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生理条件下HIV-1蛋白酶结构稳定性的分子动力学研究:Na⁺离子在稳定活性位点中的作用

A molecular dynamics study of the structural stability of HIV-1 protease under physiological conditions: the role of Na+ ions in stabilizing the active site.

作者信息

Kovalskyy Dmytro, Dubyna Volodymyr, Mark Alan E, Kornelyuk Alexander

机构信息

Protein Engineering Department, Institute of Molecular Biology and Genetics, UAS, Kiev, Ukraine.

出版信息

Proteins. 2005 Feb 1;58(2):450-8. doi: 10.1002/prot.20304.

Abstract

HIV-1 protease is most active under weakly acidic conditions (pH 3.5-6.5), when the catalytic Asp25 and Asp25' residues share 1 proton. At neutral pH, this proton is lost and the stability of the structure is reduced. Here we present an investigation of the effect of pH on the dynamics of HIV-1 protease using MD simulation techniques. MD simulations of the solvated HIV-1 protease with the Asp25/25' residues monoprotonated and deprotonated have been performed. In addition we investigated the effect of the inclusion of Na(+) and Cl(-) ions to mimic physiological salt conditions. The simulations of the monoprotonated form and deprotonated form including Na(+) show very similar behavior. In both cases the protein remained stable in the compact, "self-blocked" conformation in which the active site is blocked by the tips of the flaps. In the deprotonated system a Na(+) ion binds tightly to the catalytic dyad shielding the repulsion between the COO(-) groups. Ab initio calculations also suggest the geometry of the active site with the Na(+) bound closely resembles that of the monoprotonated case. In the simulations of the deprotonated form (without Na(+) ions), a water molecule bound between the Asp25 Asp25' side-chains. This disrupted the dimerization interface and eventually led to a fully open conformation.

摘要

HIV-1蛋白酶在弱酸性条件(pH 3.5 - 6.5)下活性最高,此时催化性的天冬氨酸25(Asp25)和天冬氨酸25'(Asp25')残基共享1个质子。在中性pH值下,这个质子会丢失,结构稳定性降低。在此,我们运用分子动力学(MD)模拟技术研究了pH对HIV-1蛋白酶动力学的影响。对天冬氨酸25/25'残基处于单质子化和去质子化状态的溶剂化HIV-1蛋白酶进行了MD模拟。此外,我们还研究了加入Na(+)和Cl(-)离子以模拟生理盐环境的影响。单质子化形式和包含Na(+)的去质子化形式的模拟显示出非常相似的行为。在这两种情况下,蛋白质都保持在紧凑的“自我阻断”构象中稳定,在这种构象中,活性位点被瓣尖阻断。在去质子化系统中,一个Na(+)离子紧密结合到催化二元组上,屏蔽了COO(-)基团之间的排斥力。从头算计算也表明,结合有Na(+)的活性位点的几何结构与单质子化情况非常相似。在去质子化形式(不含Na(+)离子)的模拟中,一个水分子结合在天冬氨酸25和天冬氨酸25'侧链之间。这破坏了二聚化界面,最终导致完全开放的构象。

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