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丝氨酸蛋白酶神经蛋白酶的底物特异性及催化活性研究

Investigation on substrate specificity and catalytic activity of serine protease neuropsin.

作者信息

Lintuluoto Masami, Abe Mitsumasa, Horioka Yota, Fukunishi Yoshifumi, Tamura Hideki, M Lintuluoto Juha

机构信息

Graduate School of Life and Environmental Sciences, Kyoto Prefectural University, Kyoto 606-8522, Japan.

Cellular and Molecular Biotechnology Research Institute, National Institute of Advanced Industrial Science and Technology (AIST), Tokyo 135-0064, Japan.

出版信息

Biophys Physicobiol. 2022 Sep 22;19:e190040. doi: 10.2142/biophysico.bppb-v19.0040. eCollection 2022.

Abstract

Neuropsin is one of serine proteases mainly found at the hippocampus and the amygdala, where it contributes to the long-term potentiation and memory acquisition by rebuilding of synaptic connections. Despite of the importance of neuropsin, the substrate specificity and regulation mechanisms of neuropsin have been unclear. Thus, we investigated the substrate specificity and the catalytic activity of neuropsin by the protein-ligand docking and molecular dynamics (MD) simulations and succeeded to reproduce the trend of the experimental results. Our study revealed that the substrate specificity and the activity of neuropsin depended on multiple factors: the substrate charge, the substrate orientation, the hydrogen bond network within the catalytic triad and the substrate, and the formation of the oxyanion hole. The apo neuropsin was not reactive without proper alignment of catalytic triad. The substrate binding induced the reactive alignment of catalytic triad. Then the substrate-neuropsin interaction forms the oxyanion hole that stabilizes the transition state and reduces the free-energy barrier of the following scission reaction.

摘要

神经蛋白酶是一种主要存在于海马体和杏仁核中的丝氨酸蛋白酶,它通过重建突触连接来促进长时程增强和记忆形成。尽管神经蛋白酶很重要,但其底物特异性和调节机制尚不清楚。因此,我们通过蛋白质-配体对接和分子动力学(MD)模拟研究了神经蛋白酶的底物特异性和催化活性,并成功重现了实验结果的趋势。我们的研究表明,神经蛋白酶的底物特异性和活性取决于多个因素:底物电荷、底物取向、催化三联体与底物之间的氢键网络以及氧负离子洞的形成。无活性的神经蛋白酶在催化三联体未正确排列时不具有反应性。底物结合诱导催化三联体的反应性排列。然后,底物-神经蛋白酶相互作用形成氧负离子洞,该氧负离子洞稳定过渡态并降低后续裂解反应的自由能垒。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a424/9592888/6eac6251cf36/19_e190040-g001.jpg

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