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The physiological response of Populus tremula x alba leaves to the down-regulation of PIP1 aquaporin gene expression under no water stress

机译:无水胁迫下白杨叶片对PIP1水通道蛋白基因表达下调的生理响应

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摘要

In order to study the role of PIP1 aquaporins in leaf water and CO2 transport, several lines of PIP1-deficient transgenic Populus tremula x alba were generated using a reverse genetic approach. These transgenic lines displayed no visible developmental or morphological phenotypes when grown under conditions of no water stress. Major photosynthetic parameters were also not affected by PIP1 down regulation. However, low levels of PIP1 expression resulted in greater leaf hydraulic resistance (an increase of 27%), which effectively implicated PIP1 role in water transport. Additionally, the expression level of PIP1 genes in the various transgenic lines was correlated with reductions in mesophyll conductance to CO2 (gm), suggesting that in poplar, these aquaporins influenced membrane permeability to CO2. Overall, although analysis showed that PIP1 genes contributed to the mass transfer of water and CO2 in poplar leaves, their down-regulation did not dramatically impair the physiological needs of this fast growing tree when cultivated under conditions of no stress.
机译:为了研究PIP1水通道蛋白在叶水和CO2转运中的作用,使用逆向遗传方法生成了几株PIP1缺陷型转基因白杨(Populus tremula x alba)。在无水条件下生长时,这些转基因品系没有可见的发育或形态表型。主要的光合作用参数也不受PIP1下调的影响。然而,低水平的PIP1表达导致更大的叶片抗水压性(增加27%),这有效地暗示了PIP1在水运输中的作用。此外,各种转基因品系中PIP1基因的表达水平与叶肉对CO2(gm)的电导率降低有关,这表明在杨树中,这些水通道蛋白影响了膜对CO2的渗透性。总体而言,尽管分析表明PIP1基因促进了杨树叶片中水分和CO2的质量转移,但在无胁迫条件下种植时,它们的下调并没有显着削弱这种快速生长的树木的生理需求。

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