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肉桂醛通过靶向 ENO1 改变葡萄糖代谢的动态平衡。

Cinnamaldehyde changes the dynamic balance of glucose metabolism by targeting ENO1.

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 300353, China.

State Key Laboratory of Medicinal Chemical Biology, College of Pharmacy and Tianjin Key Laboratory of Molecular Drug Research, Nankai University, Tianjin 300353, China.

出版信息

Life Sci. 2020 Oct 1;258:118151. doi: 10.1016/j.lfs.2020.118151. Epub 2020 Jul 26.

Abstract

AIMS

Hepatic glucose metabolism involves a variety of catabolic and anabolic pathways, and the dynamic balance of glucose metabolism is regulated in response to environmental and nutritional changes. The molecular mechanism of glucose metabolism in liver is complex and has not been fully elucidated so far. In this study, we hope to elucidate the target and mechanism of cinnamaldehyde (CA) in regulating glucose metabolism.

MATERIALS AND METHODS

Molecular image tracing and magnetic capture in combination with an alkynyl-CA probe (Al-CA) was used to show CA covalently binds to α-enolase (ENO1) in both mouse liver and HepG2 cells. Accurate metabolic flow assays subsequently demonstrated that the utilization of glycogenic amino acids and the biosynthesis of tricarboxylic acid (TCA) cycle intermediates were strengthened, which was detected using nontargeted and targeted metabolomics analyses.

KEY FINDINGS

Our study shows that CA covalently bonds with ENO1, which affects the stability and activity of ENO1 and changes the dynamic balance of glucose metabolism. The interruption of gluconeogenic reflux by ENO1 enhanced TCA cycle, and eventually led to a decrease in blood glucose and the improvement of mitochondrial efficiency.

SIGNIFICANCE

These results provide a detailed description of how CA maintains the dynamic balance of glucose utilization and improves energy metabolism.

摘要

目的

肝脏的葡萄糖代谢涉及多种分解代谢和合成代谢途径,葡萄糖代谢的动态平衡可响应环境和营养变化进行调节。目前,肝脏葡萄糖代谢的分子机制较为复杂,尚未完全阐明。本研究旨在阐明肉桂醛(CA)调节葡萄糖代谢的作用靶点和机制。

材料和方法

采用分子成像示踪和磁珠捕获技术,结合炔基-CA 探针(Al-CA),证明 CA 可在小鼠肝脏和 HepG2 细胞中与烯醇酶 1(ENO1)发生共价结合。随后,通过非靶向和靶向代谢组学分析,准确检测到糖异生氨基酸的利用和三羧酸(TCA)循环中间产物的生物合成增强。

主要发现

本研究表明,CA 与 ENO1 发生共价结合,影响 ENO1 的稳定性和活性,改变葡萄糖代谢的动态平衡。ENO1 中断糖异生回流增强 TCA 循环,最终导致血糖降低和线粒体效率提高。

意义

这些结果详细描述了 CA 如何维持葡萄糖利用的动态平衡并改善能量代谢。

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