Boukalova Stepana, Teisinger Jan, Vlachova Viktorie
Institute of Physiology, Academy of Sciences of the Czech Republic, Videnska 1083, 142 20 Prague 4, Czech Republic.
Biochim Biophys Acta. 2013 Mar;1833(3):520-8. doi: 10.1016/j.bbamcr.2012.11.017. Epub 2012 Dec 4.
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.
香草酸瞬时受体电位通道TRPV1是包括辣椒素、热和质子在内的有害刺激的分子整合器。尽管TRPV1的整体结构与电压依赖性钾(Kv)通道之间存在明显相似性,但门控分子逻辑中的保守程度尚不清楚。在Kv通道中,通道功能需要S1与孔螺旋之间有一个小的接触表面。为了探究S1在TRPV1中的功能,我们使用了色氨酸扫描诱变,并对辣椒素和质子的反应进行了表征。17个突变体中有9个产生了类似野生型的电流;三个突变体(M445W、A452W、R455W)无功能。S1胞外区域的保守突变R455K减缓了辣椒素诱导的激活,并阻止了通道的正常关闭。该突变体既不被质子激活也不被增强,相反,质子促进了其电流的快速失活。在另外两个功能获得性突变体以及已知可解偶联质子激活的孔螺旋突变体T633A中也发现了类似的表型。我们提出,S1结构域包含一个功能上重要区域,可能特异性参与TRPV1通道门控,因此对于S1 - S4传感器激活与门控开放之间的能量耦合很重要。与Kv通道类似,S1 - 孔界面可能有助于稳定与TRPV1通道门控相关的构象。