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Biofabrication for neural tissue engineering applications.

L Papadimitriou1, P Manganas1, A Ranella1

  • 1Institute of Electronic Structure and Laser (IESL), Foundation for Research and Technology-Hellas (FORTH), Heraklion, 71003, Greece.

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Summary

Neural tissue engineering (NTE) uses biomaterial scaffolds to repair nervous system injuries. This review covers advanced scaffolds and lab-on-a-chip systems for neural repair and disease modeling.

Keywords:
Amniotic membraneBiofabricationCentral nervous systemLab-on-a-chipNeural regenerationNeural tissue engineeringPeripheral nervous systemScaffolds

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Area of Science:

  • Biomaterials Science
  • Regenerative Medicine
  • Neuroscience

Background:

  • Nervous tissue complexity presents challenges for traditional therapies.
  • Neural tissue engineering (NTE) offers alternative approaches using biomaterial scaffolds.
  • Restoring central and peripheral nervous system function remains a significant challenge.

Purpose of the Study:

  • To review biomaterial scaffolds and lab-on-a-chip systems for NTE.
  • To highlight advances, limitations, and future prospects in neural tissue engineering.
  • To discuss the fabrication of scaffolds with controlled topography and biochemical cues.

Main Methods:

  • Review of synthetic approaches and 3D fabrication methods for NTE scaffolds.
  • Exploration of soft lithography, self-assembly, subtractive, and additive manufacturing.
  • Analysis of lab-on-a-chip systems for in vitro neurological disease modeling.

Main Results:

  • Development of diverse fabrication methods for NTE scaffolds.
  • Demonstration of NTE's potential for in vitro neurological disease modeling.
  • Identification of challenges in creating precisely controlled, tunable scaffolds.

Conclusions:

  • NTE strategies show promise for neurological disorder and injury recovery.
  • Advanced scaffolds and lab-on-a-chip systems are crucial for NTE progress.
  • Further research is needed to overcome limitations and explore future possibilities in NTE.