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.2009;183(4):1053-1063.
doi: 10.1111/j.1469-8137.2009.02905.x. Epub 2009 Jun 22.

Exploding a myth: the capsule dehiscence mechanism and the function of pseudostomata in Sphagnum

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Exploding a myth: the capsule dehiscence mechanism and the function of pseudostomata in Sphagnum

Jeffrey G Duckett et al. New Phytol.2009.
Free article

Abstract

The nineteenth century air-gun explanation for explosive spore discharge in Sphagnum has never been tested experimentally. Similarly, the function of the numerous stomata ubiquitous in the capsule walls has never been investigated. Both intact and pricked Sphagnum capsules, that were allowed to dry out, all dehisced over an 8-12 h period during which time the stomatal guard cells gradually collapsed and their potassium content, measured by X-ray microanalysis in a cryoscanning electron microscope, gradually increased. By contrast, guard cell potassium fell in water-stressed Arabidopsis. The pricking experiments demonstrate that the air-gun notion for explosive spore discharge in Sphagnum is inaccurate; differential shrinkage of the capsule walls causes popping off the rigid operculum. The absence of evidence for a potassium-regulating mechanism in the stomatal guard cells and their gradual collapse before spore discharge indicates that their sole role is facilitation of sporophyte desiccation that ultimately leads to capsule dehiscence. Our novel functional data on Sphagnum, when considered in relation to bryophyte phylogeny, suggest the possibility that stomata first appeared in land plants as structures that facilitated sporophyte drying out before spore discharge and only subsequently acquired their role in the regulation of gaseous exchange.

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References

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    1. Baum DA, Donahue MJ. 2002. Transference of function, heterotopy and the evolution of plant development. In: Cronk QCB, Bateman RM, Hawkins JA, eds. Developmental genetics and plant evolution. London, UK: Taylor and Francis, 52-69.
    1. Boudier P. 1988. Differenciation structurale de l’eiperme du sporogone chez Sphagnum fimbriatum Wilson. Annales des Sciences Naturelles Botanique, Paris 8: 143-156.
    1. Carafa A, Duckett JG, Knox JP, Ligrone R. 2005. Distribution of cell-wall xylans in bryophytes and tracheophytes: new insights into basal interrelationships in land plants. New Phytologist 168: 231-240.
    1. Cavers F. 1911. The inter-relationships of the Bryophyta. Cambridge, UK: Cambridge University Press (reprinted from New Phytologist).

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