Hydrogel‐Based Mechano‐Immunomodulation in Bone Fracture Healing: Mechanical Regulation of Macrophage Phenotypes, Osteoimmune Interactions, and Regeneration

Bone fracture healing is a meticulously regulated process encompassing the inflammatory, reparative, and remodelling phases. Macrophages serve as pivotal coordinators within this cascade, with their polarisation from pro-inflammatory M1 to proregenerative M2 phenotypes, which play a crucial role in determining the repair outcome. Emerging evidence underscores the significant influence of mechanical cues such as strain, stiffness, vibration, and scaffold topography on macrophage behaviour, thereby linking mechanobiology with immunology. This review summarises the current knowledge on mechano-immunomodulation in fracture repair, emphasising how mechanotransduction pathways, including Piezo1, YAP/TAZ, and PI3K/AKT, affect macrophage polarisation and their interactions with mesenchymal stem cells, osteoblasts, and endothelial cells. This review examined biomaterial strategies that leverage mechanical properties ranging from ceramic scaffolds and calcium phosphate coatings to hydrogels and advanced magnetic/electrical interfaces to shape the osteoimmune niche. Translational perspectives highlight mechanobiologics, immunometabolic reprogramming, and personalised loading regimens as next-generation approaches for fracture care. The remaining challenges include context-dependent macrophage responses, limited bone-specific mechanosensing data, and the need for standardised models and regulatory-compliant biomaterials. Collectively, these insights establish mechano-immunomodulation as a promising paradigm for enhancing bone regeneration and addressing the limitations of the current fixation-centric therapies.

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Publication Details

Journal
Cell Biology International
Published
2026-09-21
DOI
https://doi.org/10.1002/cbin.70208
Primary Topic
Immune cells in cancer
Type
article
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article

Hydrogel‐Based Mechano‐Immunomodulation in Bone Fracture Healing: Mechanical Regulation of Macrophage Phenotypes, Osteoimmune Interactions, and Regeneration

Rajaram Rajamohan, Praveen Ramakrishnan, S.B. Mohamed, Thanigaivel Sundaram et al.
Cell Biology International
Immune cells in cancer
article

Hydrogel‐Based Mechano‐Immunomodulation in Bone Fracture Healing: Mechanical Regulation of Macrophage Phenotypes, Osteoimmune Interactions, and Regeneration

Rajaram Rajamohan, Praveen Ramakrishnan, S.B. Mohamed, Thanigaivel Sundaram, Nooruddin Thajuddin, Saranya Vinayagam, Abdulkadhar Mohamed Jalaludeen, Lalitha Gnanasekaran, Shanmugapriya D
article en

Abstract

Bone fracture healing is a meticulously regulated process encompassing the inflammatory, reparative, and remodelling phases. Macrophages serve as pivotal coordinators within this cascade, with their polarisation from pro-inflammatory M1 to proregenerative M2 phenotypes, which play a crucial role in determining the repair outcome. Emerging evidence underscores the significant influence of mechanical cues such as strain, stiffness, vibration, and scaffold topography on macrophage behaviour, thereby linking mechanobiology with immunology. This review summarises the current knowledge on mechano-immunomodulation in fracture repair, emphasising how mechanotransduction pathways, including Piezo1, YAP/TAZ, and PI3K/AKT, affect macrophage polarisation and their interactions with mesenchymal stem cells, osteoblasts, and endothelial cells. This review examined biomaterial strategies that leverage mechanical properties ranging from ceramic scaffolds and calcium phosphate coatings to hydrogels and advanced magnetic/electrical interfaces to shape the osteoimmune niche. Translational perspectives highlight mechanobiologics, immunometabolic reprogramming, and personalised loading regimens as next-generation approaches for fracture care. The remaining challenges include context-dependent macrophage responses, limited bone-specific mechanosensing data, and the need for standardised models and regulatory-compliant biomaterials. Collectively, these insights establish mechano-immunomodulation as a promising paradigm for enhancing bone regeneration and addressing the limitations of the current fixation-centric therapies.

Cell Biology InternationalVol. 50(10)
Central University of Tamil Nadu (IN), SRM Institute of Science and Technology (IN), Vinayaka Missions University (IN), University of Tarapacá (CL), Yeungnam University (KR), University of La Serena (CL), Saveetha University (IN), B.S. Abdur Rahman Crescent Institute of Science & Technology (IN)
Openalex Percentile: Top 17%
Immune cells in cancer
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