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Published on: May 26, 2023
Polysarcosine as a PEG Alternative Feedstock for 3D Digital Light Processing of Tunable Biocompatible Hydrogels
Guonan Ji1,2, Na Zhao3,4, Gianluca Bartolini Torres1,5
1Department of Chemistry, RCSI University of Medicine and Health Sciences, Dublin 2D02 YN77, Ireland.
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In this contribution, a series of 4-arm and 8-arm star-shaped polysarcosine methacrylates (4-PSar-MA and 8-PSar-MA) macromers were developed through controlled ring-opening polymerization of sarcosine N-carboxyanhydride (NCA) followed by terminal methacrylation. Photorheological analysis of these well-defined macromers demonstrated rapid light-induced gelation and tunable viscoelastic behavior, with controllable swelling and compression properties, revealing topology-dependent mechanical tunability. The 4-PSar-MA resin could readily produce high-fidelity 3D hydrogel constructs via digital light processing (DLP) 3D printing, including complex geometries such as a panda, a chess rook, and a 3DBenchy boat, with smooth interfaces and features. Encapsulated MC3T3 preosteoblasts maintained high viability under in situ photo-cross-linking, confirming cytocompatibility of the PSar-based matrix. Collectively, this work introduces the first photocurable star-polysarcosine system for DLP 3D printing, providing a chemically defined and structurally tunable hydrogel platform for advanced soft-material and biomedical applications.

