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PMID: 41590820 已发表 · epublish 英语

Biomechanical Stimulation of Mesenchymal Stem Cells in 3D Peptide Nanofibers for Bone Differentiation.

Journal of functional biomaterials ·第 17 卷 ·第 1 期 ·2026-01-19

Fouladgar F, Powell R, Carney E, Martinez AE, Jafari A, Habibi N

摘要

Mechanical stimulation critically regulates mesenchymal stem cell (MSC) differentiation, yet its effects in three-dimensional (3D) environments remain poorly defined. Here, we developed a custom dynamic stretcher integrating poly(dimethylsiloxane) (PDMS) chambers to apply cyclic strain to human MSCs encapsulated in Fmoc-diphenylalanine (Fmoc-FF) peptide hydrogels-a fully synthetic, tunable extracellular matrix mimic. Finite element modeling verified uniform strain transmission across the hydrogel. Dynamic stretching at 0.5 Hz and 10% strain induced pronounced cytoskeletal alignment, enhanced actin stress fiber formation (coherency index ≈ 0.85), and significantly increased proliferation compared to static or high-frequency (2.5 Hz, 1%) conditions (coherency index ≈ 0.6). Quantitative image analysis confirmed strain-dependent increases in coherency index and F-actin intensity, indicating enhanced mechanotransductive remodeling. Biochemical assays and qRT-PCR revealed 2-3-fold upregulation of osteogenic markers-RUNX2, ALP, COL1A1, OSX, BMP, ON, and IBSP-under optimal strain. These results demonstrate that low-frequency, high-strain mechanical loading in 3D peptide hydrogels activates RhoA/ROCK and YAP/TAZ pathways, driving osteogenic differentiation. The integrated experimental-computational approach provides a robust platform for studying mechanobiological regulation and advancing mechanically tunable biomaterials for bone tissue engineering.

关键词
bone tissue dynamic stretching mesenchymal stem cells osteogenic differentiation
文献信息
期刊
Journal of functional biomaterials
期刊简称
J Funct Biomater
ISSN
2079-4983
发表日期
2026-01-19
语言
英语
国家/地区
Switzerland
NLM ID
101570734
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