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气孔聚集对叶片气体交换的影响。

Effects of stomata clustering on leaf gas exchange.

作者信息

Lehmann Peter, Or Dani

机构信息

Soil and Terrestrial Environmental Physics, ETH Zurich, Universitätstrasse 16, 8092, Zurich, Switzerland.

出版信息

New Phytol. 2015 Sep;207(4):1015-25. doi: 10.1111/nph.13442. Epub 2015 May 13.

DOI:10.1111/nph.13442
PMID:25967110
Abstract

A general theoretical framework for quantifying the stomatal clustering effects on leaf gaseous diffusive conductance was developed and tested. The theory accounts for stomatal spacing and interactions among 'gaseous concentration shells'. The theory was tested using the unique measurements of Dow et al. (2014) that have shown lower leaf diffusive conductance for a genotype of Arabidopsis thaliana with clustered stomata relative to uniformly distributed stomata of similar size and density. The model accounts for gaseous diffusion: through stomatal pores; via concentration shells forming at pore apertures that vary with stomata spacing and are thus altered by clustering; and across the adjacent air boundary layer. Analytical approximations were derived and validated using a numerical model for 3D diffusion equation. Stomata clustering increases the interactions among concentration shells resulting in larger diffusive resistance that may reduce fluxes by 5-15%. A similar reduction in conductance was found for clusters formed by networks of veins. The study resolves ambiguities found in the literature concerning stomata end-corrections and stomatal shape, and provides a new stomata density threshold for diffusive interactions of overlapping vapor shells. The predicted reduction in gaseous exchange due to clustering, suggests that guard cell function is impaired, limiting stomatal aperture opening.

摘要

我们建立并测试了一个用于量化气孔簇集对叶片气体扩散传导率影响的通用理论框架。该理论考虑了气孔间距以及“气体浓度壳层”之间的相互作用。我们使用了Dow等人(2014年)的独特测量数据对该理论进行了测试,这些数据表明,与具有相似大小和密度且均匀分布的气孔相比,拟南芥某一基因型中具有簇集气孔的叶片扩散传导率较低。该模型考虑了气体扩散:通过气孔孔隙;经由在气孔孔径处形成的浓度壳层,这些浓度壳层随气孔间距变化,因此会因簇集而改变;以及跨越相邻的空气边界层。我们推导了分析近似值,并使用三维扩散方程的数值模型进行了验证。气孔簇集会增加浓度壳层之间的相互作用,从而导致更大的扩散阻力,可能使通量降低5% - 15%。对于由叶脉网络形成的簇集,也发现了类似的传导率降低情况。该研究解决了文献中关于气孔末端校正和气孔形状的模糊问题,并为重叠水汽壳层的扩散相互作用提供了一个新的气孔密度阈值。由于簇集导致的气体交换预测减少,表明保卫细胞功能受损,限制了气孔孔径的张开。

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