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拟南芥中NtAQP1在不同组织中的特异性表达揭示了该蛋白在标准和盐胁迫条件下对气孔和叶肉二氧化碳传导的作用。

Differential tissue-specific expression of NtAQP1 in Arabidopsis thaliana reveals a role for this protein in stomatal and mesophyll conductance of CO₂ under standard and salt-stress conditions.

作者信息

Sade Nir, Gallé Alexander, Flexas Jaume, Lerner Stephen, Peleg Gadi, Yaaran Adi, Moshelion Menachem

机构信息

Institute of Plant Sciences and Genetics in Agriculture, The Robert H. Smith Faculty of Agriculture, Food and Environment, The Hebrew University of Jerusalem, 76100, Rehovot, Israel.

出版信息

Planta. 2014 Feb;239(2):357-66. doi: 10.1007/s00425-013-1988-8. Epub 2013 Oct 30.

Abstract

The regulation of plant hydraulic conductance and gas conductance involves a number of different morphological, physiological and molecular mechanisms working in harmony. At the molecular level, aquaporins play a key role in the transport of water, as well as CO₂, through cell membranes. Yet, their tissue-related function, which controls whole-plant gas exchange and water relations, is less understood. In this study, we examined the tissue-specific effects of the stress-induced tobacco Aquaporin1 (NtAQP1), which functions as both a water and CO₂ channel, on whole-plant behavior. In tobacco and tomato plants, constitutive overexpression of NtAQP1 increased net photosynthesis (A(N)), mesophyll CO₂ conductance (g(m)) and stomatal conductance (g(s)) and, under stress, increased root hydraulic conductivity (L(pr)) as well. Our results revealed that NtAQP1 that is specifically expressed in the mesophyll tissue plays an important role in increasing both A(N) and g(m). Moreover, targeting NtAQP1 expression to the cells of the vascular envelope significantly improved the plants' stress response. Surprisingly, NtAQP1 expression in the guard cells did not have a significant effect under any of the tested conditions. The tissue-specific involvement of NtAQP1 in hydraulic and gas conductance via the interaction between the vasculature and the stomata is discussed.

摘要

植物水分导度和气体导度的调节涉及许多不同的形态、生理和分子机制协同作用。在分子水平上,水通道蛋白在水以及二氧化碳通过细胞膜的运输中起关键作用。然而,它们与组织相关的功能,即控制整株植物的气体交换和水分关系,却鲜为人知。在本研究中,我们研究了应激诱导的烟草水通道蛋白1(NtAQP1)作为水和二氧化碳通道,对整株植物行为的组织特异性影响。在烟草和番茄植株中,NtAQP1的组成型过表达增加了净光合速率(A(N))、叶肉二氧化碳导度(g(m))和气孔导度(g(s)),并且在应激条件下,还增加了根系水力导度(L(pr))。我们的结果表明,在叶肉组织中特异性表达的NtAQP1在增加A(N)和g(m)方面发挥着重要作用。此外,将NtAQP1的表达靶向到维管束包膜细胞显著改善了植物的应激反应。令人惊讶的是,在任何测试条件下,保卫细胞中NtAQP1的表达都没有显著影响。本文讨论了NtAQP1通过维管系统和气孔之间的相互作用在水分和气体导度中的组织特异性作用。

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