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The Role of Water Channel Proteins in Facilitating Recovery of Leaf Hydraulic Conductance from Water Stress in Populus trichocarpa

机译:水通道蛋白在促进毛果​​杨水分胁迫下叶片水力传导恢复中的作用

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摘要

Gas exchange is constrained by the whole-plant hydraulic conductance (K plant). Leaves account for an important fraction of K plant and may therefore represent a major determinant of plant productivity. Leaf hydraulic conductance (K leaf) decreases with increasing water stress, which is due to xylem embolism in leaf veins and/or the properties of the extra-xylary pathway. Water flow through living tissues is facilitated and regulated by water channel proteins called aquaporins (AQPs). Here we assessed changes in the hydraulic conductance of Populus trichocarpa leaves during a dehydration-rewatering episode. While leaves were highly sensitive to drought, K leaf recovered only 2 hours after plants were rewatered. Recovery of K leaf was absent when excised leaves were bench-dried and subsequently xylem-perfused with a solution containing AQP inhibitors. We examined the expression patterns of 12 highly expressed AQP genes during a dehydration-rehydration episode to identify isoforms that may be involved in leaf hydraulic adjustments. Among the AQPs tested, several genes encoding tonoplast intrinsic proteins (TIPs) showed large increases in expression in rehydrated leaves, suggesting that TIPs contribute to reversing drought-induced reductions in K leaf. TIPs were localized in xylem parenchyma, consistent with a role in facilitating water exchange between xylem vessels and adjacent living cells. Dye uptake experiments suggested that reversible embolism formation in minor leaf veins contributed to the observed changes in K leaf.
机译:整个工厂的水力传导率(K工厂)限制了气体交换。叶片占钾素植物的重要组成部分,因此可能代表着植物生产力的主要决定因素。叶片水力传导率(K叶片)随着水分胁迫的增加而降低,这是由于叶脉中木质部栓塞和/或木外途径的特性所致。通过活组织的水流被称为水通道蛋白(AQP)的水通道蛋白促进和调节。在这里,我们评估了脱水回灌期间毛果杨叶片水力传导的变化。虽然叶片对干旱高度敏感,但在植物重新浇水后仅2小时就恢复了K叶片。当将切下的叶子台式干燥并随后用含有AQP抑制剂的溶液对木质部进行灌注时,K叶片的恢复就不存在了。我们检查了脱水-脱水期间的12个高度表达的AQP基因的表达模式,以确定可能参与叶片水力调节的同工型。在测试的AQP中,编码液泡膜内在蛋白(TIPs)的几个基因在水合叶片中表达显着增加,表明TIPs有助于逆转干旱引起的K叶片减少。 TIPs定位在木质部薄壁组织中,这与促进木质部血管和相邻活细胞之间的水交换起着一致的作用。染料吸收实验表明,次要叶脉中可逆的栓塞形成有助于观察到的K叶片变化。

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  • 作者

    Joan Laur; Uwe G. Hacke;

  • 作者单位
  • 年(卷),期 -1(9),11
  • 年度 -1
  • 页码 e111751
  • 总页数 10
  • 原文格式 PDF
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