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首页> 外文期刊>Biochimica et biophysica acta. Molecular cell research >Protons stabilize the closed conformation of gain-of-function mutants of the TRPV1 channel
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Protons stabilize the closed conformation of gain-of-function mutants of the TRPV1 channel

机译:质子可稳定TRPV1通道功能获得突变体的闭合构象

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The vanilloid transient receptor potential channel TRPV1 is a molecular integrator of noxious stimuli, including capsaicin, heat and protons. Despite clear similarities between the overall architecture of TRPV1 and voltage-dependent potassium (Kv) channels, the extent of conservation in the molecular logic for gating is unknown. In Kv channels, a small contact surface between S1 and the pore-helix is required for channel functioning. To explore the function of S1 in TRPV1, we used tryptophan-scanning mutagenesis and characterized the responses to capsaicin and protons. Wild-type-like currents were generated in 9 out of 17 mutants; three mutants (M445W, A452W, R455W) were non-functional. The conservative mutation R455K in the extracellular extent of S1 slowed down capsaicin-induced activation and prevented normal channel closure. This mutant was neither activated nor potentiated by protons, on the contrary, protons promoted a rapid deactivation of its currents. Similar phenotypes were found in two other gain-of-function mutants and also in the pore-helix mutant T633A, known to uncouple proton activation. We propose that the S1 domain contains a functionally important region that may be specifically involved in TRPV1 channel gating, and thus be important for the energetic coupling between S1-S4 sensor activation and gate opening. Analogous to Kv channels, the S1-pore interface might serve to stabilize conformations associated with TRPV1 channel gating. ? 2012 Elsevier B.V.
机译:类胡萝卜素瞬态受体电位通道TRPV1是有害刺激物的分子整合剂,包括辣椒素,热和质子。尽管TRPV1的整体架构与电压依赖性钾(Kv)通道之间存在明显相似之处,但门控分子逻辑中的保守程度尚不清楚。在Kv通道中,S1和孔螺旋之间的接触面较小,才能发挥通道功能。为了探索S1在TRPV1中的功能,我们使用了色氨酸扫描诱变并表征了对辣椒素和质子的响应。 17个突变体中有9个产生了野生型电流。三个突变体(M445W,A452W,R455W)无功能。 S1胞外范围的保守突变R455K减慢了辣椒素诱导的激活并阻止了正常通道的封闭。该突变体既不被质子激活也不被质子增强,相反,质子促进了其电流的快速失活。在其他两个获得功能的突变体以及在孔隙螺旋突变体T633A中也发现了相似的表型,已知该突变体会解偶联质子活化。我们建议S1域包含一个功能上重要的区域,该区域可能特别涉及TRPV1通道门控,因此对于S1-S4传感器激活和门打开之间的能量耦合很重要。类似于Kv通道,S1孔接口可能用于稳定与TRPV1通道门控相关的构象。 ? 2012年Elsevier B.V.

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