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Stepwise Stiffening/Softening of and Cell Recovery from Reversibly Formulated Hydrogel Double Networks

2024-04-08

Abstract excerpt

Biomechanical contributions of the ECM underpin cell growth and proliferation, differentiation, signal transduction, and other fate decisions. As such, biomaterials whose mechanics can be spatiotemporally altered – particularly in a reversible manner – are extremely valuable for studying these mechanobiological phenomena. Herein, we introduce a poly(ethylene glycol) (PEG)-based hydrogel model consisting of two int...

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Literature Corpus work
dbfcf00d-5db6-5091-a523-4f7c20d57793
DOI
10.1101/2024.04.04.588191
Open publication

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Stepwise Stiffening/Softening of and Cell Recovery from Reversibly Formulated Hydrogel Double NetworksDOI 10.1101/2024.04.04.588191
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