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Caiado Decarli, M.

Publications and source records attributed to Caiado Decarli, M..

2 recordsLinked to original sources

Wave-inspired MEW scaffolds for enhanced ligament tissue regeneration

AO_SCPLOWBSTRACTC_SCPLOWLigament injuries remain a major clinical challenge due to the limited intrinsic healing capacity of these fibrous tissues. Here, we demonstrate the use of melt electrowriting (MEW) to fabricate poly({varepsilon}-caprolactone) (PCL) scaffolds with precisely engineered wave architectures that mimic the hierarchical organization and nonlinear mechanics of native ligaments. By tuning fiber geometry, we achieved scaffolds with distinct mechanical behaviors ranging from highly compliant to structurally resilient, enabling architecture-driven modulation of elastic modulus and fatigue response. Mechanical testing revealed that wave-patterned scaffolds dissipate energy efficiently and adapt structurally under cyclic loading, reproducing key features of ligament-like viscoelasticity. When cultured with human anterior cruciate ligament (ACL) cells, the scaffolds supported adhesion, proliferation, and spatially organized alignment, together with the expression of ligament-associated markers. The results demonstrate that MEW scaffolds provide a favorable environment for ligament cell adhesion and matrix synthesis, while highlighting the strong influence of geometry on cell organization and early matrix production. Overall, this study establishes wave-based MEW architectures as a versatile platform to guide ligament tissue formation.

bioengineering↗

Embedding bioprinting of low viscous, photopolymerizable blood-based bioinks in a self-healing transparent supporting bath

Protein-based hydrogels have great potential to be used as bioinks for biofabrication-driven tissue regeneration strategies due to their innate bioactivity. Nevertheless, their use as bioinks in conventional 3D bioprinting is impaired due to their intrinsic low viscosity. Using embedding bioprinting, a liquid bioink is printed whithin a support that physically holds the patterned filament. Inspired by the recognized microencapsulation technique complex coacervation, we introduce crystal self-healing embedding bioprinting (CLADDING) based on a highly transparent crystal supporting bath. The suitability of distinct classes of gelatins was evaluated (i.e., molecular weight distribution, isoelectric point and ionic content), as well as the formation of gelatin-gum arabic microparticles as a function of pH, temperature, solvent and mass ratios. Characterizing and controlling this parametric window resulted in high yields of support bath with ideal self-healing properties for interaction with protein-based bioinks during bioprinting. This support bath achieved transparency, which boosted light permeation within the bath. CLADDING bioprinted constructs fully composed of platelet lysates encapsulating a co-culture of human mesenchymal stem cells and endothelial cells were obtained, demonstrating high-dense cellular network with excellent cell viability and stability over a month. CLADDING broadens the spectrum of photocrosslinkable materials with extremely low viscosity that can now be bioprinted with sensitive cells using embedding bioprinting without any additional support.

bioengineering↗