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首页> 外文期刊>Biophysical Chemistry: An International Journal Devoted to the Physical Chemistry of Biological Phenomena >A quantum mechanical study on phosphotyrosyl peptide binding to the SH2 domain of p56(lck) tyrosine kinase with insights into the biochemistry of intracellular signal transduction events.
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A quantum mechanical study on phosphotyrosyl peptide binding to the SH2 domain of p56(lck) tyrosine kinase with insights into the biochemistry of intracellular signal transduction events.

机译:磷酸酪氨酰肽与p56(lck)酪氨酸激酶SH2结构域结合的量子力学研究,对细胞内信号转导事件的生物化学有深刻见解。

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摘要

A study on the interaction between a phosphotyrosyl peptide with the SH2 domain of Lck kinase has been undertaken with the aid of semiempirical linear-scaling quantum mechanical methods. The structure of this complex has been solved at atomic resolution and, hence, it represents the ideal candidate for studying the charge deformation effects induced by the phosphopeptide on the binding site. Substantial changes in the charge of amino acid residues located in the binding pocket of the protein are observed upon ligand binding. More specifically, our quantum chemical calculations indicate that H-bonds involving charged side-chains are subject to consistent charge deformation effects whereas those forming salt bridges are unaffected by ligand binding. Furthermore, ligand binding has the effect of changing both the magnitude and direction of the protein's macrodipole, which rotates approximately 150 degrees with respect that of the unliganded protein. This suggests that a change in the polarization state ofthe protein might acts as a switch during the transmission of intracellular signals. The binding energy calculated with the aid of the COSMO solvation model corresponds to about -200 kcal/mol, most of which is attributed to the interaction of the phosphotyrosine head with the amino acid chains located in the binding site of the SH2 domain.
机译:借助于半经验线性缩放量子力学方法,已经研究了磷酸酪氨酰肽与Lck激酶的SH2结构域之间的相互作用。该配合物的结构已在原子分辨率下得到了解决,因此,它是研究由磷酸肽在结合位点上诱导的电荷变形效应的理想候选物。在配体结合后,观察到位于蛋白质结合口袋中的氨基酸残基电荷的显着变化。更具体地说,我们的量子化学计算表明,涉及带电侧链的氢键会受到一致的电荷变形影响,而形成盐桥的氢键不受配体结合的影响。此外,配体结合具有改变蛋白质大偶极子的大小和方向的作用,其相对于未配体蛋白质旋转大约150度。这表明蛋白质的极化状态的改变可能在细胞内信号的传递过程中充当开关。借助于COSMO溶剂化模型计算的结合能对应于约-200kcal / mol,其大部分归因于磷酸酪氨酸头部与位于SH2结构域结合位点的氨基酸链的相互作用。

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