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基于机制的烯丙基碳环糖氯化物与 α-和 β-半乳糖苷酶形成共价中间体。

Mechanism-Based Allylic Carbasugar Chlorides That Form Covalent Intermediates with α- and β-Galactosidases.

机构信息

Department of Chemistry, Simon Fraser University, Burnaby, BC V5A 1S6, Canada.

出版信息

Molecules. 2024 Oct 14;29(20):4870. doi: 10.3390/molecules29204870.

Abstract

Glycoside hydrolases have been implicated in a wide range of human conditions including lysosomal storage diseases. Consequently, many researchers have directed their efforts towards identifying new classes of glycoside hydrolase inhibitors, both synthetic and from natural sources. A large percentage of such inhibitors are reversible competitive inhibitors that bind in the active site often due to them possessing structural features, often a protonatable basic nitrogen atom, that mimic the enzymatic transition state. We report that mechanism-based small molecule -like configured cyclohexenyl carbasugars form reversible covalent complexes with both α-galactosidase and β-galactosidase. In addition, we show that the β-galactosidase from reacts with three different carbasugar inhibitors, with three different second-order rate constants (/), to give the same enzyme-carbasugar covalent intermediate. The surprising observation that the α-galacto-configured inhibitor covalently labels the β-galactosidase highlights the catalytic versatility of glycoside hydrolases. We expect that cyclohexenyl covalent inhibitors will become an important class of compounds in the chemical biologist's tool box.

摘要

糖苷水解酶与多种人类疾病相关,包括溶酶体贮积症。因此,许多研究人员致力于寻找新的糖苷水解酶抑制剂,包括合成抑制剂和天然来源抑制剂。这些抑制剂中有很大一部分是可逆竞争性抑制剂,它们通过结构特征(通常是可质子化的碱性氮原子)模拟酶的过渡态,从而结合到活性部位。我们报告称,基于机制的小分子类似环状己烯碳环糖与α-半乳糖苷酶和β-半乳糖苷酶均形成可逆的共价复合物。此外,我们还表明,来自 的β-半乳糖苷酶与三种不同的碳环糖抑制剂反应,得到相同的酶-碳环糖共价中间物,具有三种不同的二级速率常数(k2)。令人惊讶的是,α-半乳糖构型的抑制剂共价标记β-半乳糖苷酶,突出了糖苷水解酶的催化多功能性。我们预计,环己烯共价抑制剂将成为化学生物学家工具包中的一类重要化合物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3cd0/11510499/b386484cc270/molecules-29-04870-g001.jpg

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