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Instant Assembly of Collagen for Scaffolding, Tissue Engineering, and Bioprinting

Gong, X.; Wen, Z.; Liang, Z.; Xiao, H.; Lee, S.; Wright, T.; Nguyen, R. Y.; Rossello, A.; Mak, M.

2023-10-10 bioengineering
10.1101/2023.10.08.561456 bioRxiv
Show abstract

Controllable assembly of cells and tissues offers potential for advancing disease and development modeling and regenerative medicine. The bodys natural scaffolding material is the extracellular matrix, composed largely of collagen I. However, challenges in precisely controlling collagen assembly limit collagens applicability as a primary bioink or glue for biofabrication. Here, we introduce a set of biopatterning methods, termed Tunable Rapid Assembly of Collagenous Elements (TRACE), that enables instant gelation and rapid patterning of collagen I solutions with wide range of concentrations. Our methods are based on accelerating the gelation of collagen solutions to instantaneous speeds via macromolecular crowding, allowing versatile patterning of both cell-free and cell-laden collagen-based bioinks. We demonstrate notable applications, including macroscopic organoid engineering, rapid free-form 3D bioprinting, contractile cardiac ventricle model, and patterning of high-resolution (below 5 (m) collagen filament. Our findings enable more controllable and versatile applications for multi-scale collagen-based biofabrication.

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