Advances in Gelatin Bioinks to Optimize Bioprinted Cell Functions
Достижения в разработке желатиновых биоиноков для оптимизации функций биопечатных клеток
2023-02-19
SCID: 54.1/3xz8hm9z
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3D bioprintingcell-matrix interactionsdynamic extracellular matrixgelatin bioinksreversible cross-linking
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Abstract (AI)
Gelatin is a widely utilized bioprinting biomaterial due to its cell-adhesive and enzymatically cleavable properties, which improve cell adhesion and growth. Gelatin is often covalently cross-linked to stabilize bioprinted structures, yet the covalently cross-linked matrix is unable to recapitulate the dynamic microenvironment of the natural extracellular matrix (ECM), thereby limiting the functions of bioprinted cells. To some extent, a double network bioink can provide a more ECM-mimetic, bioprinted niche for cell growth. More recently, gelatin matrices are being designed using reversible cross-linking methods that can emulate the dynamic mechanical properties of the ECM. This review analyzes the progress in developing gelatin bioink formulations for 3D cell culture, and critically analyzes the bioprinting and cross-linking techniques, with a focus on strategies to optimize the functions of bioprinted cells. This review discusses new cross-linking chemistries that recapitulate the viscoelastic, stress-relaxing microenvironment of the ECM, and enable advanced cell functions, yet are less explored in engineering the gelatin bioink. Finally, this work presents the perspective on the areas of future research and argues that the next generation of gelatin bioinks should be designed by considering cell-matrix interactions, and bioprinted constructs should be validated against currently established 3D cell culture standards to achieve improved therapeutic outcomes.
Key Findings
1
Covalent cross-linking stabilizes gelatin bioinks but produces static matrices that inadequately reproduce the dynamic extracellular matrix microenvironment.
2
Double-network bioinks and reversible cross-linking methods can create more ECM-mimetic niches with improved mechanical dynamics for cell growth.
3
Emerging cross-linking chemistries that reproduce ECM viscoelasticity and stress relaxation may enable advanced bioprinted cell functions, but remain relatively underexplored.
4
Future gelatin bioinks should explicitly account for cell–matrix interactions and validate constructs against established 3D culture standards to improve therapeutic outcomes.
5
Gelatin supports bioprinted cell adhesion and growth through its cell-adhesive and enzymatically cleavable properties.
Research Object
gelatin bioink formulations and bioprinted gelatin-based 3D cell-culture constructs
Research Subject
cross-linking strategies and matrix properties that optimize the functions of bioprinted cells by recapitulating the dynamic, viscoelastic, stress-relaxing microenvironment of the natural extracellular matrix
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2023-02-19
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