low temperature severely reduces root pressure, hydraulic conductivity and active transport of nutrientsPhysiol. Plant.120 413–420OccurrenceHandle10.1111/j.0031-9317.2004.00248.xOccurrenceHandle1:CAS:528:DC%2BD2cXisVKhsrY%3D

    Article CAS  Google Scholar 

  • S H Lee A P Singh G C Chung (2004b)ArticleTitleRapid accumulation of hydrogen peroxide in cucumber roots due to exposure to low temperature appears to mediate decreases in water transportJ. Exp. Bot.55 1733–1741OccurrenceHandle10.1093/jxb/erh189OccurrenceHandle1:CAS:528:DC%2BD2cXntValt7o%3D

    Article CAS  Google Scholar 

  • L H Liu U Ludewig B Gassert W B Frommer N WirénParticlevon (2003)ArticleTitleUrea transport by nitrogen-regulated tonoplast intrinsic proteins in ArabidopsisPlant Physiol.133 1220–1228OccurrenceHandle10.1104/pp.103.027409OccurrenceHandle14576283OccurrenceHandle1:CAS:528:DC%2BD3sXptFGitLs%3D

    Article PubMed CAS  Google Scholar 

  • M A Lo Gullo A Nardini S Salleo M T Tyree (1998)ArticleTitleChanges in root hydraulic conductance (KR) of Olea oleaster seedlings following drought stress and irrigationNew Phytol.140 25–31OccurrenceHandle10.1046/j.1469-8137.1998.00258.x

    Article  Google Scholar 

  • F Lopez A Bousser I Sissoeff J Hoarau A Mahe (2004)ArticleTitleCharacterization in maize of AmTIP2–3 a root-specific tonoplast intrinsic protein exhibiting aquaporin activityJ. Exp. Bot.55 539–541OccurrenceHandle10.1093/jxb/052OccurrenceHandle14673023OccurrenceHandle1:CAS:528:DC%2BD2cXms1emtQ%3D%3D

    Article PubMed CAS  Google Scholar 

  • B Loveys M Stoll P Dry M McCarthy (1998)ArticleTitlePartial rootzone drying stimulates stress responses in grapevine to improve water use efficiency while maintaining crop yield and qualityAust. Grapegrower Winemaker114 108–113

    Google Scholar 

  • C Lovisolo W Hartung A Schubert (2002)ArticleTitleWhole-plant hydraulic conductance and root-to-shoot flow of abscisic acid are independently affected by water stress in grapevinesFunct. Plant Biol.29 1349–1356OccurrenceHandle1:CAS:528:DC%2BD38Xps1ygtLs%3D

    CAS  Google Scholar 

  • F J M Maathuis V Filatov P Herzyk G C Krijger K B Axelsen S Chen B J Green Y Li K L Madagan R Sanchez-Fernandez B G Forde M G Palmgren P A Rea L E Williams D Sanders A Amtmann (2003)ArticleTitleTranscriptome analysis of root transporters reveals participation of multiple gene families in the response to cation stressPlant J.35 675–692OccurrenceHandle10.1046/j.1365-313X.2003.01839.xOccurrenceHandle12969422OccurrenceHandle1:CAS:528:DC%2BD3sXot1OqtbY%3D

    Article PubMed CAS  Google Scholar 

  • J-B Mariaux C Bockel F Salamini D Bartels (1998)ArticleTitleDessication- and abscisic acid-responsive genes encoding major intrinisic proteins MIPs from the resurrection plant Craterostigma plantagineumPlant Mol. Biol.38 1089–1099OccurrenceHandle10.1023/A:1006013130681OccurrenceHandle9869415OccurrenceHandle1:CAS:528:DyaK1MXksVClsA%3D%3D

    Article PubMed CAS  Google Scholar 

  • A H Markhart (1984)ArticleTitleAmelioration of chilling-induced water stress by abscisic acid-induced changes in root hydraulic conductancePlant Physiol.74 81–83OccurrenceHandle1:CAS:528:DyaL2cXot12qsg%3D%3DOccurrenceHandle16663391

