Molecular insights into the binding of carnosine and anserine to human serum carnosinase 1 (CN1)

Borvornwat Toviwek, S. Koonawootrittriron, T. Suwanasopee, P. Pongprayoon
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引用次数: 2

Abstract

Carnosine (CAR) and anserine (ANS) are histidine-containing dipeptides that show the therapeutic properties and protective abilities against diabetes and cognitive deficit. Both dipeptides are rich in meat products and have been used as a supplement. However, in humans, both compounds have a short half-life due to the rapid degradation by dizinc carnosinase 1 (CN1) which is a hurdle for its therapeutic application. To date, a comparative study of carnosine- and anserine-CN1 complexes is limited. Thus, in this work, molecular dynamics (MD) simulations were performed to explore the binding of carnosine and anserine to CN1. CN1 comprises 2 chains (Chains A and B). Both monomers are found to work independently and alternatingly. The displacement of Zn2+ pair is found to disrupt the substrate binding. CN1 employs residues from the neighbour chain (H235, T335, and T337) to form the active site. This highlights the importance of a dimer for enzymatic activity. Anserine is more resistant to CN 1 than carnosine because of its bulky and dehydrated imidazole moiety. Although both dipeptides can direct the peptide oxygen to the active Zn2+ which can facilitate the catalytic reaction, the bulky methylated imidazole on anserine promotes various poses that can retard the hydrolytic activity in contrast to carnosine. Anserine is likely to be the temporary competitive inhibitor by retarding the carnosine catabolism.
肌肽和丝氨酸与人血清肌肽酶1(CN1)结合的分子见解
肌肽(CAR)和鹅胺(ANS)是含组氨酸的二肽,对糖尿病和认知障碍具有治疗和保护作用。这两种二肽都富含肉制品,并已被用作补充剂。然而,在人类中,由于二锌肌肽酶1 (CN1)的快速降解,这两种化合物的半衰期都很短,这是其治疗应用的一个障碍。迄今为止,对肌肽-和鹿素- cn1复合物的比较研究是有限的。因此,在这项工作中,进行了分子动力学(MD)模拟来探索肌肽和雁胺与CN1的结合。CN1由2条链(链A和链B)组成。这两种单体可以独立或交替地起作用。发现Zn2+对的位移破坏了底物结合。CN1利用邻链(H235, T335和T337)的残基形成活性位点。这突出了二聚体对酶活性的重要性。由于其体积大且脱水的咪唑部分,鹅胺比肌肽对cn1的抗性更强。虽然这两种二肽都能将肽氧引导到活性的Zn2+上,从而促进催化反应,但与肌肽相比,鹅胺上的大块甲基化咪唑促进了各种姿态,从而延缓了水解活性。鹅胺可能通过延缓肌肽的分解代谢而成为暂时的竞争性抑制剂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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