ReviewMechanobiology in medicine2024
The effects of matrix stiffness on immune cells in bone biology.
Review in Mechanobiology in medicine, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
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Who cites it
6 citing papers in PubMed.
- Mechanical stretch promotes osteogenesis in the midpalatal suture by enhancing neutrophil fatty acid oxidation through the S1PR1/STAT3 axis.Mechanobiology in medicine · 2026Article
- Review
- Mechanical memory in cells: mechanisms, effects, and applications in regenerative medicine.Frontiers in bioengineering and biotechnology · 2026Review
- Multimodal mechanoregulation strategies towards tissue regeneration.Mechanobiology in medicine · 2025Review
- Hyaluronan Accumulates in Inflamed Lymph Nodes and Promotes B-Cell Activation.Proteoglycan research · 2025Article
- Dual nanofiber and graphene reinforcement of 3D printed biomimetic supports for bone tissue repair.RSC advances · 2024Article
Corrections and comments
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Authors and funding
4 authors.
Funding
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Abstract
Bone and immune cells typically inhabit the same microenvironment and engage in mutual interactions to collectively execute the functions of the "osteoimmune system." Establishing a harmonized and enduring osteoimmune system significantly enhances bone regeneration, necessitating the maintenance of bone and immune homeostasis. Recently, mechanobiology has garnered increasing interest in bone tissue engineering, with matrix stiffness emerging as a crucial parameter that has been extensively investigated. The effect of matrix stiffness on bone homeostasis remains relatively clear. Soft substrates tend to significantly affect the chondrogenic differentiation of bone marrow mesenchymal stem cells, whereas increasing matrix stiffness is advantageous for osteogenic differentiation. Increased stiffness increases osteoclast differentiation and activity. Additionally, there is increasing emphasis on immune homeostasis, which necessitates dynamic communication between immune cells. Immune cells are crucial in initiating bone regeneration and driving early inflammatory responses. Functional changes induced by matrix stiffness are pivotal for determining the outcomes of engineered tissue mimics. However, inconsistent and incomparable findings regarding the responses of different immune cells to matrix stiffness can be perplexing owing to variations in the stiffness range, measurement methods, and other factors. Therefore, this study aimed to provide a comprehensive review of the specific effects of matrix stiffness on diverse immune cells, with a particular focus on its implications for bone regeneration, which would offer theoretical insights into the treatment of large segmental bony defects and assist in the clinical development of new engineering strategies.
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