Publications by authors named "F Marga"

Article Synopsis
  • Ruptured nerves lead to serious quality-of-life issues, and the usual repair method involves using a patient's own tissue, which can have complications like infection.
  • Researchers developed a new method to create fully biological grafts made of cells and their secreted materials, using bioprinting technology.
  • Tests on rat models show that these biofabricated grafts promote nerve regeneration similarly to traditional autologous grafts and may provide a viable alternative for nerve repair.
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Tissue engineering is emerging as a possible alternative to methods aimed at alleviating the growing demand for replacement tissues and organs. A major pillar of most tissue engineering approaches is the scaffold, a biocompatible network of synthetic or natural polymers, which serves as an extracellular matrix mimic for cells. When the scaffold is seeded with cells it is supposed to provide the appropriate biomechanical and biochemical conditions for cell proliferation and eventual tissue formation.

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Biofabrication of living structures with desired topology and functionality requires the interdisciplinary effort of practitioners of the physical, life and engineering sciences. Such efforts are being undertaken in many laboratories around the world. Numerous approaches are pursued, such as those based on the use of natural or artificial scaffolds, decellularized cadaveric extracellular matrices and, most lately, bioprinting.

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Current limitations of exogenous scaffolds or extracellular matrix based materials have underlined the need for alternative tissue-engineering solutions. Scaffolds may elicit adverse host responses and interfere with direct cell-cell interaction, as well as assembly and alignment of cell-produced ECM. Thus, fabrication techniques for production of scaffold-free engineered tissue constructs have recently emerged.

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