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熊果酸通过体内不可逆抑制 HMGCS1 抑制胆固醇生物合成并缓解高脂饮食诱导的高胆固醇血症。

Ursolic acid inhibits the cholesterol biosynthesis and alleviates high fat diet-induced hypercholesterolemia via irreversible inhibition of HMGCS1 in vivo.

机构信息

State Key Laboratory of Medicinal Chemical Biology, College of Pharmacy and Tianjin Key Laboratory of Molecular Drug Research, Nankai University, Tianjin, China.

Guangxi Collaborative Innovation Center for Functional Ingredients Study of Agricultural Residues, Guangxi Key Laboratory of Efficacy Study on Chinese Materia Medica, Guangxi University of Chinese Medicine, Nanning, China.

出版信息

Phytomedicine. 2022 Aug;103:154233. doi: 10.1016/j.phymed.2022.154233. Epub 2022 Jun 1.

Abstract

BACKGROUND

In hypercholesteremia, the concentrations of total cholesterol (TC) and low-density lipoprotein cholesterol (LDL-C) are enhanced in serum, which is strongly associated with an increased risk of developing atherosclerosis. Ursolic acid (UA), a pentacyclic terpenoid carboxylic acid, was found to alleviate hypercholesterolemia and hypercholesterolemia-induced cardiovascular disease. However, the specific targets and molecular mechanisms related to the effects of UA in reducing cholesterol have not been elucidated.

PURPOSE

In this study, we aimed to illustrate the target of UA in the treatment of hypercholesterolemia and to reveal its underlying molecular mechanism.

METHODS

Nontargeted metabolomics was conducted to analyze the metabolites and related pathways that UA affected in vivo. The main lipid metabolism targets of UA were analyzed by target fishing and fluorescence colocalization in mouse liver. Molecular docking, in-gel fluorescence scan and thermal shift were assessed to further investigate the binding site of the UA metabolite with HMGCS1. C57BL/6 mice were fed a high-fat diet (HFD) for 12 weeks to induce hypercholesteremia. Liver tissues were used to verify the cholesterol-lowering molecular mechanism of UA by targeted metabolomics, serum was used to detect biochemical indices, and the entire aorta was used to analyze the formation of atherosclerotic lesions.

RESULTS

Our results showed that hydroxy‑3-methylglutaryl coenzyme A synthetase 1 (HMGCS1) was the primary lipid metabolism target protein of UA. The UA metabolite epoxy-modified UA irreversibly bonds with the thiol of Cys-129 in HMGCS1, which inhibits the catalytic activity of HMGCS1 and reduces the generation of precursors in cholesterol biosynthesis in vivo. The contents of TC and LDL-C in serum and the formation of the atherosclerotic area in the entire aorta were markedly reduced with UA treatment in Diet-induced hypercholesteremia mice.

CONCLUSION

UA inhibits the catalytic activity of HMGCS1, reduces the generation of downstream metabolites in the process of cholesterol biosynthesis and alleviates Diet-induced hypercholesteremia via irreversible binding with HMGCS1 in vivo. It is the first time to clarify the irreversible inhibition mechanism of UA against HMGCS1. This paper provides an increased understanding of UA, particularly regarding the molecular mechanism of the cholesterol-lowering effect, and demonstrates the potential of UA as a novel therapeutic for the treatment of hypercholesteremia.

摘要

背景

在高胆固醇血症中,血清中的总胆固醇(TC)和低密度脂蛋白胆固醇(LDL-C)浓度升高,这与动脉粥样硬化发病风险增加密切相关。熊果酸(UA)是一种五环萜羧酸,已被发现可减轻高胆固醇血症和高胆固醇血症引起的心血管疾病。然而,UA 降低胆固醇的具体靶点和分子机制尚不清楚。

目的

本研究旨在阐明 UA 治疗高胆固醇血症的作用靶点,并揭示其潜在的分子机制。

方法

采用非靶向代谢组学方法分析 UA 在体内作用的代谢物及相关通路。通过靶标钓取和小鼠肝组织荧光共定位分析 UA 的主要脂质代谢靶标。采用分子对接、胶内荧光扫描和热迁移实验进一步研究 UA 代谢物与 HMGCS1 的结合位点。用高脂饮食(HFD)喂养 C57BL/6 小鼠 12 周诱导高胆固醇血症。采用靶向代谢组学方法验证 UA 降低胆固醇的分子机制,用血清检测生化指标,用主动脉全长分析动脉粥样硬化病变的形成。

结果

研究结果表明,羟甲基戊二酰基辅酶 A 合酶 1(HMGCS1)是 UA 的主要脂质代谢靶标蛋白。UA 代谢物环氧修饰的 UA 与 HMGCS1 中半胱氨酸残基 Cys-129 的巯基不可逆结合,抑制 HMGCS1 的催化活性,降低体内胆固醇生物合成过程中前体的生成。UA 治疗可显著降低 Diet-induced 高胆固醇血症小鼠血清 TC 和 LDL-C 含量以及主动脉全长动脉粥样硬化面积的形成。

结论

UA 通过与 HMGCS1 不可逆结合,抑制 HMGCS1 的催化活性,减少胆固醇生物合成过程中下游代谢物的生成,从而缓解 Diet-induced 高胆固醇血症。这是首次阐明 UA 对 HMGCS1 的不可逆抑制机制。本研究加深了对 UA 的认识,特别是对其降胆固醇作用的分子机制的认识,并为 UA 作为治疗高胆固醇血症的新型治疗药物提供了依据。

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