The nonlinear elasticity of many tissue-specific extracellular matrices is difficult to recapitulate without the use of fibrous architectures, which couple strain-stiffening with stress relaxation. Herein, bottlebrush polymers are synthesized and crosslinked to form poly(ethylene glycol)-based hydrogels and used to study how strain-stiffening behavior affects human mesenchymal stromal cells (hMSCs). By tailoring the bottlebrush polymer length, the critical stress associated with the onset of network stiffening is systematically varied, and a unique protrusion-rich hMSC morphology emerges only at critical stresses within a biologically accessible stress regime. Local cell-matrix interactions are quantified using 3D traction force microscopy and small molecule inhibitors are used to identify cellular machinery that plays a critical role in hMSC mechanosensing of the engineered, strain-stiffening microenvironment. Collectively, this study demonstrates how covalently crosslinked bottlebrush polymer hydrogels can recapitulate strain-stiffening biomechanical cues at biologically relevant stresses and be used to probe how nonlinear elastic matrix properties regulate cellular processes.
Nonlinear Elastic Bottlebrush Polymer Hydrogels Modulate Actomyosin Mediated Protrusion Formation in Mesenchymal Stromal Cells.
非线性弹性刷状聚合物水凝胶调节间充质基质细胞中肌动球蛋白介导的突起形成
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作者:Ohnsorg Monica L, Mash Kayla M, Khang Alex, Rao Varsha V, Kirkpatrick Bruce E, Bera Kaustav, Anseth Kristi S
| 期刊: | Advanced Materials | 影响因子: | 26.800 |
| 时间: | 2024 | 起止号: | 2024 Jul;36(28):e2403198 |
| doi: | 10.1002/adma.202403198 | 研究方向: | 细胞生物学 |
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