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Biology subjects

RIZZO, R.

Publications and source records attributed to RIZZO, R..

2 recordsLinked to original sources

Tomographic Printing in a Chip: A Versatile Platform for Biomimetic 3D Organ-on-Chip

Abstract textOrgan-on-chip (OoC) platforms are increasingly adopted for predictive in vitro testing. However, most remain limited by soft-lithography-derived 2.5D microfluidic architectures and non-physiological rigid materials, or bioprinting approaches that require complex and failure-prone post-fabrication assembly. Here, we present a versatile approach that integrates tomographic volumetric additive manufacturing (TVAM) directly within preassembled microfluidic chips, enabling rapid, contactless fabrication of freeform 3D OoCs. Leveraging our open-source optical simulation framework, Dr.TVAM, we perform TVAM in custom-designed chips, eliminating post-printing manual assembly steps that commonly lead to leakage, contamination, and poor reproducibility. This strategy, termed TVAM-in-a-chip, supports the generation of diverse 3D channel architectures in multiple biocompatible photoresins spanning a wide range of chemistries and mechanical properties, including cell-laden formulations. We demonstrate multi-channel designs, compatibility with confocal imaging, and dynamic culture of epithelial and endothelial models. Overall, TVAM-in-a-chip overcomes key limitations of current OoC technologies and paves the way for a new generation of scalable, biomimetic 3D platforms for advanced in vitro modeling.

bioengineering↗

Embedding Perfusable Microchannel Networks in Photoclickable Bioresins via High-Resolution Digital Light Processing

Light-mediated 3D bioprinting methods hold great promise for the generation of biomimetic microvasculature networks for applications ranging from organ-on-chip models to vascularized tissue constructs. While printing microvascular channels ([≤]100 {micro}m in diameter) within large hydrogel volumes ([≥]1 cm3) is theoretically feasible, progress remains limited by the lack of suitable biocompatible photoresins. Here, we report the development of an optimized photoresin based on fish gelatin and photoclick crosslinking chemistry for bioprinting perfusable, embedded microvascular networks via high-resolution digital light processing (DLP). Specifically, our biocompatible matrix leverages the fast kinetics and negligible dark curing of thiol-norbornene crosslinking as well as the low viscosity and thermal stability of fish gelatin. Using pulsed illumination and a biocompatible radical scavenger (DMPO), we further minimize radical diffusion-induced blurring, enabling extended printing (>5 h). Finally, printing failures are reduced through the incorporation of a biocompatible surfactant (Poloxamer-188). Together, these advances open new avenues for printing perfusable biomimetic microvascular networks embedded in biocompatible hydrogel matrices.

bioengineering↗