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首页> 外文期刊>Journal of Medicinal Plants Research >Changes in H+-ATPase activity of plasma membrane-enriched vesicles isolated from physic nut roots and leaves of energy and medicinal plant, Jatropha curcas L., as an adaptation mechanism to salinity
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Changes in H+-ATPase activity of plasma membrane-enriched vesicles isolated from physic nut roots and leaves of energy and medicinal plant, Jatropha curcas L., as an adaptation mechanism to salinity

机译:从能量和药用植物麻疯树的物理坚果根和叶中分离的富含质膜的囊泡,其H + -ATPase活性的变化是盐分的适应机制

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摘要

The plasma membrane H+-ATPase (PM H+-ATPase) plays a key role in the activation of ion and nutrient transport, and is proposed to be involved in salt tolerance. This study investigates the acclimation of PM H+-ATPase in physic nut (Jatropha curcas?L.) roots and leaves treated with 0, 50 and 200 mM NaCl for 5 days. Upon comparison with control roots, the H+-ATPase hydrolytic activity, Vmax, Km, H+-pumping activity and pH gradient potential across the plasma membrane were significantly higher in roots treated with NaCl, especially under mild salt stress. The translational activation of PM H+-ATPase of physic nut roots helped to maintain K+?and?Ca2+?uptake as well as nitrogen and phosphorus uptake in roots. Compared with the control leaves, the maintenance of H+?transport under 50 mM NaCl was attributed to a modification of the lipid membrane, and the increase in H+transport under 200 mM NaCl could be because of an acid-mediated activation. Differential expression of the H+-ATPase isoforms could also occur in leaves under salt stress. Thus, the stable pH gradient created by the H+-ATPase in leaves treated with 50 mM NaCl assisted normal leaf growth. These modulations of PM H+-ATPase in the roots and leaves of physic nuts could represent a set of adaptive mechanisms to salinity.
机译:质膜H + -ATPase(PM H + -ATPase)在离子和养分转运的激活中起关键作用,并被认为与盐耐受性有关。这项研究调查了0、50和200 mM NaCl处理5天的物理坚果(Jatropha curcas?L。)根和叶片中PM H + -ATPase的适应性。与对照根比较,NaCl处理的根中H + -ATPase的水解活性,Vmax,Km,H +泵浦活性和质膜上的pH梯度势均显着较高,尤其是在轻度盐胁迫下。物理坚果根的PM H + -ATPase的翻译激活有助于维持根​​中K +?和?Ca2 +?的吸收以及氮和磷的吸收。与对照叶片相比,在50mM NaCl下维持H +转运是由于脂质膜的修饰,而在200mM NaCl下维持H +转运是由于酸介导的活化。在盐胁迫下,H + -ATPase亚型的差异表达也可能在叶片中发生。因此,由H + -ATPase在用50 mM NaCl处理的叶片中产生的稳定的pH梯度有助于正常的叶片生长。物理坚果的根和叶中PM H + -ATPase的这些调节可能代表了一组盐度适应性机制。

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