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突变和别构抑制剂如何调节 Caspase-7 活性?分子动力学研究。

How do mutations and allosteric inhibitors modulate caspase-7 activity? A molecular dynamics study.

机构信息

a Department of Bioengineering , Institute of Pure and Applied Sciences, Marmara University , Istanbul , Turkey.

b Faculty of Engineering, Department of Bioengineering , Marmara University , Istanbul , Turkey.

出版信息

J Biomol Struct Dyn. 2019 Aug;37(13):3456-3466. doi: 10.1080/07391102.2018.1517611. Epub 2018 Nov 17.

Abstract

Caspases are members of a highly regulated aspartate-cysteine protease family which have important roles in apoptosis. Pharmaceutical studies focused on these molecules since they are involved in diseases such as cancer and neurodegenerative disorders. A small molecule which binds to the dimeric interface away from the binding site induces a conformational change that resembles the pro-caspase form of the molecule by shifting loop positions. The fluctuation mechanisms caused by mutations or binding of a ligand can explain the key mechanism for the function of that molecule. In this study, we performed molecular dynamics simulations on wild-type and mutated structures (C290N, R187M, Y223A, G188L and G188P) as well as allosterically inhibited structure (DICA-bound caspase-7) to observe the effects of the single mutations on intrinsic dynamics. The results show that previously known changes in catalytic activity upon mutations or allosteric ligand binding are reflected in corresponding changes in the global dynamics of caspase-7. Communicated by Ramaswamy H. Sarma.

摘要

半胱天冬氨酸蛋白酶是一类高度调控的天冬氨酸-半胱氨酸蛋白酶家族成员,它们在细胞凋亡中发挥着重要作用。由于这些分子参与了癌症和神经退行性疾病等疾病的发生,因此药物研究集中在这些分子上。一种小分子与远离结合位点的二聚体界面结合,诱导构象变化,通过改变环的位置,使分子类似于前酶形式。突变或配体结合引起的波动机制可以解释该分子功能的关键机制。在这项研究中,我们对野生型和突变型结构(C290N、R187M、Y223A、G188L 和 G188P)以及别构抑制结构(DICA 结合的 caspase-7)进行了分子动力学模拟,以观察单突变对固有动力学的影响。结果表明,先前已知的突变或别构配体结合对催化活性的改变反映在 caspase-7 的整体动力学变化中。Ramaswamy H. Sarma 通讯。

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