警卫室
蒸腾作用
盐度
盐生植物
脱落酸
光合作用
化学
藜藜
气孔导度
植物
细胞生物学
生物
拟南芥
园艺
生理盐水
生物物理学
水通道蛋白
钠
作者
Shouguang Huang,Maxim Messerer,Heike M. Müller,Sönke Scherzer,M. Rob G. Roelfsema,Christoph Weiste,Markus Krischke,Pamela Korte,Klaus Mayer,Peter Ache,Rainer Hedrich
摘要
Summary Stomatal guard cells, located at the interface between the leaf and the atmosphere, play a key role in transpiration control and photosynthetic CO 2 uptake. Halophytes like Chenopodium quinoa tolerate high soil salinity, but the mechanisms governing guard cell responses to salinity stress in relation to the associated epidermal bladder cells (EBCs) remain unknown. In this study, responses of C. quinoa guard cells under salinity stress and external ABA application were analyzed using RNA profiling and voltage‐clamp‐based electrophysiology. Under salt stress, guard cell RNA profiles reported the activation of ABA synthesis and signaling pathways. However, unlike EBCs, guard cells exhibited a profoundly attenuated transcriptional response to ABA. Voltage‐clamp recordings revealed that under high Na + concentrations, guard cells' K + ‐uptake channel activity remained unaffected, while they were impaired in ABA‐induced activation of anion channels. As a consequence of a unique guard cell ABA response in salt‐adapted plants, stomatal transpiration was reduced and CO 2 sensitivity was enhanced. We propose that under salt stress, C. quinoa guard cells rewire their hormone signaling to switch from an ABA‐sensitive to a less ABA‐responsive mode. This adaptation may reflect the halophyte's ability to perceive salinity as a nonstressful condition, allowing efficient water usage and sustained growth in saline environments.
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