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水通道蛋白的膜结构观察与结合实验和理论的和频产生光谱法。

Membrane Structure of Aquaporin Observed with Combined Experimental and Theoretical Sum Frequency Generation Spectroscopy.

机构信息

Department of Molecular Spectroscopy, Max Planck Institute for Polymer Research, Ackermannweg 10, Mainz 55128, Germany.

Department of Chemistry, Aarhus University, Langelandsgade 140, 8000 Aarhus C, Denmark.

出版信息

Langmuir. 2021 Nov 16;37(45):13452-13459. doi: 10.1021/acs.langmuir.1c02206. Epub 2021 Nov 3.

Abstract

High-resolution structural information on membrane proteins is essential for understanding cell biology and for the structure-based design of new medical drugs and drug delivery strategies. X-ray diffraction (XRD) can provide angstrom-level information about the structure of membrane proteins, yet for XRD experiments, proteins are removed from their native membrane environment, chemically stabilized, and crystallized, all of which can compromise the conformation. Here, we describe how a combination of surface-sensitive vibrational spectroscopy and molecular dynamics simulations can account for the native membrane environment. We observe the structure of a glycerol facilitator channel (GlpF), an aquaporin membrane channel finely tuned to selectively transport water and glycerol molecules across the membrane barrier. We find subtle but significant differences between the XRD structure and the inferred structure of GlpF.

摘要

高分辨率的膜蛋白结构信息对于理解细胞生物学以及基于结构的新型药物设计和药物输送策略至关重要。X 射线衍射(XRD)可以提供关于膜蛋白结构的埃级信息,但对于 XRD 实验,蛋白质会从其天然膜环境中被去除,进行化学稳定化和结晶化,所有这些过程都可能破坏其构象。在这里,我们描述了如何结合表面敏感振动光谱和分子动力学模拟来解释天然膜环境。我们观察了甘油转运蛋白通道(GlpF)的结构,这是一种水通道蛋白,经过精细调整后能够选择性地将水分子和甘油分子穿过膜屏障进行运输。我们发现 XRD 结构与推断出的 GlpF 结构之间存在微妙但显著的差异。

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