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碳酸酐酶IV与人NBC1钠/碳酸氢根共转运体之间的直接细胞外相互作用。

Direct extracellular interaction between carbonic anhydrase IV and the human NBC1 sodium/bicarbonate co-transporter.

作者信息

Alvarez Bernardo V, Loiselle Frederick B, Supuran Claudiu T, Schwartz George J, Casey Joseph R

机构信息

Department of Physiology, University of Alberta, Edmonton, Alberta, Canada T6G 2H7.

出版信息

Biochemistry. 2003 Oct 28;42(42):12321-9. doi: 10.1021/bi0353124.

Abstract

Sodium/bicarbonate co-transporters (NBC) are crucial in the regulation of intracellular pH (pH(i)) and HCO(3)(-) metabolism. Electrogenic NBC1 catalyzes HCO(3)(-) fluxes in mammalian kidney, pancreas, and heart cells. Carbonic anhydrase IV (CAIV), which is also present in these tissues, is glycosylphosphatidyl inositol-anchored to the outer surface of the plasma membrane where it catalyzes the hydration-dehydration of CO(2)/HCO(3)(-). The physical and functional interactions of CAIV and NBC1 were investigated. NBC1 activity was measured by changes of pH(i) in NBC1-transfected HEK293 cells subjected to acid loads. Cotransfection of CAIV with NBC1 increased the rate of pH(i) recovery by 44 +/- 3%, as compared to NBC1-alone. In contrast, CAIV did not increase the functional activity of G767T-NBC1 (mutated on the fourth extracellular loop (EC4) of NBC1), and G767T-NBC1, unlike wild-type NBC1, did not interact with CAIV in glutathione-S-transferase pull-down assays. This indicates that G767 of NBC1 is directly involved in CAIV interaction. NBC1-mediated pH(i) recovery rate after acid load was inhibited by 40 +/- 7% when coexpressed with the inactive human CAII mutant, V143Y. V143Y CAII competes with endogenous CAII for interaction with NBC1 at the inner surface of the plasma membrane, which indicates that NBC1/CAII interaction is needed for full pH(i) recovery activity. We conclude that CAIV binds EC4 of NBC1, and this interaction is essential for full NBC1 activity. The tethering of CAII and CAIV close to the NBC1 HCO(3)(-) transport site maximizes the transmembrane HCO(3)(-) gradient local to NBC1 and thereby activates the transport rate.

摘要

钠/碳酸氢根协同转运蛋白(NBC)在调节细胞内pH(pH(i))和HCO(3)(-)代谢中起关键作用。电中性NBC1在哺乳动物肾脏、胰腺和心脏细胞中催化HCO(3)(-)通量。这些组织中也存在的碳酸酐酶IV(CAIV)通过糖基磷脂酰肌醇锚定在质膜外表面,在那里催化CO(2)/HCO(3)(-)的水合-脱水反应。研究了CAIV和NBC1的物理及功能相互作用。通过在接受酸负荷的NBC1转染的HEK293细胞中测量pH(i)的变化来测定NBC1活性。与单独转染NBC1相比,CAIV与NBC1共转染使pH(i)恢复速率提高了44±3%。相反,CAIV并未增加G767T-NBC1(在NBC1的第四细胞外环(EC4)上发生突变)的功能活性,并且与野生型NBC1不同,在谷胱甘肽-S-转移酶下拉实验中,G767T-NBC1不与CAIV相互作用。这表明NBC1的G767直接参与与CAIV的相互作用。当与无活性的人CAII突变体V143Y共表达时,酸负荷后NBC1介导的pH(i)恢复速率被抑制了40±7%。V143Y CAII与内源性CAII竞争在质膜内表面与NBC1的相互作用,这表明NBC1/CAII相互作用对于完全的pH(i)恢复活性是必需的。我们得出结论,CAIV结合NBC1的EC4,并且这种相互作用对于NBC1的完全活性至关重要。CAII和CAIV靠近NBC1的HCO(3)(-)转运位点的拴系作用使NBC1局部的跨膜HCO(3)(-)梯度最大化,从而激活转运速率。

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