Skop Nolan B, Calderon Frances, Cho Cheul H, Gandhi Chirag D, Levison Steven W
Department of Neurology & Neurosciences, Rutgers University-New Jersey Medical School, NJMS-Cancer Center, H-1226, 205 South Orange Ave., Newark, NJ 07103 USA ; Department of Biomedical Engineering, New Jersey Institute of Technology, Newark, NJ 07102 USA.
Department of Neurology & Neurosciences, Rutgers University-New Jersey Medical School, NJMS-Cancer Center, H-1226, 205 South Orange Ave., Newark, NJ 07103 USA.
Mol Cell Ther. 2014 Jul 1;2:19. doi: 10.1186/2052-8426-2-19. eCollection 2014.
Progress is being made in developing neuroprotective strategies for traumatic brain injuries; however, there will never be a therapy that will fully preserve neurons that are injured from moderate to severe head injuries. Therefore, to restore neurological function, regenerative strategies will be required. Given the limited regenerative capacity of the resident neural precursors of the CNS, many investigators have evaluated the regenerative potential of transplanted precursors. Unfortunately, these precursors do not thrive when engrafted without a biomaterial scaffold. In this article we review the types of natural and synthetic materials that are being used in brain tissue engineering applications for traumatic brain injury and stroke. We also analyze modifications of the scaffolds including immobilizing drugs, growth factors and extracellular matrix molecules to improve CNS regeneration and functional recovery. We conclude with a discussion of some of the challenges that remain to be solved towards repairing and regenerating the brain.
在开发创伤性脑损伤的神经保护策略方面正在取得进展;然而,永远不会有一种疗法能完全保护因中度至重度头部损伤而受损的神经元。因此,为了恢复神经功能,将需要再生策略。鉴于中枢神经系统内源性神经前体细胞的再生能力有限,许多研究人员评估了移植前体细胞的再生潜力。不幸的是,这些前体细胞在没有生物材料支架的情况下移植时无法茁壮成长。在本文中,我们综述了用于创伤性脑损伤和中风的脑组织工程应用中的天然和合成材料的类型。我们还分析了支架的修饰,包括固定药物、生长因子和细胞外基质分子,以改善中枢神经系统的再生和功能恢复。我们最后讨论了在修复和再生大脑方面仍有待解决的一些挑战。