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The resultant degradable biosynthetic hydrogels hold great promise as matrices for tissue engineering applications.
This finding reinforces the need to fabricate bioengineered matrices that mimic living tissue matrices for tissue regeneration therapy.
Supercritical (SC) carbon dioxide (CO2) drying has shown potential interest on the production of dry decellularized extracellular matrices for tissue engineering.
Hydrogels are widely used as provisional matrices for tissue engineering and regenerative medicine, showing also great promise as platforms for 3D cell culture.
Hydrogels have been widely investigated as provisional matrices for tissue engineering and regenerative medicine, namely, as analogs of the natural extracellular matrix (ECM).
This research provides evidence that MDMs on decellularized matrices may not be stimulated towards an activated, inflammatory phenotype, supporting the potential of decellularized matrices for tissue engineering.
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Macroporous biodegradable cell carriers (scaffolds) provide the three-dimensional matrix for tissue formation in vitro.
Electrospinning is an effective means to generate nano- to micro-scale polymer fibers resembling native extracellular matrix for tissue engineering.
Biomaterials 2003; 24: 401–16; Altman GH, Horan RL, Lu HH, Moreau J, Martin I, Richmond JC, et al. Silk matrix for tissue engineered anterior cruciate ligaments.
Chitosan incorporated into a support matrix for tissue engineering or bone repair increases the rate of cell regeneration.
The spun micro/nanofibers are expected to be used in the native extracellular matrix for tissue engineering.
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