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DOI10.1111/pce.14911
The poorly-explored stomatal response to temperature at constant evaporative demand
发表日期2024
ISSN0140-7791
EISSN1365-3040
英文摘要Changes in leaf temperature are known to drive stomatal responses, because the leaf-to-air water vapour gradient (Delta w) increases with temperature if ambient vapour pressure is held constant, and stomata respond to changes in Delta w. However, the direct response of stomata to temperature (DRST; the response when Delta w is held constant by adjusting ambient humidity) has been examined far less extensively. Though the meagre available data suggest the response is usually positive, results differ widely and defy broad generalisation. As a result, little is known about the DRST. This review discusses the current state of knowledge about the DRST, including numerous hypothesised biophysical mechanisms, potential implications of the response for plant adaptation, and possible impacts of the DRST on plant-atmosphere carbon and water exchange in a changing climate. The direct response of stomata to temperature (the response when evaporative demand is held constant by adjusting ambient humidity) is very poorly known. This review summarises the current state of knowledge about the response, a range of potential biophysical mechanisms, and its possible implications for plant-atmosphere gas exchange and evolution.
英文关键词climate change; modelling; stomata; VPD
语种英语
WOS研究方向Plant Sciences
WOS类目Plant Sciences
WOS记录号WOS:001199762300001
来源期刊PLANT CELL AND ENVIRONMENT
文献类型期刊论文
条目标识符http://gcip.llas.ac.cn/handle/2XKMVOVA/294575
作者单位University of California System; University of California Davis; University of California System; University of California Davis
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. The poorly-explored stomatal response to temperature at constant evaporative demand[J],2024.
APA (2024).The poorly-explored stomatal response to temperature at constant evaporative demand.PLANT CELL AND ENVIRONMENT.
MLA "The poorly-explored stomatal response to temperature at constant evaporative demand".PLANT CELL AND ENVIRONMENT (2024).
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