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Structural characterization of the voltage sensor domain and voltage-gated K+- channel proteins vectorially-oriented within a single bilayer membrane at the solid/vapor and solid/liquid interfaces via neutron interferometry

机译:通过中子干涉在固体通道蛋白矢量导向一个单一的双层膜中/蒸汽和固/液界面 - 电压传感器域和电压门控的K +的结构表征

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摘要

The voltage-sensor domain (VSD) is a modular 4-helix bundle component that confers voltage sensitivity to voltage-gated cation channels in biological membranes. Despite extensive biophysical studies and the recent availability of x-ray crystal structures for a few voltage-gated potassium (Kv-) channels and a voltage-gate sodium (Nav-) channel, a complete understanding of the cooperative mechanism of electromechanical coupling, interconverting the closed-to-open states (i.e. non-conducting to cation conducting) remains undetermined. Moreover, the function of these domains is highly dependent on the physical-chemical properties of the surrounding lipid membrane environment. The basis for this work was provided by a recent structural study of the VSD from a prokaryotic Kv-channel vectorially-oriented within a single phospholipid (POPC; 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine) membrane investigated by x-ray interferometry at the solid/moist He (or solid/vapor) and solid/liquid interfaces thus achieving partial to full hydration, respectively (Gupta et. al. Phys. Rev E. 2011, 84). Here, we utilize neutron interferometry to characterize this system in substantially greater structural detail at the sub-molecular level, due to its inherent advantages arising from solvent contrast variation coupled with the deuteration of selected sub-molecular membrane components, especially important for the membrane at the solid/liquid interface. We demonstrate the unique vectorial orientation of the VSD and the retention of its molecular conformation manifest in the asymmetric profile structure of the protein within the profile structure of this single bilayer membrane system. We definitively characterize the asymmetric phospholipid bilayer solvating the lateral surfaces of the VSD protein within the membrane. The profile structures of both the VSD protein and phospholipid bilayer depend upon the hydration state of the membrane. We also determine the distribution of water and exchangeable hydrogen throughout the profile structure of both the VSD itself and the VSD:POPC membrane. These two experimentally-determined water and exchangeable hydrogen distribution profiles are in good agreement with molecular dynamics simulations of the VSD protein vectorially-oriented within a fully hydrated POPC bilayer membrane, supporting the existence of the VSD’s water pore. This approach was extended to the full-length Kv-channel (KvAP) at solid/liquid interface, providing the separate profile structures of the KvAP protein and the POPC bilayer within the reconstituted KvAP:POPC membrane.
机译:电压传感器域(VSD)是模块化的4螺旋束组件,其将电压敏感性赋予生物膜中的电压敏感通道。尽管具有广泛的生物物理研究和近几种电压门控钾(KV-)通道的X射线晶体结构以及电压栅极钠(NAV-)通道的近期可用性,但完全了解机电耦合的协作机制,互连封闭的状态(即不导通阳离子导电)仍未确定。此外,这些结构域的功能高度依赖于周围的脂质膜环境的物理化学性质。通过在单一磷脂(POPC; 1-Palmitoyl-2-OXeoyl-Sn-Glyoyl-3-磷化物)膜上的转动型kV沟道的最近VSD的近期结构研究提供了该工作的基础。固体/潮湿He(或固体/蒸气)和固体/液体界面的X射线干涉测量法分别实现部分至全水合作用(Gupta等。al。物理。Rev E. 2011,84)。在此,我们利用中子干扰测量法在亚分子水平上以基本上更大的结构细节表征该系统,由于其具有由溶剂对比变化与所选亚分子膜组分的氘相结合的固有优点,尤其重要于膜固体/液体界面。我们证明了VSD的独特载体取向和其在该单双层膜系统的轮廓结构内蛋白质的不对称型材结构中的其分子构象显微学。我们明确地表征了不对称磷脂双层溶解膜内VSD蛋白的侧表面。 VSD蛋白和磷脂双层的型材结构取决于膜的水合状态。我们还确定在VSD本身和VSD:POPC膜的整个轮廓结构中的水和可交换氢的分布。这两种实验确定的水和可交换的氢气分布型材与在完全水合的popc双层膜内的VSD蛋白的分子动力学模拟良好,支持VSD水孔的存在。该方法延伸到固体/液体界面的全长KV沟道(KVAP),在重构的KVAP中提供KVAP蛋白和POPC双层的单独轮廓结构:POPC膜。

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