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首页> 外文期刊>Proteins: Structure, Function, and Genetics >Assessing the acid-base and conformational properties of histidine residues in human prion protein (125-228) by means of pK(a) calculations and molecular dynamics simulations.
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Assessing the acid-base and conformational properties of histidine residues in human prion protein (125-228) by means of pK(a) calculations and molecular dynamics simulations.

机译:通过pK(a)计算和分子动力学模拟评估人病毒蛋白(125-228)中组氨酸残基的酸碱和构象性质。

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摘要

A thorough study of the acid-base behavior of the four histidines and the other titratable residues of the structured domain of human prion protein (125-228) is presented. By using multi-tautomer electrostatic calculations, average titration curves have been built for all titratable residues, using the whole bundles of NMR structures determined at pH 4.5 and 7.0. According to our results, (1) only histidine residues are likely to be involved in the first steps of the pH-driven conformational transition of prion protein; (2) the pK(a)'s of His140 and His177 are approximately 7.0, whereas those of His155 and His187 are < 5.5. 10-ns long molecular dynamics simulations have been performed on five different models, corresponding to the most significant combinations of histidine protonation states. A critical comparison between the available NMR structures and our computational results (1) confirms that His155 and His187 are the residues whose protonation is involved in the conformational rearrangement of huPrP in mildly acidic condition, and (2) shows how their protonation leads to the destructuration of the C-terminal part of HB and to the loss of the last turn of HA that represent the crucial microscopic steps of the rearrangement.
机译:彻底研究了人类病毒蛋白结构域(125-228)的四个组氨酸和其他可滴定残基的酸碱行为。通过使用多互变异构体静电计算,使用在pH 4.5和7.0下测定的整个NMR结构束,对所有可滴定的残留物建立了平均滴定曲线。根据我们的结果,(1)只有组氨酸残基可能参与病毒蛋白的pH驱动构象转变的第一步; (2)His140和His177的pK(a)约为7.0,而His155和His187的pK(a)小于5.5。在五个不同的模型上进行了10 ns长的分子动力学模拟,对应于组氨酸质子化状态的最重要组合。可用NMR结构与我们的计算结果之间的关键比较(1)证实His155和His187是在弱酸性条件下huPrP构象重排涉及质子化的残基,(2)显示了它们的质子化如何导致结构破坏HB C末端部分的缺失,以及HA的最后一轮丢失,这代表了重排的关键微观步骤。

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