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Leaf Maximum Photosynthetic Rate and Venation Are Linked by Hydraulics

机译:叶片最大光合速率和通气性通过水力联系在一起

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摘要

Leaf veins are almost ubiquitous across the range of terrestrial plant diversity, yet their influence on leaf photosynthetic performance remains uncertain. We show here that specific physical attributes of the vascular plumbing network are key limiters of the hydraulic and photosynthetic proficiency of any leaf. Following the logic that leaf veins evolved to bypass inefficient water transport through living mesophyll tissue, we examined the hydraulic pathway beyond the distal ends of the vein system as a possible limiter of water transport in leaves. We tested a mechanistic hypothesis that the length of this final traverse, as water moves from veins across the mesophyll to where it evaporates from the leaf, governs the hydraulic efficiency and photosynthetic carbon assimilation of any leaf. Sampling 43 species across the breadth of plant diversity from mosses to flowering plants, we found that the post-vein traverse as determined by characters such as vein density, leaf thickness, and cell shape, was strongly correlated with the hydraulic conductivity and maximum photosynthetic rate of foliage. The shape of this correlation provided clear support for the a priori hypothesis that vein positioning limits photosynthesis via its influence on leaf hydraulic efficiency.
机译:在整个陆地植物多样性范围内,叶脉几乎无处不在,但是它们对叶片光合性能的影响仍然不确定。我们在这里表明,血管水暖网络的特定物理属性是任何叶片的水力和光合能力的关键限制因素。遵循叶静脉进化为绕过通过活的叶肉组织的无效水输送的逻辑,我们检查了超出静脉系统远端的水力通路,这可能是限制叶片中水输送的途径。我们测试了一个机械假说,即最终遍历的长度是随着水从叶肉的叶脉穿过水流到叶的蒸发位置,从而决定了叶片的水力效率和光合碳同化作用。在从苔藓到开花植物的整个植物广度范围内对43种植物进行采样,我们发现,静脉的遍历与水力传导率和最大光合速率密切相关,脉络遍历是由诸如静脉密度,叶片厚度和细胞形状等特征决定的的叶子。这种相关性的形状为先验假设提供了明确的支持,该先验假设是静脉定位通过其对叶片水力效率的影响来限制光合作用。

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