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Constrained modeling of spin–labeled major coat protein mutants from M13 bacteriophage in a phospholipid bilayer

机译:磷脂双层中M13噬菌体自旋标记的主要外壳蛋白突变体的受限模型

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摘要

The family of three-dimensional molecular structures of the major coat protein from the M13 bacteriophage, which was determined in detergent micelles by NMR methods, has been analyzed by constrained geometry optimization in a phospholipid environment. A single-layer solvation shell of dioleoyl phosphatidylcholine lipids was built around the protein, after replacing single residues by cysteines with a covalently attached maleimide spin label. Both the residues substituted and the phospholipid were chosen for comparison with site-directed spin labeling EPR measurements of distance and local mobility made previously on membranous assemblies of the M13 coat protein purified from viable mutants. The main criteria for identifying promising candidate structures, out of the 300 single-residue mutant models generated for the membranous state, were 1) lack of steric conflicts with the phospholipid bilayer, 2) good match of the positions of spin-labeled residues along the membrane normal with EPR measurements, and 3) a good match between the sequence profiles of local rotational freedom and a structural restriction parameter for the spin-labeled residues obtained from the model. A single subclass of structure has been identified that best satisfies these criteria simultaneously. The model presented here is useful for the interpretation of future experimental data on membranous M13 coat protein systems. It is also a good starting point for full-scale molecular dynamics simulations and for the design of further site-specific spectroscopic experiments.
机译:M13噬菌体主要外壳蛋白的三维分子结构家族(已通过NMR方法在去污剂胶束中确定)已通过在磷脂环境中的几何约束优化进行了分析。用共价连接的马来酰亚胺旋转标记将半胱氨酸取代了单个残基后,围绕蛋白质构建了单油酰磷脂酰胆碱脂质的单层溶剂化壳。选择取代的残基和磷脂两者,以与以前在从活的突变体纯化的M13外壳蛋白的膜状组装体上进行的距离和局部迁移率的定点自旋标记EPR测量结果进行比较。在为膜态生成的300个单残基突变体模型中,鉴定有前途的候选结构的主要标准是:1)与磷脂双层缺乏空间冲突,2)自旋标记的残基沿蛋白质的位置的良好匹配膜正常,具有EPR测量值; 3)局部旋转自由的序列图与自模型获得的自旋标记残基的结构限制参数之间的良好匹配。已经确定了一个单一的结构子类,可以最好地同时满足这些条件。这里介绍的模型对于解释膜M13外壳蛋白系统的未来实验数据很有用。对于全面的分子动力学模拟以及进一步的现场特定光谱实验的设计,这也是一个很好的起点。

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