bioRxiv · 10.1101/2024.02.15.580511
Young guard cells function dynamically despite low mechanical anisotropy but gain efficiency during stomatal maturation in Arabidopsis thaliana
Abstract
Stomata are pores at the leaf surface that enable gas exchange and transpiration. The signaling pathways that regulate the differentiation of stomatal guard cells and the mechanisms of stomatal pore formation have been characterized in Arabidopsis thaliana. However, the process by which stomatal complexes develop after pore formation into fully mature complexes is poorly understood. We tracked the morphogenesis of young stomatal complexes over time to establish characteristic geometric milestones along the path of stomatal maturation. Using 3D-nanoindentation coupled with finite element modeling of young and mature stomata, we found that despite having thicker cell walls than young guard cells, mature guard cells are more energy efficient with respect to stomatal opening, potentially attributable to the increased mechanical anisotropy of their cell walls and smaller changes in turgor pressure between the closed and open states. Comparing geometric changes in young and mature guard cells of wild-type and cellulose-deficient plants revealed that although cellulose is required for normal stomatal maturation, mechanical anisotropy appears to be achieved by the collective influence of cellulose and additional wall components. Together, these data elucidate the dynamic geometric and biomechanical mechanisms underlying the development process of stomatal maturation. SignificanceWe examined how young stomata develop into mature complexes and the functional consequences of stomatal maturation, establishing geometric milestones and detecting mechanical changes in wall anisotropy and turgor pressure during stomatal maturation. We show that mature guard cells exert less energy and require a lower increase in turgor pressure to open the pore, likely due to higher wall anisotropy that results from the patterned deposition and/or remodeling of cellulose and other wall components.
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Jaafar, L., Chen, Y., Keynia, S., Turner, J. A., Anderson, C. T.. 2024-02-19. Young guard cells function dynamically despite low mechanical anisotropy but gain efficiency during stomatal maturation in Arabidopsis thaliana. https://doi.org/10.1101/2024.02.15.580511
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