    CAS PubMed  Google Scholar 

  • A H Markhart E L Fiscus A W Naylor P J Kramer (1979)ArticleTitleEffect of temperature on water and ion transport in soybean and broccoli systemsPlant Physiol.64 83–87OccurrenceHandle1:CAS:528:DyaE1MXlt1Smtb8%3DOccurrenceHandle16660920

    CAS PubMed  Google Scholar 

  • P Martre R Morillon F Barrieu G B North P S Nobel M J Chrispeels (2002)ArticleTitlePlasma membrane aquaporins play a significant role during recovery from water deficitPlant Physiol.130 2101–2110OccurrenceHandle10.1104/pp.009019OccurrenceHandle12481094OccurrenceHandle1:CAS:528:DC%2BD3sXktlyh

    Article PubMed CAS  Google Scholar 

  • P Martre G B North P S Nobel (2001)ArticleTitleHydraulic conductance and mercury-sensitive water transport for roots of Opuntia acanthocarpa in relation to soil drying and rewettingPlant Physiol.126 352–362OccurrenceHandle10.1104/pp.126.1.352OccurrenceHandle11351098OccurrenceHandle1:CAS:528:DC%2BD3MXjslWjtrg%3D

    Article PubMed CAS  Google Scholar 

  • C Maurel (1997)ArticleTitleAquaporins and water permeability of plant membranes AnnuRev. Plant Physiol. Plant Mol. Biol.48 399–429OccurrenceHandle1:CAS:528:DyaK2sXjs1ems7w%3D

    CAS  Google Scholar 

  • C Maurel H Javot V Lauvergeat P Gerbeau C Tournaire V Santoni J Heyes (2002)ArticleTitleMolecular physiology of aquaporins in plantsInt. Rev. Cytol.215 105–148OccurrenceHandle11952226OccurrenceHandle1:CAS:528:DC%2BD38XjsFCrt74%3D

    PubMed CAS  Google Scholar 

  • C Maurel R T Kado J Guern M J Chrispeels (1995)ArticleTitlePhophorylation regulates the water channels activity of the seed-specific aquaporin α-TIPEMBO J.14 3028–3035OccurrenceHandle7542585OccurrenceHandle1:CAS:528:DyaK2MXntVektb8%3D

    PubMed CAS  Google Scholar 

  • C Maurel J Reizer J I Schroeder M J Chrispeels (1993)ArticleTitleThe vacuolar membrane protein γ-TIP creates water specific channels in Xenopus oocytesEMBO J.12 2241–2247OccurrenceHandle8508761OccurrenceHandle1:CAS:528:DyaK3sXltFeguro%3D

    PubMed CAS  Google Scholar 

  • J Melkonian L-X Yu T L Setter (2004)ArticleTitleChilling responses of maize (Zea mays L.) seedlings: root hydraulic conductance, abscisic acid, and stomatal conductanceJ. Exp. Bot.55 1751–1760OccurrenceHandle10.1093/jxb/erh215OccurrenceHandle15235000OccurrenceHandle1:CAS:528:DC%2BD2cXntValt7g%3D

    Article PubMed CAS  Google Scholar 

  • Mitchell P D and Goodwin I 1996 Manipulating tree growth. In Micro-irrigation of Vines and Fruit Trees. Eds. P D Mitchell and I Goodwin. pp. 29–34. Agmedia, East Melbourne.

  • Moshelion M, Moran N and Chaumont F 2004 Dynamic changes in the osmotic water permeability of protoplast plasma membrane. Plant Physiol. 135 (in press).

