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    Meta-adaptive biomaterials: multiscale, spatiotemporal organization and actuation in engineered tissues

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    1-s2.0-S0167779925001702-main.pdf (2.292Mb)
    Date
    2025-11-30
    Author
    Cedillo-Servin, Gerardo
    Al-Jehani, Essa A.A.
    Rossy, Tamara
    Teixeira, Simão P.B.
    Sage, Fanny
    Domingues, Rui M.A.
    Raman, Ritu
    Castilho, Miguel
    ...show more authors ...show less authors
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    Abstract
    Organized cell architecture and dynamic forces are key for (re)creating native-like tissue function (e.g., contractile soft tissues). However, few studies have explored the combined effects of material-guided 3D cell organization with mechanical stimulation. Herein we underscore the importance of converging material-driven guidance of cell organization with stimulus-responsive actuation for multiscale biomaterial design, outlining strategies to engineer such biomaterials. Given the state-of-the-art biomaterials for multiscale spatiotemporally controlled organization and actuation, we propose a synergistic approach (‘meta-adaptive biomaterials’) that unlocks complexity in engineered biomaterials, harnessing adaptive feedback pathways arising from cell–material interactions. These can be designed similarly to cell–extracellular matrix (ECM) interactions to reinforce user-specified behaviors and yield functionalities that resemble or surpass native tissues, expanding possibilities in tissue engineering, in vitro models, and biohybrid robotics.
    URI
    https://www.sciencedirect.com/science/article/pii/S0167779925001702
    DOI/handle
    http://dx.doi.org/10.1016/j.tibtech.2025.05.004
    http://hdl.handle.net/10576/68931
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    • Biomedical Research Center Research [‎875‎ items ]

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