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Updated: Aug 6, 2026

High-Dimensionality Flow Cytometry for Immune Function Analysis of Dissected Implant Tissues
Published on: September 15, 2021
Mechano-immunomodulatory biomaterials: From immune mechanosensing to translational design
Ruiyue Hang1, Xiaohong Yao1, Long Bai2
1Shanxi Key Laboratory of Biomedical Metal Materials, College of Materials Science and Engineering, Taiyuan University of Technology, Taiyuan, 030024, China.
Abstract:
Mechanical cues are increasingly recognized as active regulators of immune-cell behavior rather than passive properties of tissues or biomaterials. In mechano-immunology, matrix stiffness, viscoelasticity, topography, shear stress, tensile strain, compression, and interstitial fluid pressure are understood to shape macrophage polarization, dendritic-cell maturation, neutrophil trafficking, T-cell activation, and tissue repair through coordinated mechanosensing and mechanotransduction. Yet immune responses to mechanical cues remain highly context-dependent, making simplified rules such as "stiff matrices promote inflammation" or "soft matrices promote repair" difficult to generalize across material systems, dimensionalities, ligand-presentation profiles, immune-cell sources, and activation states. Key bottlenecks include reconstructing multidimensional in vivo mechanical microenvironments, standardizing mechanical characterization and reporting, resolving immune-cell heterogeneity, and bridging reductionist platforms with clinically deployable biomaterials. Here, we summarize how immune cells decode mechanical signals through membrane-proximal mechanosensors, cytoskeletal remodeling, nuclear mechanotransduction, epigenetic regulation, and mechano-metabolic coupling. We then discuss how biomaterial parameters, including stiffness, viscoelasticity, mechanical stimulation, surface topography, degradation, and mechano-responsive delivery, can be engineered to modulate immunity in tissue regeneration, drug delivery, and theranostics. Finally, we highlight how artificial intelligence (AI)-enabled biophysical modeling and multimodal data integration may define context-specific mechanical design windows and accelerate next-generation mechano-immunomodulatory biomaterials.