  • I C Mori J I Schroeder (2004)ArticleTitleReactive oxygen species activation of plant Ca2+ channelsA signalling mechanism in polar growth, hormone transduction, stress signalling, and hypothetically mechanotransduction. Plant Physiol.135 702–708OccurrenceHandle1:CAS:528:DC%2BD2cXltlKjur8%3D

    CAS  Google Scholar 

  • R Munns J B Passioura (1984)ArticleTitleHydraulic resistance of plantsIII. Effects of NaCl in Barley and Lupin. Aust. J. Plant Physiol.11 351–359OccurrenceHandle1:CAS:528:DyaL2MXlvFGgtQ%3D%3D

    CAS  Google Scholar 

  • T F Neales A Masia J Zhang W J Davies (1989)ArticleTitleThe effects of partially drying part of the root system of Helianthus annuus on the abscisic acid content of the roots xylem sap and leavesJ. Exp. Bot.40 1113–1120OccurrenceHandle1:CAS:528:DyaK3cXntlyktQ%3D%3D

    CAS  Google Scholar 

  • C M Niemietz S D Tyerman (1997)ArticleTitleCharacterization of water channels in wheat root membrane vesiclesPlant Physiol.115 561–567OccurrenceHandle12223824OccurrenceHandle1:CAS:528:DyaK2sXntFSlsro%3D

    PubMed CAS  Google Scholar 

  • C M Niemietz S D Tyerman (2000)ArticleTitleChannel-mediated permeation of ammonia gas through the peribacteroid membrane of soybean nodulesFEBS Lett.465 110–114OccurrenceHandle10.1016/S0014-5793(99)01729-9OccurrenceHandle10631315OccurrenceHandle1:CAS:528:DC%2BD3cXjtV2qtg%3D%3D

    Article PubMed CAS  Google Scholar 

  • C M Niemietz S D Tyerman (2002)ArticleTitleNew potent inhibitors of aquaporins: silver and gold compounds inhibit aquaporins of plant and human originFEBS Lett.531 443–447OccurrenceHandle10.1016/S0014-5793(02)03581-0OccurrenceHandle12435590OccurrenceHandle1:CAS:528:DC%2BD38XosFCksL0%3D

    Article PubMed CAS  Google Scholar 

  • Nobel P S and North G B 1993 Rectifier-like behaviour of root-soil systems, new insights from desert succulents In Water deficits, Plant Responses from Cell to Community Eds. J A C Smith and H Griffiths pp. 163–176. BIOS Scientific Publishers Ltd, Oxford.

  • P S Nobel J Sanderson (1984)ArticleTitleRectifier-like activities of roots of two desert succulentsJ. Exp. Bot.35 727–737

    Google Scholar 

  • G B North P S Nobel (1991)ArticleTitleChanges in hydraulic conductivity and anatomy caused by drying and rewetting roots of Agave deserti AgavaceaeAm. J. Bot.78 906–915

    Google Scholar 

  • G B North P S Nobel (1995)ArticleTitleHydraulic conductivity of concentric root tissues of Agave deserti Engelm under wet and drying conditionsNew Phytol.130 47–57

    Google Scholar 

  • G B North P S Nobel (1996)ArticleTitleRadial hydraulic conductivity of individual root tissues of Pountia ficus-indica L Miller as soil moisture variesAnn. Bot.77 133–142OccurrenceHandle10.1006/anbo.1996.0015

    Article  Google Scholar 

  • G B North P Martre P S Nobel (2004)ArticleTitleAquaporins account for variations in hydraulic conductance for metabolically active root regions of Agave deserti in wet dry and rewetted soilPlant Cell Environ.27 219–228OccurrenceHandle10.1111/j.1365-3040.2003.01137.xOccurrenceHandle1:CAS:528:DC%2BD2cXisFKqsrs%3D

    Article CAS  Google Scholar 

  • Y Oono M Seki T Nanjo M Narusaka M Fujita R Satoh M Satou T Sakurai J Ishida K Akiyama K Iida K Maruyama S Satoh K Yamaguchi-Shinozaki K Shinozaki (2003)ArticleTitleMonitoring expression profiles of Arabidopsis gene expression during rehydration process after dehydration using ca 7000 full-length cDNA microarrayPlant J.34 868–887OccurrenceHandle10.1046/j.1365-313X.2003.01774.xOccurrenceHandle12795706OccurrenceHandle1:CAS:528:DC%2BD3sXlvFajsbo%3D

