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首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >A novel method to quantify H+-ATPase-dependent Na+ transport across plasma membrane vesicles
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A novel method to quantify H+-ATPase-dependent Na+ transport across plasma membrane vesicles

机译:一种新的量化跨质膜囊泡的H + -ATPase依赖性Na +转运的方法

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摘要

To prevent sodium toxicity in plants, Na+ is excluded from the cytosol to the apoplast or the vacuole by Na+/H+ antiporters. The secondary active transport of Na+ to apoplast against its electrochemical gradient is driven by plasma membrane H+-ATPases that hydrolyze ATP and pump W across the plasma membrane. Current methods to determine Na+ flux rely either on the use of Na-isotopes ((22) Na) which require special working permission or sophisticated equipment or on indirect methods estimating changes in the H+ gradient due to H+-ATPase in the presence or absence of Na+ by pHsensitive probes. To date, there are no methods that can directly quantify H+-ATPase-dependent Na+ transport in plasma membrane vesicles. We developed a method to measure bidirectional H+-ATPase-dependent Na+ transport in isolated membrane vesicle systems using atomic absorption spectrometry (AAS). The experiments were performed using plasma membrane-enriched vesicles isolated by aqueous two-phase partitioning from leaves of Populus tomentosa. Since most of the plasma membrane vesicles have a sealed right-side-out orientation after repeated aqueous two-phase partitioning, the ATP-binding sites of H+-ATPases are exposed towards inner side. Leaky vesicles were preloaded with Na+ sealed for the study of H(+)ATPase-dependent Na+ transport. Our data implicate that Na+ movement across vesicle membranes is highly dependent on H+-ATPase activity requiring ATP and Mg (2+) and displays optimum rates of 2.50 ltM Na+ mg(-1) membrane protein min(-1) at pH 6.5 and 25 degrees C. In this study, for the first time, we establish new protocols for the preparation of sealed preloaded right-side-out vesicles for the study of H+-ATPase-dependent Na+ transport. The results demonstrate that the Na+ content of various types of plasma membrane vesicle can be directly quantified by AAS, and the results measured using AAS method were consistent with those determined by the previous established fluorescence probe method. The method is a convenient system for the study of bidirectional H+-ATPase-dependent Na+ transport with membrane vesicles. (C) 2007 Elsevier B.V All rights reserved.
机译:为了防止植物对钠的毒性,Na + / H +反向转运蛋白将Na +从细胞质中排除到质外体或液泡中。 Na +逆着其电化学梯度向质外体的二次活性转运是由质膜H + -ATPases驱动的,质膜H + -ATPase水解ATP并将W泵过质膜。当前确定Na +通量的方法依赖于使用需要特殊工作许可的Na同位素((22)Na)或复杂的设备,或者依赖于间接方法估算存在或不存在H + -ATPase时H + -ATPase引起的H +梯度变化。 pH敏感探针可检测到Na +。迄今为止,还没有方法可以直接量化质膜囊泡中依赖H + -ATPase的Na +转运。我们开发了一种方法,使用原子吸收光谱法(AAS)在分离的膜囊泡系统中测量双向H + -ATPase依赖性Na +转运。实验是使用富集的质膜囊泡进行的,该囊泡是通过从毛白杨叶片中进行水相两相分配而分离的。由于大多数的质膜囊泡在反复进行水相两相分配后具有密封的右侧向外取向,因此H + -ATPase的ATP结合位点向内侧暴露。泄漏的囊泡预先装满Na +,用于研究H(+)ATPase依赖的Na +转运。我们的数据表明,Na +跨囊泡膜的运动高度依赖于需要ATP和Mg(2+)的H + -ATPase活性,并且在pH 6.5和25时显示2.50 ltM Na + mg(-1)膜蛋白min(-1)的最佳速率。在本研究中,我们首次建立了新的方案,用于制备密封的预装右侧出囊泡,用于研究H + -ATPase依赖性Na +转运。结果表明,可以通过AAS直接定量各种质膜囊泡的Na +含量,并且使用AAS方法测量的结果与以前建立的荧光探针方法所测定的结果一致。该方法是研究膜囊泡双向H + -ATPase依赖性Na +转运的便捷系统。 (C)2007 Elsevier B.V保留所有权利。

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