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Tricolor visible wavelength-selective photodegradable hydrogel biomaterials

Teresa L. Rapp, Cole A. DeForest

2023Nature Communications59 citationsDOIOpen Access PDF

Abstract

Photodynamic hydrogel biomaterials have demonstrated great potential for user-triggered therapeutic release, patterned organoid development, and four-dimensional control over advanced cell fates in vitro. Current photosensitive materials are constrained by their reliance on high-energy ultraviolet light (<400 nm) that offers poor tissue penetrance and limits access to the broader visible spectrum. Here, we report a family of three photolabile material crosslinkers that respond rapidly and with unique tricolor wavelength-selectivity to low-energy visible light (400-617 nm). We show that when mixed with multifunctional poly(ethylene glycol) macromolecular precursors, ruthenium polypyridyl- and ortho-nitrobenzyl (oNB)-based crosslinkers yield cytocompatible biomaterials that can undergo spatiotemporally patterned, uniform bulk softening, and multiplexed degradation several centimeters deep through complex tissue. We demonstrate that encapsulated living cells within these photoresponsive gels show high viability and can be successfully recovered from the hydrogels following photodegradation. Moving forward, we anticipate that these advanced material platforms will enable new studies in 3D mechanobiology, controlled drug delivery, and next-generation tissue engineering applications.

Topics & Concepts

Self-healing hydrogelsEthylene glycolMaterials scienceNanotechnologyVisible spectrumPhotodegradationChemistryOptoelectronicsPolymer chemistryBiochemistryPhotocatalysisCatalysisOrganic chemistry3D Printing in Biomedical ResearchPhotoreceptor and optogenetics researchHydrogels: synthesis, properties, applications
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