    Article PubMed CAS  Google Scholar 

  • P Oliviusson J Salaj I Hakman (2001)ArticleTitleExpression pattern of transcripts encoding water channel-like proteins in Norway spruce (Picea abies)Plant Mol. Biol.46 289–299OccurrenceHandle10.1023/A:1010611605142OccurrenceHandle11488476OccurrenceHandle1:CAS:528:DC%2BD3MXlslKmuro%3D

    Article PubMed CAS  Google Scholar 

  • J B Passioura (1984)ArticleTitleHydraulic resistance of plantsI. Constant or variable. Aust. J. Plant Physiol.11 333–339

    Google Scholar 

  • J B Passioura R Munns (1984)ArticleTitleHydraulic resistance of plantsII. Effects of rooting medium, and time of day, in barley and lupin. Aust. J. Plant Physiol.11 341–350

    Google Scholar 

  • J B Passioura C B Tanner (1984)ArticleTitleOscillations in apparent hydraulic conductance of cotton plantsAust. J. Plant Physiol.12 455–461

    Google Scholar 

  • G M Preston TP Carroll W B Guggino P Agre (1992)ArticleTitleAppearance of water channels in Xenopus oocytes expressing red cell CHIP28 proteinScience256 385–387OccurrenceHandle1373524OccurrenceHandle1:CAS:528:DyaK38Xitlakt7w%3DOccurrenceHandleA1992HP03200039

    PubMed CAS ISI  Google Scholar 

  • J M Quintero J M Fournier M Benlloch (1999)ArticleTitleWater transport in sunflower root systems, effects of ABA, Ca2+ status and HgCl2J. Exp. Bot.50 1607–1612OccurrenceHandle10.1093/jexbot/50.339.1607OccurrenceHandle1:CAS:528:DyaK1MXms1Ogt7k%3D

    Article CAS  Google Scholar 

  • J W Radin M P Eidenbock (1984)ArticleTitleHydraulic conductance as a factor limiting leaf expansion in phosphorus deficient cotton plantsPlant Physiol75 372–377OccurrenceHandle1:CAS:528:DyaL2cXkslWks7k%3DOccurrenceHandleA1984SX11000019OccurrenceHandle16663629

    CAS ISI PubMed  Google Scholar 

  • J W Radin M A Mathews (1989)ArticleTitleWater transport properties of cortical cells in roots of nitrogen- and phosphorus-deficient cotton seedlingsPlant Physiol.89 264–268OccurrenceHandle1:CAS:528:DyaL1MXhtFeluro%3DOccurrenceHandle10.1104/pp.89.1.264OccurrenceHandle16666523

    Article CAS PubMed  Google Scholar 

  • K Ranathunge L Kotula E Steudle R Lafitte (2004)ArticleTitleWater permeability and reflection coefficient of the outer part of young rice roots are differently affected by closure of water channels (aquaporins) or blockage of apoplastic poresJ. Exp. Bot.55 433–447OccurrenceHandle10.1093/jxb/erh041OccurrenceHandle14739266OccurrenceHandle1:CAS:528:DC%2BD2cXms1entQ%3D%3D

    Article PubMed CAS  Google Scholar 

  • T M Reinbott D G Blevins (1999)ArticleTitlePhosphorus nutritional effects on root hydraulic conductance, xylem water flow and flux of magnesium and calcium in squash plantsPlant Soil209 263–273OccurrenceHandle10.1023/A:1004646732225OccurrenceHandle1:CAS:528:DyaK1MXlt1ems7w%3D

    Article CAS  Google Scholar 

  • R L Rivers R M Dean G Chandy J E Hall D M Roberts M L Zeidel (1997)ArticleTitleFunctional analysis of nodulin 26, an aquaporin in soybean root nodule symbiosomesJ. Biol. Chem.272 16256–16261OccurrenceHandle10.1074/jbc.272.26.16256OccurrenceHandle9195927OccurrenceHandle1:CAS:528:DyaK2sXkt1ajt7c%3D

    Article PubMed CAS  Google Scholar 

  • V Santoni J Vinh D Pflieger N Sommerer C Maurel (2003)ArticleTitleA proteomic study reveals novel insights into the diversity of aquaporin forms expressed in the plasma membrane of plant rootsBiochem. J.373 289–296OccurrenceHandle10.1042/BJ20030159OccurrenceHandle12678916OccurrenceHandle1:CAS:528:DC%2BD3sXkvVentbg%3D

