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人环氧化酶过氧化物酶活性再激活的机制:使用苯酚作为还原共底物的研究。

Mechanism for the reactivation of the peroxidase activity of human cyclooxygenases: investigation using phenol as a reducing cosubstrate.

机构信息

Shenzhen Key Laboratory of Steroid Drug Discovery and Development, The Chinese University of Hong Kong, Shenzhen, 518172, China.

School of Life and Health Sciences, The Chinese University of Hong Kong, 2001 Longxiang Road, Longgang District, Shenzhen, 518172, China.

出版信息

Sci Rep. 2020 Sep 16;10(1):15187. doi: 10.1038/s41598-020-71237-x.

Abstract

It has been known for many years that the peroxidase activity of cyclooxygenase 1 and 2 (COX-1 and COX-2) can be reactivated in vitro by the presence of phenol, which serves as a reducing compound, but the underlying mechanism is still poorly understood. In the present study, we use phenol as a model compound to investigate the mechanism by which the peroxidase activity of human COXs is reactivated after each catalytic cycle. Molecular docking and quantum mechanics calculations are carried out to probe the interaction of phenol with the peroxidase site of COXs and the reactivation mechanism. It is found that the oxygen atom associated with the Fe ion in the heme group (i.e., the complex of Fe ion and porphyrin) of COXs can be removed by addition of two protons. Following its removal, phenol can readily bind inside the peroxidase active sites of the COX enzymes, and directly interact with Fe in heme to facilitate electron transfer from phenol to heme. This investigation provides theoretical evidence for several intermediates formed in the COX peroxidase reactivation cycle, thereby unveiling mechanistic details that would aid in future rational design of drugs that target the peroxidase site.

摘要

多年来,人们已经知道环氧化酶 1 和 2(COX-1 和 COX-2)的过氧化物酶活性可以在体外通过酚的存在而被重新激活,酚作为一种还原化合物,但潜在的机制仍知之甚少。在本研究中,我们使用酚作为模型化合物来研究人 COXs 的过氧化物酶活性在每个催化循环后重新激活的机制。通过分子对接和量子力学计算来探究酚与 COXs 的过氧化物酶部位的相互作用以及重新激活机制。结果发现,与血红素组中的 Fe 离子(即 Fe 离子和卟啉的复合物)相关的氧原子可以通过添加两个质子而被去除。去除后,酚可以很容易地结合到 COX 酶的过氧化物酶活性部位内,并直接与血红素中的 Fe 相互作用,从而促进电子从酚转移到血红素。这项研究为 COX 过氧化物酶重新激活循环中形成的几种中间体提供了理论依据,从而揭示了有助于未来针对过氧化物酶部位进行合理药物设计的机制细节。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7452/7494923/d212946db469/41598_2020_71237_Sch1_HTML.jpg

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