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Biology subjects

Lim, W. S.

Publications and source records attributed to Lim, W. S..

2 recordsLinked to original sources

Guard cell size and pore aperture influence stomatal closure kinetics

In fluctuating environments, the kinetics of stomatal opening and closing influence the balance between carbon gain and water loss. Smaller guard cells may respond faster to fluctuating environmental conditions because of their greater surface area for osmolyte flux relative to cell volume. A related hypothesis is that operational stomatal conductance (gop) is often well below its theoretical maximum (gmax) because at this stomatal aperture, guard cell volume is poised to change rapidly with small changes in turgor pressure. We analyzed 2,125 estimates of stomatal closure kinetics in response to an abrupt increase in vapor pressure deficit (VPD) among 29 diverse wild tomato populations in the genus Solanum. Leaves with small guard cells and a lower initial stomatal conductance (gi) closed faster, but each explained variation in kinetic parameters at different levels of biological organization. Guard cell size had high phylogenetic heritability and varied relatively little within populations, whereas gi varied mostly among individuals and between light intensity treatments. Smaller stomata can be speedier, but the current physiological state of the leaf also affects the responsiveness of stomatal conductance to fluctuations. Selection on stomatal speed may influence not only anatomical traits like guard cell size, but also physiological controls on gop.

plant biology↗

Plasticity and adaptation to high light intensity amplify the advantage of amphistomatous leaves

The presence of stomata on both leaf surfaces (amphistomy) increases photosynthesis by reducing the distance for CO2 diffusion between stomata and chloroplasts. Paradoxically, most leaves are hypos-tomatous (stomata on lower surface), despite the photosynthetic advantage of amphistomy. Across 29 diverse populations of "wild tomatoes", leaves developed under high light intensity benefit more from amphistomy in terms of CO2 assimilated for a given stomatal conductance than plants developed under low light. Furthermore, populations native to open habitats benefit more from amphistomy than those from more closed habitats. Thus, plasticity and adaptation together may explain why amphistomatous leaves are prevalent in sunny, open habitats, including many crops. Contrary to common assumptions, amphistomy can save water because hypostomatous leaves evaporate 10-65% more to achieve the same photosynthetic rate.

plant biology↗