1. Academic Validation
  2. Dynamic hydrogels orchestrate the differentiation fate of mesenchymal stem cells through epigenetic regulation of SETD7 to accelerate bone defect repair

Dynamic hydrogels orchestrate the differentiation fate of mesenchymal stem cells through epigenetic regulation of SETD7 to accelerate bone defect repair

  • Bioact Mater. 2026 Feb 11:61:136-149. doi: 10.1016/j.bioactmat.2026.01.019.
Xudong Xie 1 Liangcong Hu 2 Yueman Zhang 3 Bobin Mi 1 Xiaoyue Xu 3 Chong Ding 1 Yiming Li 1 Fawwaz Al-Smadi 1 Xiangyu Chu 1 Yuan Xiong 4 Kunyu Zhang 3 Liming Bian 3 Guohui Liu 1
Affiliations

Affiliations

  • 1 Department of Orthopedics, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, 1277, Jiefang Avenue, Wuhan, 430022, China.
  • 2 Department of Plastic and Aesthetic Surgery, Zhongnan Hospital of Wuhan University, China.
  • 3 School of Biomedical Science and Engineering, South China University of Technology, China.
  • 4 Department of Orthopedics, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology, 1095, Jiefang Avenue, Wuhan, 430022, China.
Abstract

Dynamic mechanical signaling of the extracellular matrix is a key determinant of mesenchymal stem cell (MSC) fate, closely regulating their proliferation, differentiation and migration. Previously, we developed a highly cell-adaptive dynamic hydrogel (HA-ADA) that modulates MSC fate through unknown mechanisms. Here, using human bone marrow-derived mesenchymal stem cells (hMSCs), we found that sustained mechanical stimulation provided by HA-ADA hydrogel induced rapid spreading and significantly enhanced their osteogenic differentiation while inhibiting adipogenesis. Mechanistically, miRNA Sequencing revealed that this process was mediated by the downregulation of miR-376a-3p and miR-127-5p, thereby relieving their inhibitory effect on the methyltransferase SETD7. Elevated SETD7 expression catalyzed methylation of β-catenin and accelerated its nuclear translocation. In the nucleus, β-catenin further formed a transcriptional complex with YAP to synergistically amplify downstream signals and potently activate the expression of RUNX2, a key transcription factor for osteogenesis, which ultimately drove osteogenic differentiation and inhibited adipogenesis. The present study elucidated a novel mechanism by which cell-adaptive hydrogels regulate the β-catenin/YAP signaling loop through the miR-376a-3p/miR-127-5p-SETD7 axis, thereby determining the osteogenic/adipogenic differentiation of stem cells, which not only deepens our understanding of mechanotransduction but also provides new targets and material design strategies for bone regeneration.

Keywords

Bone regeneration; Dynamic hydrogels; miRNAs.

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