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通过测量反向模式反应对钠氢交换体中两个不同质子结合位点进行动力学剖析。

Kinetic dissection of two distinct proton binding sites in Na+/H+ exchangers by measurement of reverse mode reaction.

作者信息

Wakabayashi Shigeo, Hisamitsu Takashi, Pang Tianxiang, Shigekawa Munekazu

机构信息

Department of Molecular Physiology, National Cardiovascular Center Research Institute, Suita, Osaka 565-8565 Japan.

出版信息

J Biol Chem. 2003 Oct 31;278(44):43580-5. doi: 10.1074/jbc.M306690200. Epub 2003 Aug 19.

Abstract

We examined the effect of intracellular acidification on the reverse mode of Na+/H+ exchange by measuring 22Na+ efflux from 22Na+-loaded PS120 cells expressing the Na+/H+ exchanger (NHE) isoforms NHE1, NHE2, and NHE3. The 5-(N-ethyl-N-isopropyl)amiloride (EIPA)- or amiloride-sensitive fraction of 22Na+ efflux was dramatically accelerated by cytosolic acidification as opposed to thermodynamic prediction, supporting the concept that these NHE isoforms are activated by protonation of an internal binding site(s) distinct from the H+ transport site. Intracellular pH (pHi) dependence of 22 Na+ efflux roughly exhibited a bell-shaped profile; mild acidification from pHi 7.5 to 7 dramatically accelerated 22Na+ efflux, whereas acidification from pHi 6.6 gradually decreased it. Alkalinization above pHi 7.5 completely suppressed EIPA-sensitive 22Na+ efflux. Cell ATP depletion and mutation of NHE1 at Arg440 (R440D) caused a large acidic shift of the pHi profile for 22Na+ efflux, whereas mutation at Gly455 (G455Q) caused a significant alkaline shift. Because these mutations and ATP depletion cause correspondingly similar effects on the forward mode of Na+/H+ exchange, it is most likely that they alter exchange activity by modulating affinity of the internal modifier site for protons. The data provide substantial evidence that a proton modifier site(s) distinct from the transport site controls activities of at least three NHE isoforms through cooperative interaction with multiple protons.

摘要

我们通过测量表达钠氢交换体(NHE)亚型NHE1、NHE2和NHE3的22Na+负载的PS120细胞的22Na+外流,研究了细胞内酸化对钠氢交换逆向模式的影响。与热力学预测相反,5-(N-乙基-N-异丙基)阿米洛利(EIPA)或阿米洛利敏感的22Na+外流部分因胞质酸化而显著加速,这支持了这些NHE亚型是由与H+转运位点不同的内部结合位点质子化激活的概念。22Na+外流对细胞内pH(pHi)的依赖性大致呈钟形曲线;从pHi 7.5轻度酸化至7显著加速了22Na+外流,而从pHi 6.6酸化则逐渐降低了22Na+外流。pHi高于7.5的碱化完全抑制了EIPA敏感的22Na+外流。细胞ATP耗竭和NHE1的Arg440(R440D)突变导致22Na+外流的pHi曲线出现较大的酸性偏移,而Gly455(G455Q)突变导致显著的碱性偏移。由于这些突变和ATP耗竭对钠氢交换正向模式产生相应相似的影响,很可能它们通过调节内部修饰位点对质子的亲和力来改变交换活性。这些数据提供了大量证据,表明与转运位点不同的质子修饰位点通过与多个质子的协同相互作用控制至少三种NHE亚型的活性。

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