首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Renouncing electroneutrality is not free of charge: Switching on electrogenicity in a Na+-coupled phosphate cotransporter
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Renouncing electroneutrality is not free of charge: Switching on electrogenicity in a Na+-coupled phosphate cotransporter

机译:放弃电子中性不是免费的:在Na +偶联的磷酸盐共转运蛋白中开启电原性

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摘要

Renal type IIa Na+-coupled inorganic phosphate (Pi) cotransporters (NaPi-IIa) mediate divalent Pi transport in an electrogenic manner, whereas the renal type IIc isoform (NaPi-IIc) is electroneutral, yet it shows high sequence identity with NaPi-IIa. Dual uptake (32Pi/22Na) assays confirmed that NaPi-IIc displayed Na+-coupled Pi cotransport with a 2:1 (Na+:Pi) stoichiometry compared with 3:1 established for NaPi-IIa. This finding suggested that the electrogenicity of NaPi-IIa arises from the interaction of an additional Na+ ion compared with NaPi-IIc. To identify the molecular elements responsible for the functional difference between isoforms, we used chimera and amino acid replacement approaches. Transport activity of chimeras constructed with NaPi-IIa and NaPi-IIc indicated that residues within the first six transmembrane domains were essential for the electrogenicity of NaPi-IIa. Sequence comparison between electrogenic and electroneutral isoforms revealed differences in the charge and polarity of residues clustered in three areas, one of which included part of the predicted third transmembrane domain. Here, substitution of three residues with their NaPi-IIa equivalents in NaPi-IIc (S189A, S191A, and G195D) resulted in a transporter that displayed a 1:1 charge/Pi coupling, a 3:1 Na+:Pi stoichiometry, and transient currents that resembled pre-steady-state relaxations. The mutant's weaker voltage dependency and 10-fold lower apparent Pi affinity compared with NaPi-IIa indicated that other residues important for the NaPi-IIa kinetic fingerprint exist. Our findings demonstrate that, through a minimal number of side chain substitutions, we can effect a switch from electroneutral to electrogenic cotransporter function, concomitant with the appearance of a cosubstrate interaction site.
机译:肾脏IIa型Na + 偶联的无机磷酸盐(Pi)共转运蛋白(NaPi-IIa)以电子方式介导二价Pi转运,而肾脏IIc型亚型(NaPi-IIc)是电子中性的,但与NaPi-IIa具有高度序列同一性。双重摄取( 32 Pi / 22 Na)测定证实NaPi-IIc显示出Na + 偶联的Pi共转运比例为2:1(Na + :Pi)的化学计量比与NaPi-IIa的3:1相比。这一发现表明,与NaPi-IIc相比,NaPi-IIa的电原性是由另外的Na + 离子的相互作用引起的。为了确定造成同工型之间功能差异的分子元素,我们使用了嵌合体和氨基酸替代方法。用NaPi-IIa和NaPi-IIc构建的嵌合体的转运活性表明,前六个跨膜结构域内的残基对于NaPi-IIa的电原性至关重要。电源和电子中性同工型之间的序列比较显示,聚集在三个区域中的残基的电荷和极性不同,其中之一包括部分预测的第三跨膜结构域。在这里,用NaPi-IIc中的NaPi-IIa等价物取代三个残基(S189A,S191A和G195D)会导致转运蛋白显示出1:1电荷/ Pi偶联,即3:1 Na + :Pi化学计量比和类似于稳态前弛豫的瞬态电流。与NaPi-IIa相比,该突变体的电压依赖性较弱,表观Pi亲和力低10倍,表明存在其他对NaPi-IIa动力学指纹重要的残基。我们的发现表明,通过最少数量的侧链取代,我们可以实现从电子中性向电共转运蛋白功能的转变,并伴随共底物相互作用位点的出现。

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