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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Importance of Hydrophilic Hydration and Intramolecular Interactions in the Thermodynamics of Helix-Coil Transition and Helix-Helix Assembly in a Deca-Alanine Peptide
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Importance of Hydrophilic Hydration and Intramolecular Interactions in the Thermodynamics of Helix-Coil Transition and Helix-Helix Assembly in a Deca-Alanine Peptide

机译:亲水性水合和分子内相互作用在十丙氨酸肽中的螺旋-螺旋转变和螺旋-螺旋装配的热力学中的重要性。

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For a model deca-alanine peptide the cavity (ideal hydrophobic) contribution to hydration favors the helix state over extended states and the paired helix bundle in the assembly of two helices. The energetic contributions of attractive protein-solvent interactions are separated into quasi-chemical components consisting of a short-range part arising from interactions with solvent in the first hydration shell and the remaining long-range part that is well described by a Gaussian. In the helix-coil transition, short-range attractive protein-solvent interactions outweigh hydrophobic hydration and favor the extended coil states. Analysis of enthalpic effects shows that it is the favorable hydration of the peptide backbone that favors the unfolded state. Protein intramolecular interactions favor the helix state and are decisive in favoring folding. In the pairing of two helices, the cavity contribution outweighs the short-range attractive protein-water interactions. However, long-range, protein-solvent attractive interactions can either enhance or reverse this trend depending on the mutual orientation of the helices. In helix-helix assembly, change in enthalpy arising from change in attractive protein-solvent interactions favors disassembly. In helix pairing as well, favorable protein intramolecular interactions are found to be as important as hydration effects. Overall, hydrophilic protein-solvent interactions and protein intramolecular interactions are found to play a significant role in the thermodynamics of folding and assembly in the system studied.
机译:对于模型十丙氨酸肽,空腔(理想的疏水性)对水合作用的贡献比扩展状态和两个螺旋组装中的成对螺旋束更有利于螺旋状态。有吸引力的蛋白质-溶剂相互作用的能量贡献分为准化学成分,该成分由与第一水化壳中与溶剂的相互作用引起的短程部分和高斯很好地描述的其余长程部分组成。在螺旋-螺旋过渡中,短距离吸引人的蛋白质-溶剂相互作用大于疏水水合,并倾向于扩展的螺旋状态。焓效应的分析表明,有利于展开状态的是肽主链的有利水合。蛋白质分子内的相互作用有利于螺旋状态,并且对促进折叠起决定性作用。在两个螺旋的配对中,空洞的贡献超过了短程有吸引力的蛋白质-水相互作用。但是,取决于螺旋的相互定向,蛋白质与溶剂之间的长期吸引力相互作用可以增强或逆转这种趋势。在螺旋-螺旋装配中,由于有吸引力的蛋白质-溶剂相互作用的变化而引起的焓变化有利于拆卸。同样在螺旋配对中,发现有利的蛋白质分子内相互作用与水合作用同样重要。总的来说,发现亲水性蛋白质-溶剂相互作用和蛋白质分子内相互作用在所研究的系统中对折叠和组装的热力学起重要作用。

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