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叶片水力脆弱性的成因及其对气体交换的影响。

The Causes of Leaf Hydraulic Vulnerability and Its Influence on Gas Exchange in .

机构信息

Department of Ecology and Evolutionary Biology, University of California, Los Angeles, California 90095

Department of Biological Sciences, California State University, Los Angeles, California 90032.

出版信息

Plant Physiol. 2018 Dec;178(4):1584-1601. doi: 10.1104/pp.18.00743. Epub 2018 Oct 26.

Abstract

The influence of the dynamics of leaf hydraulic conductance ( ) diurnally and during dehydration on stomatal conductance and photosynthesis remains unclear. Using the model species Arabidopsis ( ecotype Columbia-0), we applied a multitiered approach including physiological measurements, high-resolution x-ray microcomputed tomography, and modeling at a range of scales to characterize (1) decline during dehydration; (2) its basis in the hydraulic conductances of leaf xylem and outside-xylem pathways ( ); (3) the dependence of its dynamics on irradiance; (4) its impact on diurnal patterns of stomatal conductance and photosynthetic rate; and (5) its influence on gas exchange and survival under simulated drought regimes. Arabidopsis leaves showed strong vulnerability to dehydration diurnally in both gas exchange and hydraulic conductance, despite lack of xylem embolism or conduit collapse above the turgor loss point, indicating a pronounced sensitivity of to dehydration. increased under higher irradiance in well-hydrated leaves across the full range of water potential, but no shift in vulnerability was observed. Modeling indicated that responses to dehydration and irradiance are likely attributable to changes in membrane permeability and that a dynamic would contribute strongly to stomatal closure, improving performance, survival, and efficient water use during drought. These findings for Columbia-0 provide a baseline for assessing variation across genotypes in hydraulic traits and their influence on gas exchange during dehydration.

摘要

叶片水力导度()的日变化和脱水过程中的动态变化对气孔导度和光合作用的影响尚不清楚。本研究以模式物种拟南芥(哥伦比亚-0 生态型)为材料,采用包括生理测量、高分辨率 X 射线微计算机断层扫描和多尺度建模在内的多层次方法,来描述(1)脱水过程中 下降的原因;(2)其在叶片木质部和木质部外途径水力导度()中的基础;(3)其动态变化对光照的依赖性;(4)对气孔导度和光合速率日变化模式的影响;以及(5)对模拟干旱条件下气体交换和生存的影响。尽管木质部栓塞或导管在膨压丧失点以上没有崩溃,但拟南芥叶片在气体交换和水力导度方面都表现出强烈的日变化脱水脆弱性,这表明 对脱水有明显的敏感性。在整个水势范围内,在高光照下,健康叶片中的 会增加,但 对脱水的脆弱性没有观察到变化。模型表明,对脱水和光照的响应可能归因于膜通透性的变化,动态 会强烈促进气孔关闭,从而提高干旱条件下的性能、生存和高效用水。这些哥伦比亚-0 的发现为评估基因型间水力特性的变化及其对脱水过程中气体交换的影响提供了基线。

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