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首页> 外文期刊>Fortschritte der Physik >Effect of the hyaluronidase microe nvironment on the enzyme structure-function relationship and computational study of the in silico molecular docking of chondroitin sulfate and heparin short fragments to hyaluronidase
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Effect of the hyaluronidase microe nvironment on the enzyme structure-function relationship and computational study of the in silico molecular docking of chondroitin sulfate and heparin short fragments to hyaluronidase

机译:透明质酸酶微对NoriConment对软骨素和肝素短片段硅质分子对接的酶结构功能关系与计算研究透明质酸酶

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The review addresses the biochemical interactions of hyaluronidases with components of the natural microenvironment. The effect of subtle structural differences between ligands on the enzyme structure-function relationship regulation is noted. Docking of chondroitin sulfate (CS) trimers (hexasaccharides) and heparin tetramers (octasaccharides) to the 3D model of the bovine testicular hyaluronidase (BTH) was performed by computational chemistry methods in order to elucidate the mechanism of regulation of the enzyme functioning in the body (using virtual screening, molecular dynamics, and calculation of surface electrostatic potential of protein complexes). Several binding sites for glycosaminoglycan (GAG) ligands were found to occur on the hyaluronidase surface. They are identical for CS trimers and heparin tetramers. The calculations showed the possibility of both reversible and irreversible conformational changes of the 3D structure of BTH, depending on the arrangement of negatively charged ligands on its globule. When the changes are irreversible, Glu-149 and Asp-147, which are key amino acid residues for the catalytic activity of BTH, can migrate from the vicinity of the native enzyme active site to the periphery of the protein molecule, thus inducing enzyme inactivation. The interaction of the GAG ligands with the BTH active site is mainly caused by electrostatic forces. Four or five binding sites of the chondroitin sulfate trimer proved to be critical for stabilization of the enzyme structure. Their occupation was sufficient for preventing irreversible deformation of the BTH molecule upon the insertion of the heparin ligand into the active site cavity. Protein stabilization is accompanied by the formation of a particular form of the surface electrostatic potential.
机译:审查涉及透明质酸酶的生化相互作用与天然微环境的组分。并注意配体对酶结构功能关系调节的微妙结构差异的影响。通过计算化学方法进行软骨素硫酸盐(Cs)三聚体(己酶)三聚体(六糖)和肝素四聚体(十六次糖)至牛睾丸透明质酸酶(Bth)的3D模型中,以阐明体内功能调节的调节机制(使用蛋白质复合物的虚拟筛选,分子动力学和表面静电电位的计算)。发现糖胺聚糖(GAG)配体的几个结合位点发生在透明质酸酶表面上。它们对于CS三聚体和肝素四聚体相同。根据其球状上带负电配体的布置,计算表明,BTH的3D结构的可逆和不可逆构象变化的可能性。当变化是不可逆转的时,是对BTH的催化活性的关键氨基酸残基的Glu-149和ASP-147可以从天然酶活性位点的附近迁移到蛋白质分子的周边,因此诱导酶失活。 GAG配体与BTH活性位点的相互作用主要由静电力引起。软骨素硫酸盐三聚体的四个或五个结合位点被证明是对酶结构稳定的关键。它们的职业足以防止BTH分子在插入肝素配体进入活性位点腔时的不可逆变形。蛋白质稳定化伴随着形成特定形式的表面静电电位。

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