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通过组蛋白去乙酰化酶 6(HDAC6)对恶二唑类抑制剂的水解进行全面的机制研究。

Comprehensive Mechanistic View of the Hydrolysis of Oxadiazole-Based Inhibitors by Histone Deacetylase 6 (HDAC6).

机构信息

Institute of Biotechnology of the Czech Academy of Sciences, BIOCEV, Prumyslova 595, 252 50 Vestec, Czech Republic.

Institute of Organic Chemistry and Biochemistry of the Czech Academy of Sciences, Flemingovo náměstí 2, 166 10 Prague 6, Czech Republic.

出版信息

ACS Chem Biol. 2023 Jul 21;18(7):1594-1610. doi: 10.1021/acschembio.3c00212. Epub 2023 Jul 1.

Abstract

Histone deacetylase (HDAC) inhibitors used in the clinic typically contain a hydroxamate zinc-binding group (ZBG). However, more recent work has shown that the use of alternative ZBGs, and, in particular, the heterocyclic oxadiazoles, can confer higher isoenzyme selectivity and more favorable ADMET profiles. Herein, we report on the synthesis and biochemical, crystallographic, and computational characterization of a series of oxadiazole-based inhibitors selectively targeting the HDAC6 isoform. Surprisingly, but in line with a very recent finding reported in the literature, a crystal structure of the HDAC6/inhibitor complex revealed that hydrolysis of the oxadiazole ring transforms the parent oxadiazole into an acylhydrazide through a sequence of two hydrolytic steps. An identical cleavage pattern was also observed both using the purified HDAC6 enzyme as well as in cellular systems. By employing advanced quantum and molecular mechanics (QM/MM) and QM calculations, we elucidated the mechanistic details of the two hydrolytic steps to obtain a comprehensive mechanistic view of the double hydrolysis of the oxadiazole ring. This was achieved by fully characterizing the reaction coordinate, including identification of the structures of all intermediates and transition states, together with calculations of their respective activation (free) energies. In addition, we ruled out several (intuitively) competing pathways. The computed data (Δ ≈ 21 kcal·mol for the rate-determining step of the overall dual hydrolysis) are in very good agreement with the experimentally determined rate constants, which supports the proposed reaction mechanism. We also clearly (and quantitatively) explain the role of the -CF or -CHF substituent on the oxadiazole ring, which is a prerequisite for hydrolysis to occur. Overall, our data provide compelling evidence that the oxadiazole warheads can be efficiently transformed within the active sites of target metallohydrolases to afford reaction products possessing distinct selectivity and inhibition profiles.

摘要

组蛋白去乙酰化酶 (HDAC) 抑制剂在临床上通常含有一个羟肟酸锌结合基团 (ZBG)。然而,最近的研究表明,使用替代 ZBG,特别是杂环恶二唑,可以赋予更高的同工酶选择性和更有利的 ADMET 特性。在此,我们报告了一系列基于恶二唑的抑制剂的合成以及生物化学、晶体学和计算表征,这些抑制剂选择性靶向 HDAC6 同工酶。令人惊讶的是,但与文献中最近报道的一个发现一致,HDAC6/抑制剂复合物的晶体结构表明,恶二唑环的水解通过两个水解步骤将母体恶二唑转化为酰基酰肼。在纯化的 HDAC6 酶以及细胞系统中也观察到相同的裂解模式。通过采用先进的量子和分子力学 (QM/MM) 和 QM 计算,我们阐明了这两个水解步骤的机制细节,以获得对恶二唑环双水解的全面机制见解。通过充分表征反应坐标来实现这一点,包括确定所有中间体和过渡态的结构,以及计算它们各自的活化(自由)能。此外,我们排除了几种(直观上)竞争途径。计算得到的数据(整个双重水解的速率决定步骤的Δ ≈ 21 kcal·mol)与实验确定的速率常数非常吻合,这支持了所提出的反应机制。我们还清楚(和定量)解释了恶二唑环上 -CF 或 -CHF 取代基的作用,这是水解发生的前提。总的来说,我们的数据提供了令人信服的证据,表明恶二唑弹头可以在靶金属水解酶的活性部位内有效地转化,从而获得具有独特选择性和抑制特性的反应产物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c30a/10367051/996c3d27aa54/cb3c00212_0002.jpg

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