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二甲双胍在巨噬细胞源性泡沫细胞中以葡萄糖浓度依赖性方式对脂质调节作用的多组学分析。

Multi-omics analysis of the lipid-regulating effects of metformin in a glucose concentration-dependent manner in macrophage-derived foam cells.

作者信息

Qi Jie, Dong Mengya, Gou Qiling, Zhu Huolan

机构信息

Second Department of Cardiovascular Medicine, Shaanxi Provincial People's Hospital, Xi'an, China.

Department of Geriatrics, Shaanxi Provincial People's Hospital, Xi'an, China.

出版信息

Cell Biochem Biophys. 2024 Dec;82(4):3235-3249. doi: 10.1007/s12013-024-01269-x. Epub 2024 Sep 5.

Abstract

Metformin has a long history of clinical application and has been shown to have outstanding ability in lowering glucose. Recent advances have further revealed its broad modulatory ability beyond glucose-lowering, expanding the scope of metformin applications. Metformin has now been applied as a viable lipid-lowering strategy in non-hyperglycemic obese patients. However, the benefits and underlying pharmacological mechanisms of metformin administration in non-hyperglycemic populations remain to be explained. Our study aimed to systematically investigate the differences in the lipid-lowering function and pharmacological mechanisms of metformin in high- and low-sugar conditions to facilitate the development of individualized metformin use regimens for different clinical patients. We constructed macrophage-derived foam cell models in vitro for subsequent analysis. ORO results showed that metformin significantly reduced lipid accumulation in macrophages in both high and low glucose environments, but the lipid decline was higher in the high glucose environment. By mutual validation and joint analysis of transcriptomics and metabolomics, significant differences in metformin transcriptional and metabolic patterns existed among high and normal glucose environments. The significant alterations of genes such as DGKA, LPL, DGAT2 and lipid metabolites such as LysPA and LysPC partially explained the glucose-dependent pharmacological function of metformin. In conclusion, our study confirmed that the lipid-lowering effect of metformin depends on the extracellular glucose concentration, and systematically studied the molecular mechanism of metformin in different glycemic environments, which provides a certain reference value for the subsequent in-depth study and clinical application.

摘要

二甲双胍具有悠久的临床应用历史,且已被证明在降血糖方面具有出色的能力。最近的进展进一步揭示了其除降血糖外的广泛调节能力,扩大了二甲双胍的应用范围。二甲双胍现已被用作非高血糖肥胖患者可行的降脂策略。然而,二甲双胍在非高血糖人群中的益处及潜在药理机制仍有待阐明。我们的研究旨在系统地研究二甲双胍在高糖和低糖条件下降脂功能及药理机制的差异,以促进为不同临床患者制定个性化的二甲双胍使用方案。我们在体外构建了巨噬细胞源性泡沫细胞模型用于后续分析。油红O结果显示,二甲双胍在高糖和低糖环境中均显著降低巨噬细胞内的脂质积累,但在高糖环境中脂质下降幅度更大。通过转录组学和代谢组学的相互验证和联合分析,发现高糖和正常糖环境中二甲双胍的转录和代谢模式存在显著差异。DGKA、LPL、DGAT2等基因以及LysPA和LysPC等脂质代谢物的显著改变部分解释了二甲双胍的葡萄糖依赖性药理功能。总之,我们的研究证实了二甲双胍的降脂作用取决于细胞外葡萄糖浓度,并系统地研究了二甲双胍在不同血糖环境中的分子机制,为后续的深入研究和临床应用提供了一定的参考价值。

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