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Van Vlierberghe, S.

Publications and source records attributed to Van Vlierberghe, S..

2 recordsLinked to original sources

Bifunctional methacryloyl-norbornene gelatin chemistry enables tunable bioinks for soft tissue engineering via digital light processing

Photocrosslinkable gelatin derivatives are promising bioinks for soft tissue engineering, but their use in cell-laden digital light processing (DLP) requires a balance between tunable mechanics, printability and cytocompatibility. Here, we report a small library of photocrosslinkable gelatin-based precursor formulations for cell-laden DLP, with the broader aim of generating a versatile platform for soft tissue engineering rather than a formulation restricted to one tissue model. A bifunctional methacryloyl-norbornene gelatin (GelMANB) was developed to combine methacryloyl chain-growth polymerisation with norbornene-mediated thiol-ene crosslinking and was benchmarked against gelatin methacryloyl (GelMA). GelMANB formulations containing different thiolated crosslinkers were evaluated to determine the influence of crosslinking chemistry as well as polymer concentration on network formation and physico-chemical properties. Thiol-ene formulations enabled broad tuning of hydrogel stiffness and exhibited rapid photocrosslinking, while crosslinker selection further influenced swelling and tensile behaviour. Selected GelMANB/dithiothreitol (GelMANB/DTT) and GelMANB/thiolated gelatin (GelMANB/GelSH) formulations were subsequently processed via DLP alongside GelMA. Optimised exposure conditions enabled reproducible fabrication of porous scaffolds that retained dimensional stability under osmotic pressures relevant to several soft tissues. Following cell-laden printing, human foreskin fibroblasts remained viable after seven days, reaching 95.0{+/-}5.9% viability in GelMANB/DTT and 94.9{+/-}2.7% in GelMANB/GelSH, compared with 87.2{+/-}6.0% in GelMA. In 2-mm-thick hydrogel discs, GelMANB/GelSH supported the most sustained fibroblast elongation, reaching 30.9{+/-}6.3% elongated cells at day 7, although elongated cells were mainly confined to the outer surface layers. Porous scaffolds with 400 m struts and 1.3 mm pores reduced the characteristic hydrogel thickness and enhanced elongated morphology across all formulations, highlighting GelMANB as a modular platform for cell-laden soft tissue biofabrication.

bioengineering↗

Exploring the Impact of Volumetric Additive Manufacturing of Photo-crosslinkable Gelatin on Mesenchymal Stromal Cell Behavior and Differentiation

This study investigates photo-crosslinkable gelatin-based hydrogels - thiolated gelatin (GelSH) and gelatin norbornene (GelNB) - for volumetric additive manufacturing (VAM). GelSH was synthesized with degrees of thiol substitution (DS) of 39%, 54%, and 63%, and GelNB with a DS of 60% (with respect to primary amine content). These were combined into GelNB-GelSH photo-resins at 5, 7.5, and 10% (w/v) and crosslinked via thiol-ene chemistry. Physico-chemical analysis showed that increasing DS and polymer concentration reduced swelling and increased moduli. VAM enabled the fabrication of high-resolution 3D hydrogel constructs from optimized formulations, demonstrating the ability to encapsulate mesenchymal stromal cells (MSCs) within a mechanically tunable, cell-supportive hydrogel environment. Film-cast hydrogels, also with embedded MSCs, served as comparative controls. VAM-printed constructs exhibited significantly higher alkaline phosphatase activity and calcium deposition, indicating enhanced osteogenesis. In contrast, chondrogenic and adipogenic differentiation were more pronounced in film-cast samples, due to their lower crosslinking density and stiffness. These findings emphasize the importance of matrix mechanics in guiding stem cell differentiation and demonstrate the potential of VAM for producing complex, functional scaffolds for tissue engineering. This work supports further development of tunable gelatin-based bioresins for applications requiring lineage-specific differentiation, including those targeting softer tissue types. HighlightsO_LIVolumetric additive manufacturing (VAM) enables high-fidelity 3D hydrogel scaffolds. C_LIO_LIGelNB-GelSH bioresins support MSC encapsulation and differentiation. C_LIO_LIVAM scaffolds enhance osteogenesis, film-cast gels favor chondro- and adipogenesis. C_LIO_LIMechanical properties and crosslinking density regulate stem cell fate in hydrogels. C_LIO_LIThis study advances bioresin development for multi-lineage tissue engineering. C_LI O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=89 SRC="FIGDIR/small/638591v2_ufig1.gif" ALT="Figure 1"> View larger version (38K): org.highwire.dtl.DTLVardef@1e5265aorg.highwire.dtl.DTLVardef@13909bdorg.highwire.dtl.DTLVardef@1ae8d43org.highwire.dtl.DTLVardef@bc39f4_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