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Inaugural Article: A thermodynamic framework for understanding temperature sensing by transient receptor potential (TRP) channels

机译:开篇文章:一种热力学框架用于了解通过瞬时受体电势(TRP)通道进行温度感测

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摘要

The exceptionally high temperature sensitivity of certain transient receptor potential (TRP) family ion channels is the molecular basis of hot and cold sensation in sensory neurons. The laws of thermodynamics dictate that opening of these specialized TRP channels must involve an unusually large conformational standard-state enthalpy, ΔHo: positive ΔHo for heat-activated and negative ΔHo for cold-activated TRPs. However, the molecular source of such high-enthalpy changes has eluded neurobiologists and biophysicists. Here we offer a general, unifying mechanism for both hot and cold activation that recalls long-appreciated principles of protein folding. We suggest that TRP channel gating is accompanied by large changes in molar heat capacity, ΔCP. This postulate, along with the laws of thermodynamics and independent of mechanistic detail, leads to the conclusion that hot- and cold-sensing TRPs operate by identical conformational changes.
机译:某些瞬时受体电位(TRP)家族离子通道的异常高温敏感性是感觉神经元中冷热感觉的分子基础。热力学定律规定,打开这些专门的TRP通道必须涉及异常大的构象标准态焓ΔH o :热激活的正ΔH o ,负的ΔH o 用于冷激活的TRP。但是,神经生物学家和生物物理学家还没有这种高焓变化的分子来源。在这里,我们提供了一种用于热激活和冷激活的通用统一机制,使人想起了长期以来公认的蛋白质折叠原理。我们认为,TRP通道门控伴随着摩尔热容ΔCP的大变化。该假设以及热力学定律和独立于机械原理的细节得出的结论是,热敏和冷敏TRP通过相同的构象变化起作用。

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