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Leaf temperature responses to ABA and dead bacteria in wheat and Arabidopsis

机译:在小麦和拟南芥中对ABA和死亡细菌的叶温响应

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Stomatal densities, aperture openness and their responsiveness to environmental change determine plant water loss and regulate entry of pathogens. Stomatal responsiveness is usually assessed on restricted areas of leaves or isolated epidermal peels floated in solution. Analyzing these responses in the whole plant context could give valuable additional information, for example on the role of mesophyll in stomatal responses. We analyzed stomatal responses to the phytohormone abscisic acid (ABA) and pathogenic elicitors in intact plants by dynamic measurement of leaf temperature. We tested whether ABA-induced stomatal closure in wheat requires external nitrate and whether bacterial elicitor-induced stomatal closure can be detected by dynamic thermal imaging in intact Arabidopsis. We found that wheat was hypersensitive to all applied treatments, as even mock-treated leaves showed a strong increase in leaf temperature. Nevertheless, ABA activated stomatal closure in wheat independent of exogenous nitrate. Pathogenic elicitors triggered a fast and transient increase in leaf temperature in intact Arabidopsis, indicating short-term stomatal closure. The data suggest that the dynamics of pathogen-induced stomatal closure is different in whole plants compared to epidermal peels, where elicitor-induced stomatal closure persists longer. We propose that dynamic thermal imaging could be applied to address the effect of pathogenic elicitors on stomatal behavior in whole plants to complement detached sample assays and gain a better understanding of stomatal immunity.
机译:气孔密度、孔径开放度及其对环境变化的反应决定了植物的水分损失,并调节病原体的进入。气孔反应性通常根据叶片的限制区域或漂浮在溶液中的孤立表皮进行评估。在整个植物环境中分析这些反应可以提供有价值的额外信息,例如叶肉在气孔反应中的作用。通过叶片温度的动态测量,我们分析了完整植株的气孔对植物激素脱落酸(ABA)和致病性激发子的反应。我们测试了ABA诱导的小麦气孔关闭是否需要外部硝酸盐,以及细菌诱导子诱导的气孔关闭是否可以通过完整拟南芥的动态热成像检测到。我们发现,小麦对所有施用的处理都非常敏感,因为即使是模拟处理的叶片也显示出叶片温度的强烈升高。然而,ABA激活小麦气孔关闭,不依赖于外源硝酸盐。在完整的拟南芥中,致病性激发子触发了叶片温度的快速瞬时升高,表明气孔短期关闭。这些数据表明,与诱导子诱导的气孔关闭持续时间更长的表皮相比,病原体诱导的气孔关闭在整个植株中的动力学是不同的。我们提出,动态热成像技术可以应用于研究致病性激发子对整株植物气孔行为的影响,以补充分离样品分析,更好地了解气孔免疫。

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