ArticleMechanobiology in medicine2026
Substrate pre-stretch reprograms macrophage behavior through surface topographical remodeling.
Article in Mechanobiology in medicine, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
Mechanical regulation of macrophages is increasingly recognized, but whether a mechanically preconditioned surface remains biologically instructive after loading has ceased is unclear. Here, we developed a custom uniaxial pre-stretch device to generate polydimethylsiloxane (PDMS) membranes with defined tensile histories and used this system to examine how substrate mechanical regulates macrophage behavior. Atomic force microscopy showed that pre-stretch reduced membrane step height and surface roughness without significantly changing elastic modulus or water contact angle, indicating selective remodeling of surface topography. RAW264.7 macrophages cultured on pre-stretched membranes exhibited increased cell and nuclear spreading, reduced roundness, and decreased F-actin intensity, accompanied by enhanced cell-substrate adhesion and increased migratory activity. Pre-stretched surfaces also promoted phagocytosis and reactive oxygen species generation without affecting proliferation. In addition, macrophages on pre-stretched membranes showed elevated expression of TNFα and IL-1β and increased TNF-α secretion, whereas Arg1 and IL-10 were not enhanced, indicating a shift toward a pro-inflammatory phenotype. These findings demonstrate that pre-stretched PDMS membranes function as mechanically encoded interfaces that direct macrophage morphology, motility, functional activation, and inflammatory polarization. More broadly, this study identifies substrate mechanical as a previously underappreciated regulator of macrophage mechanoimmunology and provides a useful platform for biomaterials research, disease modeling, and drug screening.
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