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Computational Analysis of Variants of the Operator Binding Domain of the Bacteriophage #lambda# Repressor

机译:噬菌体#lambda#阻遏物的操作员结合域的变体的计算分析。

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摘要

In a continuing effort to understand the molecular basis of the dimerization-coupled DNA-binding activity of the bacteriophage #lambda# repressor protein, we analyzed results from conformational energy computations on the wild-type #lambda# repressor protein and its mutants. We find that the hydrogen bonds between the peptide carbonyl oxygen of Tyr-85 and the peptide NH group of the residue at position 89 in active mutants are longer and less linear than their corresponding ones in inactive mutants. This is due to the outward tilting of the carbonyl oxygen of Tyr-85 from the helix axis in active mutants, which, in many cases, results in disruption of its/to the i + 4 hydrogen bond involving this residue. The helical and hydrogen-bond parameters computed for both classes of mutants were compared with the results obtained by others in the analysis of X-ray-derived crystal structures of #alpha#-helices in globular proteins. We find that the packing of #alpha#-helices at the dimer interface of active and inactive mutants results in a hydrogen-bonding geometry for the carbonyl group of Tyr-85 that is similar to that found in #alpha#-helices with and without CO groups hydrogen-bonded to a solvent molecule, respectively. A rough correlation is also observed between the tolerance for amino acid substitution at position i of helix-5 with the number of close intermonomer contacts involving the residues at position i and i - 2. On the basis of these findings, we discuss the mutability of amino acid residues at the dimer interface.
机译:为了不断了解噬菌体#lambda#阻遏蛋白的二聚化结合DNA结合活性的分子基础,我们分析了野生型#lambda#阻遏蛋白及其突变体的构象能计算结果。我们发现,Tyr-85的肽羰基氧与活性突变体中89位残基的肽NH基之间的氢键比无活性突变体中的相应氢键更长且线性更低。这是由于在活性突变体中Tyr-85的羰基氧从螺旋轴向外倾斜,在许多情况下,导致其/破坏涉及该残基的i + 4氢键。将两种突变体计算的螺旋键和氢键参数与其他分析球状蛋白质中#alpha#螺旋的X射线晶体结构所获得的结果进行比较。我们发现,在有活性和无活性突变体的二聚体界面处的#alpha#-螺旋堆积导致Tyr-85羰基的氢键几何结构类似于在有或没有突变的#alpha#-螺旋中发现的结构。 CO基团分别氢键合到溶剂分子上。还观察到在螺旋5的第i位的氨基酸取代的耐受性与涉及第i和i-2位残基的紧密单体接触的数量之间存在着粗略的相关性。基于这些发现,我们讨论了二聚体界面处的氨基酸残基。

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