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Infrared spectral marker bands characterizing a transient water wire inside a hydrophobic membrane protein

机译:红外光谱标记带表征疏水膜蛋白内部的瞬态水线

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Proton conduction along protein-bound "water wires" is an essential feature in membrane proteins. Here, we analyze in detail a transient water wire, which conducts protons via a hydrophobic barrier within a membrane protein to create a proton gradient. It is formed only for a millisecond out of three water molecules distributed at inactive positions in a polar environment in the ground state. The movement into a hydrophobic environment causes characteristic shifts of the water bands reflecting their different chemical properties. These band shifts are identified by time-resolved Fourier Transform Infrared difference spectroscopy and analyzed by biomolecular Quantum Mechanical/ Molecular/Mechanical simulations. A non-hydrogen bonded ("dangling") O-H stretching vibration band and a broad continuum absorbance caused by a combined vibration along the water wire are identified as characteristic marker bands of such water wires in a hydrophobic environment. The results provide a basic understanding of water wires in hydrophobic environments. (C) 2014 AIP Publishing LLC.
机译:沿着蛋白结合的“水丝”的质子传导是膜蛋白的基本特征。在这里,我们详细分析了瞬态水线,其通过膜蛋白内的疏水性屏障传导质子以创建质子梯度。在基态的极性环境中,分布在非活动位置的三个水分子中仅毫秒形成。移入疏水环境会导致水带的特征性移动,反映出其不同的化学特性。这些带位移通过时间分辨傅立叶变换红外差光谱法鉴定,并通过生物分子量子力学/分子/机械模拟进行分析。在疏水性环境中,无氢键合(“悬挂”)O-H拉伸振动带和由沿着水线的组合振动引起的宽广的连续吸收被确定为此类水线的特征标记带。结果提供了对疏水环境中水线的基本理解。 (C)2014 AIP Publishing LLC。

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