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首页> 外文期刊>The Journal of biological chemistry >The Region Adjacent to the C-end of the Inner Gate in Transient Receptor Potential Melastatin 8 (TRPM8) Channels Plays a Central Role in Allosteric Channel Activation
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The Region Adjacent to the C-end of the Inner Gate in Transient Receptor Potential Melastatin 8 (TRPM8) Channels Plays a Central Role in Allosteric Channel Activation

机译:与瞬时受体潜在素母素8(TRPM8)通道中的内栅的C端相邻的区域在变构通道激活中起着核心作用

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The ability of transient receptor potential (TRP) channels to sense and respond to environmental and endogenous cues is crucial in animal sensory physiology. The molecular mechanism of channel gating is yet elusive. The TRP box, a conserved region in the N-end of the C terminus domain, has been signaled as pivotal for allosteric activation in TRP channels. Here, we have examined the role of the linker region between the TRPM8 inner gate and the TRP box (referred to as the S6-TRP box linker) to identify structural determinants of channel gating. Stepwise substitutions of segments in the S6-TRP box linker of TRPM8 channel with the cognate TRPV1 channel sequences produced functional chimeric channels, and identified Tyr981 as a central molecular determinant of channel function. Additionally, mutations in the 986–990 region had a profound impact on channel gating by voltage and menthol, as evidenced by the modulation of the conductance-to-voltage (G-V) relationships. Simulation of G-V curves using an allosteric model for channel activation revealed that these mutations altered the allosteric constants that couple stimuli sensing to pore opening. A molecular model of TRPM8, based on the recently reported TRPV1 structural model, showed that Tyr981 may lie in a hydrophobic pocket at the end of the S6 transmembrane segment and is involved in inter-subunit interactions with residues from neighbor subunits. The 986–990 region holds intrasubunit interactions between the TRP domain and the S4–S5 linker. These findings substantiate a gating mechanism whereby the TRP domain acts as a coupling domain for efficient channel opening. Furthermore, they imply that protein-protein interactions of the TRP domain may be targets for channel modulation and drug intervention.
机译:瞬态受体潜力(TRP)通道感知和响应环境和内源性提示的能力对于动物感官生理学至关重要。通道门控的分子机制尚未难以捉摸。 TRP框是C末端域的n末端的保守区域,已被用信号称为TRP通道中的变构激活的枢转。这里,我们研究了TRPM8内栅和TRP框之间的连接区域(称为S6-TRP盒接头)之间的角色,以识别通道门控的结构决定簇。 TRPM8通道的S6-TRP盒接头中逐步取代具有同源TRPV1通道序列产生的功能嵌合通道,并将TYR981作为信道功能的中央分子决定识别。另外,986-990区域中的突变对通过电压和薄荷醇的通道施加的深刻影响,如通过对电导 - 电压(G-V)关系的调制所证明的。使用频振模型进行通道激活的G-V曲线的模拟显示,这些突变改变了夫妇对孔隙开口进行刺激感应的颠覆常数。基于最近报道的TRPV1结构模型的TRPM8的分子模型表明,TYR981可以位于S6跨膜段末端的疏水口中,并且涉及来自邻居亚基的残留物的亚基间相互作用。 986-990区域占TRP结构域和S4-S5接头之间的interAsubunit相互作用。这些发现者证实了一个选通机构,由此TRP域用作有效通道开口的耦合域。此外,它们暗示TRP结构域的蛋白质 - 蛋白质相互作用可以是通道调制和药物干预的靶标。

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