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  5. Mechanobiology in Action: Biomaterials, Devices, and the Cellular Machinery of Force Sensing

Mechanobiology in Action: Biomaterials, Devices, and the Cellular Machinery of Force Sensing

Author(s)
Lucariello, Miriam
Valicenti, Maria Luisa
Giannoni, Samuele
Donati, Leonardo
Armentano, Ilaria  
more
Date Issued
June 10, 2025
Type
article
Volume
15
Issue
6
DOI
10.3390/biom15060848
ISSN
2218-273X
Journal
BIOMOLECULES  
Abstract
Mechanical forces are increasingly recognised as fundamental regulators of cellular function, complementing classical biochemical cues to direct development, tissue homeostasis, and disease progression. Cells detect external and internal forces via mechanosensor proteins and adapt their cytoskeletal architecture, leading to changes in cell behaviour. Biomaterials and biodevices come to the aid of tailoring biomaterials’ properties in terms of chemical/physical properties and, by emulating dynamical forces, e.g., shear stress and cell swelling, they may enlighten mechanobiological processes. Additionally, emerging technologies expand the experimental toolkit for probing mechanobiological phenomena in complex, customisable settings. Central to these processes are mechanotransducer proteins and membrane–organelle networks that convert mechanical deformation into biochemical signals, orchestrating downstream transcriptional and post-translational modifications. This review highlights how through bridging material engineering and cellular mechanics, mechanobiology provides a unified framework to understand how physical forces shape tissues and drive pathologies. The continued integration of advanced biomaterials, dynamic biodevices, and multiscale analytical methods promises to uncover new mechanistic insights and inform the development of mechanotherapeutic strategies.
Subjects

mechanotransduction

mechanosensing

stem cells

differentiation

biomaterials

3D printing

biodevices

roughness

stiffness

YAP/TAZ

cell metabolism

organelles

Handle
https://dspace.unitus.it/handle/2067/62614
File(s)
Thumbnail Image
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biomolecules-15-00848-with-cover.pdf

Size

1.95 MB

Format

Adobe PDF

Checksum (MD5)

2fb09f324ce7089daf91958632816721

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