Serpina3c Deficiency Promotes Obesity-related Hypertriglyceridemia and Inflammation through Activation of the Hif1α-glycolysis Axis in Adipose Tissue.

IF 6.7 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL
Jiaqi Guo, Zhenjun Ji, Yu Jiang, Ya Wu, Shaofan Wang, Peng Zheng, Mengchen Yang, Yongjun Li, Genshan Ma, Yuyu Yao
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引用次数: 0

Abstract

Adipose tissue dysfunction leads to abnormal lipid metabolism and high inflammation levels. This research aims to explore the role of Serpina3c, which is highly expressed in adipocytes, in obesity-related hypertriglyceridemia and metaflammation. Serpina3c global knockout (KO) mice, adipocyte-specific Serpina3c overexpressing mice, Serpina3c knockdown (KD) mice, and hypoxia-inducible factor 1 alpha (Hif1α) KD mice were fed a high-fat diet (HFD) for 16 weeks to generate obesity-related hypertriglyceridemia mice models. In the present study, Serpina3c KO mice and adipocyte-specific Serpina3c KD mice exhibited more severe obesity-related hypertriglyceridemia and metaflammation under HFD conditions. Serpina3c KO epididymal white adipose tissue (eWAT) primary stromal vascular fraction (SVF)-derived adipocytes exhibited higher lipid (triglyceride and non-esterified fatty acid) levels and higher fatty acid synthase expression after palmitic acid stimulation. Adipocyte-specific Serpina3c overexpression in KO mice prevented the KO group phenotype. The RNA-seq and in vitro validation revealed that Hif1α and the glycolysis pathways were upregulated in Serpina3c KD adipocytes, which were all validated by in vitro and in vivo reverse experiments. Co-immunoprecipitation (co-IP) provided evidence that Serpina3c bound nuclear factor erythroid 2-related factor 2 (Nrf2) to regulate Hif1α. Nrf2 KD reduced Hif1α and Fasn expression, decreased lipid content, and reduced the extracellular acidification rate in Serpina3c KO adipocytes. Metabolomics revealed that lactic acid (LD) levels in eWAT were responsible for adipose-associated macrophage inflammation. In summary, Serpina3c inhibits the Hif1α-glycolysis pathway and reduces de novo lipogenesis and LD secretion in adipocytes by binding to Nrf2, thereby improving HFD-induced lipid metabolism disorders and alleviating adipose tissue macrophage inflammation.

Serpina3c缺乏通过激活脂肪组织中hif1 α-糖酵解轴促进肥胖相关的高甘油三酯血症和炎症
脂肪组织功能障碍导致脂质代谢异常和高炎症水平。本研究旨在探讨在脂肪细胞中高表达的Serpina3c在肥胖相关的高甘油三酯血症和炎症中的作用。将Serpina3c基因敲除(KO)小鼠、脂肪细胞特异性Serpina3c过表达小鼠、Serpina3c基因敲除(KD)小鼠和缺氧诱导因子1α (Hif1α) KD小鼠喂食高脂饮食(HFD) 16周,以建立肥胖相关高甘油三酯血症小鼠模型。在本研究中,在HFD条件下,Serpina3c KO小鼠和脂肪细胞特异性Serpina3c KD小鼠表现出更严重的肥胖相关高甘油三酯血症和炎症。Serpina3c KO附睾白色脂肪组织(eWAT)初级基质血管部分(SVF)衍生的脂肪细胞在棕榈酸刺激后表现出更高的脂质(甘油三酯和非酯化脂肪酸)水平和更高的脂肪酸合成酶表达。脂肪细胞特异性Serpina3c过表达在KO小鼠中阻止KO组表型。RNA-seq和体外验证表明,Serpina3c KD脂肪细胞中Hif1α和糖酵解通路上调,这一结果均得到了体外和体内反向实验的验证。共免疫沉淀(co-IP)证实Serpina3c结合核因子红细胞2相关因子2 (Nrf2)调节Hif1α。Nrf2 KD降低了Serpina3c KO脂肪细胞中Hif1α和Fasn的表达,降低了脂质含量,降低了细胞外酸化率。代谢组学显示,eWAT中的乳酸(LD)水平与脂肪相关的巨噬细胞炎症有关。综上所述,Serpina3c通过与Nrf2结合抑制hif1 α-糖酵解途径,减少脂肪细胞新生脂肪生成和LD分泌,从而改善hfd诱导的脂质代谢紊乱,减轻脂肪组织巨噬细胞炎症。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Clinical science
Clinical science 医学-医学:研究与实验
CiteScore
11.40
自引率
0.00%
发文量
189
审稿时长
4-8 weeks
期刊介绍: Translating molecular bioscience and experimental research into medical insights, Clinical Science offers multi-disciplinary coverage and clinical perspectives to advance human health. Its international Editorial Board is charged with selecting peer-reviewed original papers of the highest scientific merit covering the broad spectrum of biomedical specialities including, although not exclusively: Cardiovascular system Cerebrovascular system Gastrointestinal tract and liver Genomic medicine Infection and immunity Inflammation Oncology Metabolism Endocrinology and nutrition Nephrology Circulation Respiratory system Vascular biology Molecular pathology.
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