Form, development and function of grass stomata
- PMID: 31571301
- DOI: 10.1111/tpj.14552
Form, development and function of grass stomata
Abstract
Stomata are cellular breathing pores on leaves that open and close to absorb photosynthetic carbon dioxide and to restrict water loss through transpiration, respectively. Grasses (Poaceae) form morphologically innovative stomata, which consist of two dumbbell-shaped guard cells flanked by two lateral subsidiary cells (SCs). This 'graminoid' morphology is associated with faster stomatal movements leading to more water-efficient gas exchange in changing environments. Here, we offer a genetic and mechanistic perspective on the unique graminoid form of grass stomata and the developmental innovations during stomatal cell lineage initiation, recruitment of SCs and stomatal morphogenesis. Furthermore, the functional consequences of the four-celled, graminoid stomatal morphology are summarized. We compile the identified players relevant for stomatal opening and closing in grasses, and discuss possible mechanisms leading to cell-type-specific regulation of osmotic potential and turgor. In conclusion, we propose that the investigation of functionally superior grass stomata might reveal routes to improve water-stress resilience of agriculturally relevant plants in a changing climate.
Keywords: development; function; grasses/Poaceae; guard cells; morphology; stomata; subsidiary cells.
© 2019 The Authors. The Plant Journal published by Society for Experimental Biology and John Wiley & Sons Ltd.
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References
-
- Abrash, E., Anleu Gil, M.X., Matos, J.L. and Bergmann, D.C. (2018) Conservation and divergence of YODA MAPKKK function in regulation of grass epidermal patterning. Development 145, dev165860.
-
- Apostolakos, P., Livanos, P., Giannoutsou, E., Panteris, E. and Galatis, B. (2018) The intracellular and intercellular cross-talk during subsidiary cell formation in Zea mays: existing and novel components orchestrating cell polarization and asymmetric division. Ann. Bot. 122, 679-696.
-
- Assma, S.M., Lee, D.M. and Malkus, P. (1992) Rapid stomatal response to red light in Zea mays. Photochem. Photobiol. 56, 685-689.
-
- Assuero, S.G., Mollier, A. and Pellerin, S. (2004) The decrease in growth of phosphorus-deficient maize leaves is related to a lower cell production. Plant Cell Environ. 27, 887-895.
-
- Bergmann, D.C., Lukowitz, W. and Somerville, C.R. (2004) Stomatal development and pattern controlled by a MAPKK kinase. Science, 304, 1494-1497.
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