    Article PubMed CAS  Google Scholar 

  • X Sarda D Tousch K Ferrare F Cellier C Alcon J M Dupuis F Casse T Lamaze (1999)ArticleTitleCharacterization of closely related δ-TIP genes encoding aquaporin wheat are differentially expressed in sunflower roots upon water deprivation through exposure to airPlant Mol. Biol.40 179–191OccurrenceHandle10.1023/A:1026488605778OccurrenceHandle10394956OccurrenceHandle1:CAS:528:DyaK1MXksF2rtrY%3D

    Article PubMed CAS  Google Scholar 

  • A Sauter S R Abrams W Hartung (2002)ArticleTitleStructural requirements of abscisic acid (ABA) and its impact on water flow during radial transport of ABA analogues through maize rootsJ. Plant Growth Regul.21 50–59OccurrenceHandle10.1007/s003440010040OccurrenceHandle11976878OccurrenceHandle1:CAS:528:DC%2BD38Xlt1Smsbw%3D

    Article PubMed CAS  Google Scholar 

  • A Sauter W J Davies W Hartung (2001)ArticleTitleThe long-distance abscisic acid signal in the droughted plant, the fate of the hormone on its way from root to shootJ. Exp. Bot.52 1991–1997OccurrenceHandle10.1093/jexbot/52.363.1991OccurrenceHandle11559734OccurrenceHandle1:CAS:528:DC%2BD3MXns1Wkt78%3D

    Article PubMed CAS  Google Scholar 

  • A R Schaffner (1998)ArticleTitleAquaporin function structure and expression, are there more surprises to surface in water relations?Planta204 131–139OccurrenceHandle9487723OccurrenceHandle1:STN:280:DyaK1c7kvVOjsQ%3D%3DOccurrenceHandle000071833800001

    PubMed CAS ISI  Google Scholar 

  • H R Schultz (2003)ArticleTitleDifferences in hydraulic architecture account for near isohydric and anisohydric behavious of two field-grown Vitis vinifera L cultivars during droughtPlant, Cell Environ.26 1393–1405OccurrenceHandle10.1046/j.1365-3040.2003.01064.x

    Article  Google Scholar 

  • D Schraut C I Ullrich W Hartung (2004)ArticleTitleLateral ABA transport in maize roots (Zea mays): visualization by immunolocalizationJ. Exp. Bot.55 1635–1641OccurrenceHandle10.1093/jxb/erh193OccurrenceHandle15234994OccurrenceHandle1:CAS:528:DC%2BD2cXntValtro%3D

    Article PubMed CAS  Google Scholar 

  • M Seki M Narusaka H Abe M Kasuga K Yamaguchi-Shinozaki P Carnini Y Hayashizaki K Shinozaki (2001)ArticleTitleMonitoring the expression pattern of 1300 Arabidopsis genes under drought and cold stresses by using a full-length cDNA microarrayPlant Cell13 61–72OccurrenceHandle10.1105/tpc.13.1.61OccurrenceHandle11158529OccurrenceHandle1:CAS:528:DC%2BD3MXjslCrtr0%3DOccurrenceHandle000167544800004

    Article PubMed CAS ISI  Google Scholar 

  • F Siefritz M T Tyree C Lovisolo A Schubert R Kaldenhoff (2002)ArticleTitlePIP1 plasma membrane aquaporins in tobacco, from cellular effects to function in plantsPlant Cell14 869–876OccurrenceHandle10.1105/tpc.000901OccurrenceHandle11971141OccurrenceHandle1:CAS:528:DC%2BD38XjsFWktrw%3DOccurrenceHandle000175350100011

    Article PubMed CAS ISI  Google Scholar 

  • J A Siemens J J Zwiazek (2003)ArticleTitleEffects of water deficit stress and recovery on the root water relations of trembling aspen (Populus tremuloides) seedlingsPlant Sci.165 113–120OccurrenceHandle10.1016/S0168-9452(03)00149-3OccurrenceHandle1:CAS:528:DC%2BD3sXks1Wltr8%3D

