Recent Advances in the Regenerative Approaches for Traumatic Spinal Cord Injury: Materials Perspective

ACS Biomater Sci Eng. 2020 Dec 14;6(12):6490-6509. doi: 10.1021/acsbiomaterials.0c01074. Epub 2020 Nov 16.

Abstract

Spinal cord injury (SCI) is a devastating health condition that may lead to permanent disabilities and death. Understanding the pathophysiological perspectives of traumatic SCI is essential to define mechanisms that can help in designing recovery strategies. Since central nervous system tissues are notorious for their deficient ability to heal, efforts have been made to identify solutions to aid in restoration of the spinal cord tissues and thus its function. The two main approaches proposed to address this issue are neuroprotection and neuro-regeneration. Neuroprotection involves administering drugs to restore the injured microenvironment to normal after SCI. As for the neuro-regeneration approach, it focuses on axonal sprouting for functional recovery of the injured neural tissues and damaged axons. Despite the progress made in the field, neural regeneration treatment after SCI is still unsatisfactory owing to the disorganized way of axonal growth and extension. Nanomedicine and tissue engineering are considered promising therapeutic approaches that enhance axonal growth and directionality through implanting or injecting of the biomaterial scaffolds. One of these recent approaches is nanofibrous scaffolds that are used to provide physical support to maintain directional axonal growth in the lesion site. Furthermore, these preferable tissue-engineered substrates can afford axonal regeneration by mimicking the extracellular matrix of the neural tissues in terms of biological, chemical, and architectural characteristics. In this review, we discuss the regenerative approach using nanofibrous scaffolds with a focus on their fabrication methods and their properties that define their functionality performed to heal the neural tissue efficiently.

Keywords: central nervous system (CNS); electrospinning; nanofibers; scaffolds; self-assembly peptides (SAPs); spinal cord injury (SCI).

Publication types

  • Review

MeSH terms

  • Biocompatible Materials
  • Humans
  • Nerve Regeneration
  • Spinal Cord Injuries* / therapy
  • Tissue Engineering

Substances

  • Biocompatible Materials