Itaconate Ameliorates Skin Fibrosis Through Inhibition of HIF-1α/LDHA-Driven Aerobic Glycolysis

纤维化 糖酵解 成纤维细胞 细胞生物学 细胞外基质 乳酸脱氢酶A 人体皮肤 重编程 炎症 生物 癌症研究 厌氧糖酵解 信号转导 下调和上调 真皮成纤维细胞 伤口愈合 内生 血管生成 药理学 细胞外 肌成纤维细胞 化学 皮肤修复 乳酸脱氢酶 代谢途径 免疫系统 真皮 新陈代谢 内分泌学 生物化学 活性氧 葡萄糖摄取 缺氧(环境)
作者
Linxiao Li,Xiaohui Miao,Yu Cheng,Yingying Zhuang,Wuyan Lu,Yishu Lu,Yu Jiang,Zihao Hu,Jinyi Deng,Fengting Niu,Guangpeng Liu,Lei Cui,Shuaijun Li,Jiefeng Huang
出处
期刊:Antioxidants & Redox Signaling [Mary Ann Liebert, Inc.]
卷期号:45 (10-12): 512-533
标识
DOI:10.1177/15230864261467594
摘要

Background: Skin fibrosis is a hallmark of scleroderma and other fibrotic skin disorders, yet effective therapies remain limited. Immune-derived metabolites have emerged as regulators of inflammation and tissue remodeling, but whether metabolic reprogramming within dermal fibroblasts contributes to skin fibrosis remains unclear. Methods: Human fibrotic skin samples, a bleomycin-induced mouse model, and primary dermal fibroblasts were used to investigate the role of immune-responsive gene 1 ( Irg1 ) and its metabolic product itaconate. Transcriptomic analyses, metabolic profiling, pharmacologic modulation, and genetic perturbation were employed to define downstream signaling mechanisms. Key Findings: Irg1 expression and endogenous itaconate levels were reduced in fibrotic human and murine skin. Restoration of itaconate significantly attenuated dermal thickening, collagen deposition, and fibroblast activation. Mechanistically, itaconate suppressed glycolytic reprogramming in activated fibroblasts, as evidenced by reduced glucose uptake, lactate production, and glycolytic enzyme expression. This metabolic effect was associated with inhibition of the Akt/GSK-3β pathway, destabilization of hypoxia-inducible factor 1α (HIF-1α), and subsequent downregulation of lactate dehydrogenase A (LDHA) transcription. Genetic or pharmacologic interference with HIF-1α or LDHA partially phenocopied itaconate’s antifibrotic effects, supporting a functional link between itaconate signaling, fibroblast metabolism, and fibrotic progression. Conclusions: This study identifies loss of Irg1-itaconate signaling as a previously unrecognized driver of fibroblast metabolic reprogramming in skin fibrosis. By revealing a fibroblast-intrinsic, metabolism-centered mechanism linking immunometabolite deficiency to extracellular matrix overproduction, these findings extend itaconate’s scope beyond immune regulation and highlight metabolic targeting of fibroblasts as a promising therapeutic strategy for fibrotic skin disease. Antioxid. Redox Signal . 45, 512–533.
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