成纤维细胞
组蛋白H3
细胞外基质
赖氨酸
化学
细胞生物学
增生性瘢痕
组蛋白
伤口愈合
串扰
表型
癌症研究
分子生物学
下调和上调
Ⅰ型胶原
细胞外
纤维化
肌成纤维细胞
瘢痕疙瘩
HEK 293细胞
基因表达
乙酰化
真皮成纤维细胞
基因表达调控
生物
信号转导
作者
Yixuan Yuan,Yujie Xiao,Jie Zou,Liang Luo,Mengyang Li,Wen Yin,Lai Wei,Yihao Zhang,Peng Wang,Yan Chen,Shijie Zhuo,Haitao Zhang,Shijie Song,Yanhui Jia,Kejia Wang,Shiqing Jiang,Hao Guan,D HU
标识
DOI:10.1038/s41467-026-69388-y
摘要
Hypertrophic scar (HS) is a fibroproliferative disorder characterized by fibroblast hyperactivation and aberrant extracellular matrix deposition. This study identifies macrophage-derived lactate as a key mediator of fibroblast phenotypic remodeling via monocarboxylate transporter 1 (MCT1)-mediated histone H3 lysine 23 lactylation (H3K23la) in HS. Elevated lactate levels and MCT1 expression were observed in HS tissues, with macrophages in stiff mechanical microenvironments identified as the primary lactate source. Lactate influx through MCT1 upregulated H3K23la, thereby promoting transcriptional activation of profibrotic genes HEY2 and COL11A1. Mechanistically, HEY2 activated YAP1/SMAD2 signaling, while COL11A1 stabilized MCT1 to enhance lactate transport, forming a positive loop that amplified fibrosis. Fibroblast-specific Mct1 deletion or pharmacological inhibition of Mct1 in male mice reduced collagen deposition, accelerated wound healing, and attenuated scar formation. Our findings redefine the macrophage-fibroblast crosstalk in HS and establish the MCT1-H3K23la-HEY2/COL11A1 axis, particularly its self-reinforcing loop, as a novel therapeutic target.
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