Search bioRxiv⌕ Search

Biology subjects

Sloan, J. M.

Publications and source records attributed to Sloan, J. M..

2 recordsLinked to original sources

Stomatal density affects rice mesophyll cell size and shape and modulates a conserved pattern of cells through the leaf

The structure of the mesophyll influences how light, CO2 and water travels inside a leaf, affecting the rates of both photosynthesis and transpiration. Recent studies in wheat and Arabidopsis have shown that the structure of the mesophyll is influenced by the density and activity of stomata, consistent with the hypothesis that gas flow via stomata can modulate internal cell growth and separation to co-ordinate leaf structure and function. To investigate whether this also occurs in rice, a staple food crop for a large fraction of the worlds population, we examined mesophyll structure in rice mutants with altered stomatal density. Our data show that stomatal function modulates mesophyll structure in rice. Variation in the degree of mesophyll lobing made a major contribution to altered mesophyll structure, suggesting that modified leaf gas flux through stomata influences an aspect of cell shape directly linked to gas exchange capacity in rice. In addition, our analysis revealed a previously unreported underlying pattern in cell size, shape and axiality across layers of the rice mesophyll, which further investigation revealed is present in a range of rice species and cultivars. The potential origin and significance of this mesophyll patterning are discussed. HIGHLIGHTWe describe a previously unreported cellular pattern in rice leaves and show that it is modulated by stomata. These results shed new light on leaf structure and function.

plant biology↗

The Influences of Stomatal Size and Density on Rice Drought, Salinity and VPD Resilience

O_LIA warming climate coupled with reductions in water availability and rising salinity are increasingly affecting rice yields (Oryza sativa L.). Elevated temperatures are causing vapour pressure deficit (VPD) rises, leading to stomata closure, further reducing plant productivity and cooling. It is unclear which conformation of stomatal size (SS) and stomatal density (SD) will best suit these future environmental extremes. C_LIO_LITo understand the influence of stomatal characteristics on rice abiotic stress tolerance, we screened the stomatal characteristics of 72 traditionally-bred varieties. We found significant variation in SS, SD and maximal stomatal conductance (gsmax) but did not identify any varieties with SD and gsmax as low as the genetically manipulated stomatal development mutant OsEPF1oe. C_LIO_LITraditionally-bred varieties with high SD and small SS (resulting in high gsmax) typically had lower biomasses, and these plants were more resilient to drought than low SD and large SS plants, which were physically larger. None of the varieties tested were as resilient to drought or salinity as low SD OsEPF1oe mutants. High SD and small SS rice displayed faster stomatal closure during rising VPD, but photosynthesis and plant cooling were reduced. C_LIO_LICompromises will be required when choosing rice SS and SD to tackle multiple future environmental stresses. C_LI

plant biology↗