    Article CAS  Google Scholar 

  • L B Smart W A Moskal K D Cameron A B Bennett (2001)ArticleTitleMIP genes are down-regulated under drought stress in Nicotiana glaucaPlant Cell Physiol.427 686–693

    Google Scholar 

  • E Steudle (1993) Pressure probe techniques, basic principles and application of studies of water and solute relations at the cell tissue and organ level J A C Smith H Griffiths (Eds) Water Deficits, Plant Responses from Cell to Community BIOS Scientific Publishers Ltd Oxford 5–36

    Google Scholar 

  • E Steudle (1994)ArticleTitleWater transport across rootsPlant Soil167 79–90OccurrenceHandle10.1007/BF01587602OccurrenceHandle1:CAS:528:DyaK2MXjslKisrc%3D

    Article CAS  Google Scholar 

  • E Steudle (2000a)ArticleTitleWater uptake by plant roots: an integration of viewsPlant Soil226 45–56OccurrenceHandle10.1023/A:1026439226716OccurrenceHandle1:CAS:528:DC%2BD3MXotVGrtw%3D%3D

    Article CAS  Google Scholar 

  • E Steudle (2000b)ArticleTitleWater uptake by roots, effects of water deficitJ. Exp. Bot.51 1531–1542OccurrenceHandle10.1093/jexbot/51.350.1531OccurrenceHandle1:CAS:528:DC%2BD3cXnt12jurg%3D

    Article CAS  Google Scholar 

  • E Steudle J Frensch (1996)ArticleTitleWater transport in plants, role of the apoplastPlant Soil187 67–79OccurrenceHandle10.1007/BF00011658OccurrenceHandle1:CAS:528:DyaK2sXovFaksg%3D%3D

    Article CAS  Google Scholar 

  • E Steudle A B Meshcheryakov (1996)ArticleTitleHydraulic and osmotic properties of oak rootsJ. Exp. Bot.47 387–401OccurrenceHandle1:CAS:528:DyaK28Xit1ektr8%3D

    CAS  Google Scholar 

  • E Steudle C A Peterson (1998)ArticleTitleHow does water get through roots? JExp. Bot.49 775–788OccurrenceHandle1:CAS:528:DyaK1cXjs1Sjurk%3D

    CAS  Google Scholar 

  • E Steudle S D Tyerman (1983)ArticleTitleDetermination of permeability coefficients, reflection coefficients, and hydraulic conductivity of Chara corallina using the pressure probe: effects of solute concentrationsJ. Membr. Biol.75 85–96OccurrenceHandle1:CAS:528:DyaL3sXltVanu7o%3D

    CAS  Google Scholar 

  • Stoll M 2000 Effects of partial rootzone drying on grapevine physiology and fruit quality. PhD Thesis University of Adelaide, Australia.

  • M Stoll B Loveys P Dry (2000)ArticleTitleHormonal changes induced by partial rootzone drying of irrigated grapevineJ. Exp. Bot.51 1627–1634OccurrenceHandle10.1093/jexbot/51.350.1627OccurrenceHandle11006312OccurrenceHandle1:CAS:528:DC%2BD3cXnt12ju7o%3D

    Article PubMed CAS  Google Scholar 

  • S Suga S Komatsu M Maeshima (2002)ArticleTitleAquaporin isoforms responsive to salt and water stresses and phytohormones in radish seedlingsPlant Cell Physiol.43 1229–1237OccurrenceHandle10.1093/pcp/pcf148OccurrenceHandle12407203OccurrenceHandle1:CAS:528:DC%2BD38Xot12htbY%3D

    Article PubMed CAS  Google Scholar 

  • H Sui B-G Han J K Lee P Walian B K Jap (2001)ArticleTitleStructural basis of water-specific transport through the AQP1 water channelNature414 872–878OccurrenceHandle10.1038/414872aOccurrenceHandle11780053OccurrenceHandle1:CAS:528:DC%2BD38XhtlOjuw%3D%3DOccurrenceHandle000172813300036

