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Hybrid Shear-thinning Hydrogel Integrating Hyaluronic Acid with ROS-Responsive Nanoparticles

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Journal Adv Funct Mater
Date 2023 Dec 18
PMID 38107427
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Abstract

Nanoparticle (NP) supra-assembly offers unique opportunities to tune macroscopic hydrogels' mechanical strength, material degradation, and drug delivery properties. Here, synthetic, reactive oxygen species (ROS)-responsive NPs are physically crosslinked with hyaluronic acid (HA) through guest-host chemistry to create shear-thinning NP/HA hydrogels. A library of triblock copolymers composed of poly(propylene sulfide)--poly(N,N-dimethylacrylamide)--poly(N,N-dimethylacrylamide--N-(1-adamantyl)acrylamide) are synthesized with varied triblock architectures and adamantane grafting densities and then self-assembled into NPs displaying adamantane on their corona. Self-assembled NPs are mixed with β-cyclodextrin grafted HA to yield eighteen NP/HA hydrogel formulations. The NP/HA hydrogel platform demonstrates superior mechanical strength to HA-only hydrogels, susceptibility to oxidative/enzymatic degradation, and inherent cell-protective, antioxidant function. The performance of NP/HA hydrogels is shown to be affected by triblock architecture, guest/host grafting densities, and HA composition. In particular, the length of the hydrophilic second block and adamantane grafting density of self-assembled NPs significantly impacts hydrogel mechanical properties and shear-thinning behavior, while ROS-reactivity of poly(propylene sulfide) protects cells from cytotoxic ROS and reduces oxidative degradation of HA compared to HA-only hydrogels. This work provides insight into polymer structure-function considerations for designing hybrid NP/HA hydrogels and identifies antioxidant, shear-thinning hydrogels as promising injectable delivery platforms for small molecule drugs and therapeutic cells.

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References
1.
Zander Z, Hua G, Wiener C, Vogt B, Becker M . Control of Mesh Size and Modulus by Kinetically Dependent Cross-Linking in Hydrogels. Adv Mater. 2015; 27(40):6283-8. PMC: 5951290. DOI: 10.1002/adma.201501822. View

2.
DeJulius C, Bernardo-Colon A, Naguib S, Backstrom J, Kavanaugh T, Gupta M . Microsphere antioxidant and sustained erythropoietin-R76E release functions cooperate to reduce traumatic optic neuropathy. J Control Release. 2020; 329:762-773. PMC: 8162757. DOI: 10.1016/j.jconrel.2020.10.010. View

3.
Bernhard S, Tibbitt M . Supramolecular engineering of hydrogels for drug delivery. Adv Drug Deliv Rev. 2021; 171:240-256. DOI: 10.1016/j.addr.2021.02.002. View

4.
Li J, Mooney D . Designing hydrogels for controlled drug delivery. Nat Rev Mater. 2018; 1(12). PMC: 5898614. DOI: 10.1038/natrevmats.2016.71. View

5.
Appel E, Tibbitt M, Webber M, Mattix B, Veiseh O, Langer R . Self-assembled hydrogels utilizing polymer-nanoparticle interactions. Nat Commun. 2015; 6:6295. PMC: 4651845. DOI: 10.1038/ncomms7295. View