Search bioRxiv⌕ Search

Biology subjects

Cedillo-Servin, G.

Publications and source records attributed to Cedillo-Servin, G..

2 recordsLinked to original sources

Xolography for Biomedical Applications: Dual-color Light-sheet Printing of Hydrogels with Local Control over Shape and Stiffness

AbstractCurrent challenges in tissue engineering include creation of extracellular environments that support and interact with cells using biochemical, mechanical, and structural cues. Spatial control over these cues is currently limited due to a lack of suitable fabrication techniques. This study introduces Xolography, an emerging dual-color light-sheet volumetric printing technology, to achieve control over structural and mechanical features for hydrogel-based photoresins at micro-to macroscale while printing within minutes. We propose a water-soluble photoswitch photoinitiator system and are the first to demonstrate Xolography with a library of naturally-derived, synthetic, and thermoresponsive hydrogels. Centimeter-scale, three-dimensional constructs with positive features of 20 {micro}m and negative features of [~] 100 {micro}m are fabricated with control over mechanical properties (compressive moduli 0.2 kPa - 6.5 MPa). Notably, switching from binary to grayscaled light projection enables spatial control over stiffness (0.2 - 16 kPa). As a proof of concept, grayscaled Xolography is leveraged with thermoresponsive hydrogels to introduce reversible anisotropic shape changes beyond isometric shrinkage. We finally demonstrate Xolography of viable cell aggregates, laying the foundation for cell-laden printing of dynamic, cell-instructive environments with tunable structural and mechanical cues in a fast one-step process. Overall, these innovations unlock unique possibilities of Xolography across multiple biomedical applications.

bioengineering↗

Microstructured silk-fiber scaffolds with enhanced stretchability

Despite extensive research, current methods for creating three-dimensional (3D) silk fibroin (SF) scaffolds lack control over molecular rearrangement, particularly in the formation of {beta}-sheet nanocrystals, as well as hierarchical fiber organization at both micro- and macroscale. In this study, we introduce a fabrication process based on electrowriting of aqueous SF-based solutions followed by post-processing using an aqueous solution of sodium dihydrogen phosphate (NaH2PO4). This approach enables hierarchical assembly of SF chains via {beta}-sheet and -helix formation. Moreover, this process allows for precise control over micro- and macro-architectures in microfiber scaffolds, enabling the creation of 3D flat and tubular macrogeometries with square-based and crosshatch microarchitectures, featuring inter-fiber distances of 400 {micro}m and approximately 97% open porosity. Remarkably, the printed structures demonstrated restored {beta}-sheet and -helix structures, which imparted an elastic response of up to 20% deformation and the ability to support cyclic loading without plastic deformation. Furthermore, the printed constructs supported in vitro adherence and growth of human conditionally immortalized proximal tubular epithelial cells and glomerular endothelial cells, with cell viability above 95%. These cells formed uniform, aligned monolayers that deposited their own extracellular matrix. These findings represent a significant development in fabricating organized SF scaffolds with unique fiber structures, mechanical and biological properties, making them highly promising for regenerative medicine applications.

bioengineering↗