Tissue-specific regulation of cellular senescence on elastic hydrogels via the integrin α1-mediated mechanotransduction

Limin Song , Xinying Wang , Yiyao Pu , Xueyi Hu , Jing He , Rongrong Jin , Yu Nie

Collagen and Leather ›› 2026, Vol. 8 ›› Issue (1) : 11

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Collagen and Leather ›› 2026, Vol. 8 ›› Issue (1) :11 DOI: 10.1186/s42825-026-00237-w
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Tissue-specific regulation of cellular senescence on elastic hydrogels via the integrin α1-mediated mechanotransduction
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Abstract

Cellular senescence significantly impairs tissue repair through disrupting tissue homeostasis and limiting regenerative capacity. Biomaterial based microenvironment modulation has emerged as a promising strategy to counteract senescence and promote tissue regeneration. While mechanical properties such as matrix stiffness are known to influence cell fate, whether different tissue-derived cells exhibit distinct mechanical requirements for senescence resistance remains poorly understood. Here, we used stiffness-tunable polyacrylamide hydrogels spanning physiologically relevant elastic moduli and systematically evaluated senescence responses in neuronal (SH-SY5Y), dermal fibroblast (NIH3T3), and osteoblast precursor (MC3T3-E1) cells. Our results revealed tissue-specific stiffness windows that maximally suppressed senescence, with optimal senescence resistance responses observed at 1 kPa, 10 kPa, and 250 kPa for SH-SY5Y, NIH3T3, and MC3T3-E1 cells, respectively. Mechanistically, integrin α1, a collagen-binding integrin, was identified as a key mechanosensor mediating these effects. Optimal stiffness conditions enhanced integrin α1-mediated mechanotransduction, cytoskeletal remodeling, and activation of PI3K–Akt and YAP signaling pathways, leading to the downregulation of senescence markers (p16, p21) and upregulation of proliferation related genes. These findings provide a mechanistic framework for the design of stiffness-matched biomaterials to counteract senescence and enhance tissue regeneration.

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Cellular senescence / Matrix stiffness / Integrin α1 / Mechanotransduction / PI3K–Akt signaling / YAP activation

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Limin Song, Xinying Wang, Yiyao Pu, Xueyi Hu, Jing He, Rongrong Jin, Yu Nie. Tissue-specific regulation of cellular senescence on elastic hydrogels via the integrin α1-mediated mechanotransduction. Collagen and Leather, 2026, 8(1): 11 DOI:10.1186/s42825-026-00237-w

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Funding

National Natural Science Foundation of China(82372027)

Sichuan Province Science and Technology Support Program(2025ZNSFSC1040)

West China Hospital, Sichuan University(RD-03-202305)

Luzhou Science and Technology Bureau(2023LZXNYDHZ003)

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