Dynamic stiffness drives BMSC chondrogenesis via Ihh -regulated H3K18 lactylation/ Rcan1 axis and mitochondrial fission remodeling

软骨发生 细胞生物学 化学 间充质干细胞 硫氧化物9 转录组 线粒体分裂 下调和上调 免疫印迹 生物 干细胞 线粒体 表观遗传学 软骨 基因表达谱 细胞分化 基因表达 基因表达调控 组蛋白 分子生物学 细胞培养中氨基酸的稳定同位素标记 细胞
作者
Liyang Chen,Heng'an Ge,C. Liu,Jie Li,Chenglong Huang,Biao Cheng
出处
期刊:Biomedical Materials [IOP Publishing]
卷期号:21 (1): 015022-015022
标识
DOI:10.1088/1748-605x/ae3a29
摘要

Cartilage defects pose significant clinical challenges due to limited regenerative capacity. Dynamic matrix stiffness, mimicking the physiological mechanical microenvironment, shows promise in directing stem cell chondrogenesis, but its molecular mechanisms remain unclear. Bone marrow mesenchymal stem cells (BMSCs) were cultured on engineered hydrogels with static soft (0.033 kPa), dynamic (0.031-0.126 kPa, time-dependent stiffening), and static stiff (0.126 kPa) conditions. We performed small interfering RNA-mediatedIhhknockdown andRcan1overexpression, with chondrogenic differentiation assessed via COL2/SOX9 immunofluorescence. For molecular analyses, we conducted qPCR, CUT&Tag-PCR, Western blot, RNA-seq, H3K18la-targeted CUT&Tag sequencing, and transmission electron microscopy (TEM) for mitochondrial morphology assessment. Dynamic stiffness significantly enhanced chondrogenic differentiation, as evidenced by immunofluorescence detection of elevated COL2 and SOX9 expression.IhhmRNA expression levels were upregulated by dynamic stiffness. Transcriptome profiling analysis revealed thatIhhknockdown disrupted the expression of genes involved in the glycolytic pathway, while Western blot results showed thatIhhknockdown inhibited histone H3 lysine 18 lactylation (H3K18la). CUT&Tag sequencing revealedIhh-dependent H3K18la enrichment at regulatory regions of mitochondria-associated genes, notablyRcan1. Ihhdeficiency promoted mitochondrial fission, as evidenced by increasedDrp1andFis1mRNA expression levels and direct observation of enhanced mitochondrial fission via TEM. Crucially,Rcan1overexpression rescued mitochondrial fusion, downregulated fission markers, and reinstated chondrogenic marker expression. Consistently, the LDHA inhibitor FX11 reduced lactate levels, diminished H3K18la, and downregulatedRcan1, confirming the metabolic dependence of this axis. RNA-seq analysis further established thatRcan1overexpression reprogrammed signaling pathways critical for cell differentiation, including ECM-receptor interaction. Dynamic stiffness promotes BMSC chondrogenesis via theIhh-H3K18la-Rcan1axis, linking mechanical cues to epigenetic regulation of mitochondrial remodeling and providing a novel target for cartilage repair.
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