    Article PubMed CAS ISI  Google Scholar 

  • C Tournaire-Roux M Sutka H Javot E Gout P Gerbeau D T Luu R Bligny C Maurel (2003)ArticleTitleCytosolic pH regulates root water transport during anoxia stress through gating of aquaporinsNature425 393–397OccurrenceHandle10.1038/nature01853OccurrenceHandle14508488OccurrenceHandle1:CAS:528:DC%2BD3sXnsV2ktrY%3DOccurrenceHandle000185502300040

    Article PubMed CAS ISI  Google Scholar 

  • M Tsuda M T Tyree (2000)ArticleTitlePlant hydraulic conductance measured by the high pressure flow meter in crop plantsJ. Exp. Bot.51 823–828OccurrenceHandle10.1093/jexbot/51.345.823OccurrenceHandle10938875OccurrenceHandle1:CAS:528:DC%2BD3cXjtF2jsLY%3D

    Article PubMed CAS  Google Scholar 

  • S D Tyerman H J Bohnert C Maurel E Steudle J A C Smith (1999)ArticleTitlePlant aquaporins, their molecular biology biophysics and significance for plant water relationsJ. Exp. Bot.50 1055–1071OccurrenceHandle10.1093/jexbot/50.suppl_1.1055OccurrenceHandle1:CAS:528:DyaK1MXksVehs78%3D

    Article CAS  Google Scholar 

  • S D Tyerman C M Niemietz H Bramley (2002)ArticleTitlePlant aquaporins: multifunctional water and solute channels with expanding rolesPlant Cell Environ125 173–194

    Google Scholar 

  • S D Tyerman E Steudle (1982)ArticleTitleComparison between osmotic and hydrostatic water flows in a higher-plant cell–determination of hydraulic conductivities and reflection coefficients in isolated epidermis of Tradescantia-virginianaAust. J. Plant Physiol.9 461–479OccurrenceHandle10.1071/PP9820461

    Article  Google Scholar 

  • Tyree M T 2003 Hydraulic properties of roots. In Ecological Studies Vol. 168 Eds. H. de Kroon and E.J.W. Visser. pp. 125–150. Springer-Verlag, Berlin, Heidelberg.

  • M T Tyree S Patino J Bennink J Alexander (1995)ArticleTitleDynamic meausrements of root hydraulic conductance using a high-pressure flowmeter in the laboratory and fieldJ. Exp. Bot.46 83–94OccurrenceHandle1:CAS:528:DyaK2MXjslKiu7o%3D

    CAS  Google Scholar 

  • N Uehlein C Lovisolo F Siefritz R Kaldenhoff (2003)ArticleTitleThe tobacco aquaporin NtAQP1 is a membrane CO2 pore with physiological functionsNature425 734–736OccurrenceHandle10.1038/nature02027OccurrenceHandle14520414OccurrenceHandle1:CAS:528:DC%2BD3sXotV2iu7k%3DOccurrenceHandle000185924500045

    Article PubMed CAS ISI  Google Scholar 

  • B B Vartapetian M B Jackson (1997)ArticleTitlePlant adaptations to anaerobic stressAnn. Bot.79 2–20

    Google Scholar 

  • Vera-Estrella R, Barkla B J, Bohnert H J and Pantoja O 2004 Novel regulation of aquaporins during osmotic stress. Plant Physiol. 135 (in press).

  • P Vernieri A Lenzi M Figaro F Tognoni A Pardossi (2001)ArticleTitleHow roots contribute to the ability of Phaseolus vulgaris L. to cope with chilling-induced water stressJ. Exp. Bot.52 2199–2206OccurrenceHandle11604459OccurrenceHandle1:CAS:528:DC%2BD3MXotFSqt7c%3D

    PubMed CAS  Google Scholar 

  • X Wan E Steudle W Hartung (2004)ArticleTitleGating of water channels (aquaporins) in cortical cells of young corn roots by mechanical stimuli (pressure pulses): effects of ABA and of HgCl2J. Exp. Bot.55 411–422OccurrenceHandle10.1093/jxb/erh051OccurrenceHandle14739264OccurrenceHandle1:CAS:528:DC%2BD2cXms1emtA%3D%3D

