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. Methods: 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 siRNA-mediated Ihh knockdown and Rcan1 overexpression, 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. Results: Dynamic stiffness significantly enhanced chondrogenic differentiation, as evidenced by immunofluorescence detection of elevated COL2 and SOX9 expression. Ihh mRNA expression levels were upregulated by dynamic stiffness. Transcriptome profiling analysis revealed that Ihh knockdown disrupted the expression of genes involved in the glycolytic pathway, while Western blot results showed that Ihh knockdown inhibited histone H3 lysine 18 lactylation (H3K18la). CUT&Tag sequencing revealed Ihh-dependent H3K18la enrichment at regulatory regions of mitochondria-associated genes, notably Rcan1. Ihh deficiency promoted mitochondrial fission, as evidenced by increased Drp1 and Fis1 mRNA expression levels and direct observation of enhanced mitochondrial fission via TEM. Crucially, Rcan1 overexpression rescued mitochondrial fusion, downregulated fission markers, and reinstated chondrogenic marker expression. Consistently, the LDHA inhibitor FX11 reduced lactate levels, diminished H3K18la, and downregulated Rcan1, confirming the metabolic dependence of this axis. RNA-seq analysis further established that Rcan1 overexpression reprogrammed signaling pathways critical for cell differentiation, including ECM-receptor interaction. Conclusion: Dynamic stiffness promotes BMSC chondrogenesis via the Ihh-H3K18la-Rcan1 axis, linking mechanical cues to epigenetic regulation of mitochondrial remodeling and providing a novel target for cartilage repair.
Chen et al. (Mon,) studied this question.