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潜叶虫有助于我们理解叶片的水力设计。

Leafminers help us understand leaf hydraulic design.

机构信息

Dipartimento di Scienze della Vita, Università di Trieste, Via L. Giorgieri 10, 34127 Trieste, Italy.

出版信息

Plant Cell Environ. 2010 Jul;33(7):1091-100. doi: 10.1111/j.1365-3040.2010.02131.x. Epub 2010 Mar 1.

Abstract

Leaf hydraulics of Aesculus hippocastanum L. were measured over the growing season and during extensive leaf mining by the larvae of an invasive moth (Cameraria ohridella Deschka et Dimic) that specifically destroy the palisade tissue. Leaves showed seasonal changes in hydraulic resistance (R(lamina)) which were related to ontogeny. After leaf expansion was complete, the hydraulic resistance of leaves and the partitioning of resistances between vascular and extra-vascular compartments remained unchanged despite extensive disruption of the palisade by leafminers (up to 50%). This finding suggests that water flow from the petiole to the evaporation sites might not directly involve the palisade cells. The analysis of the temperature dependence of R(lamina) in terms of Q(10) revealed that at least one transmembrane step was involved in water transport outside the leaf vasculature. Anatomical analysis suggested that this symplastic step may be located at the bundle sheath where the apoplast is interrupted by hydrophobic thickening of cell walls. Our findings offer some support to the view of a compartmentalization of leaves into well-organized water pools so that the transpiration stream would involve veins, bundle sheath and spongy parenchyma, while the palisade tissue would be largely by-passed with the possible advantage of protecting cells from short-term fluctuations in water status.

摘要

七叶树的叶片水力特性在生长季节和叶片被入侵的鳞翅目幼虫(银纹夜蛾)严重取食期间进行了测量,这种鳞翅目幼虫专门破坏栅栏组织。叶片的水力阻力(R(叶片))表现出季节性变化,与个体发育有关。叶片完全展开后,尽管叶片被鳞翅目幼虫严重破坏(高达 50%),叶片的水力阻力和阻力在血管和血管外隔室之间的分配保持不变。这一发现表明,从叶柄到蒸发部位的水流可能不直接涉及栅栏细胞。根据 Q(10)分析 R(叶片)的温度依赖性表明,水在叶片血管外的运输至少涉及一个跨膜步骤。解剖学分析表明,这个胞质步骤可能位于鞘细胞中,细胞壁的疏水加厚中断了质外体。我们的发现为叶片被分隔成组织良好的水池的观点提供了一些支持,因此蒸腾流将涉及叶脉、鞘细胞和海绵组织,而栅栏组织将在很大程度上被旁路化,其可能的优点是保护细胞免受短期水分状况波动的影响。

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