    Article PubMed CAS  Google Scholar 

  • X Wan J J Zwiazek (2001)ArticleTitleRoot water flow and leaf stomatal conductance in aspen (Populus tremuloides) seedlings treated with abscisic acidPlanta213 741–747OccurrenceHandle10.1007/s004250100547OccurrenceHandle11678278OccurrenceHandle1:CAS:528:DC%2BD3MXms1Orsb8%3DOccurrenceHandle000171254700009

    Article PubMed CAS ISI  Google Scholar 

  • S Wilkinson W J Davies (1997)ArticleTitleXylem sap pH increase: a drought signal received at the apoplastic face of the guard cell that involves the suppression of saturable abscisic acid uptake by the epidermal symplastPlant Physiol.113 559–573OccurrenceHandle12223626OccurrenceHandle1:CAS:528:DyaK2sXht1Gitrc%3D

    PubMed CAS  Google Scholar 

  • S Yamada T Komori P N Myers S Kuwata T Kubo H Imaseki (1997)ArticleTitleExpression of plasma membrane water channel genes under water stress in Nicotiana excelsiorPlant Cell Physiol.38 1226–1231OccurrenceHandle9435139OccurrenceHandle1:CAS:528:DyaK2sXnsFWqsb8%3D

    PubMed CAS  Google Scholar 

  • Q Ye B Wiera E Steudle (2004)ArticleTitleA cohesion/tension mechanism explains the gating of water channels (aquaporins) in Chara internodes by high concentrationJ. Exp. Bot.55 449–461OccurrenceHandle10.1093/jxb/erh040OccurrenceHandle14739267OccurrenceHandle1:CAS:528:DC%2BD2cXms1entA%3D%3D

    Article PubMed CAS  Google Scholar 

  • J Zeier L Schreiber (1997)ArticleTitleChemical composition of hypodermal and endodermal cell walls and xylem vessels isolated from Clivia miniataPlant Physiol.113 1223–1231OccurrenceHandle12223670OccurrenceHandle1:CAS:528:DyaK2sXis1Gktro%3D

    PubMed CAS  Google Scholar 

  • J Zhang WJ Davies (1987)ArticleTitleIncreased synthesis of ABA in partially dehydrated root tips and ABA transport from roots to leavesJ. Exp. Bot.38 2015–2023OccurrenceHandle1:CAS:528:DyaL1cXhtV2murY%3D

    CAS  Google Scholar 

  • W-H Zhang SD Tyerman (1991)ArticleTitleEffect of low O2 concentration and azide on hydraulic conductivity and osmotic volume of cortical cells of wheat rootsAust. J. Plant Phys.18 603–613

    Google Scholar 

Download references

Author information

Authors and Affiliations

  1. Wine and Horticulture, School of Agriculture and Wine, The University of Adelaide, Waite Campus, PMB #l;1 Glen Osmond, 5064, SA, Australia

    Rebecca Vandeleur, Christa Niemietz, Joanne Tilbrook & Stephen D. Tyerman

Authors
  1. Rebecca Vandeleur

    You can also search for this author inPubMed Google Scholar

  2. Christa Niemietz

    You can also search for this author inPubMed Google Scholar

  3. Joanne Tilbrook

    You can also search for this author inPubMed Google Scholar

  4. Stephen D. Tyerman

    You can also search for this author inPubMed Google Scholar

Corresponding author

Correspondence toStephen D. Tyerman.

Rights and permissions

About this article

Access this article

Subscribe and save

Springer+ Basic
¥17,985 /Month
  • Get 10 units per month
  • Download Article/Chapter or eBook
  • 1 Unit = 1 Article or 1 Chapter
  • Cancel anytime
Subscribe now

Buy Now

Price includes VAT (Japan)

Instant access to the full article PDF.

Advertisement


[8]ページ先頭

©2009-2025 Movatter.jp