J. Crayton Pruitt Family Department of Biomedical Engineering, University of Florida, Gainesville, FL, USA.
J. Crayton Pruitt Family Department of Biomedical Engineering, University of Florida, Gainesville, FL, USA.
Adv Drug Deliv Rev. 2019 Aug;148:38-59. doi: 10.1016/j.addr.2018.12.011. Epub 2018 Dec 22.
Spinal cord injury (SCI) is a devastating and complicated condition with no cure available. The initial mechanical trauma is followed by a secondary injury characterized by inflammatory cell infiltration and inhibitory glial scar formation. Due to the limitations posed by the blood-spinal cord barrier, systemic delivery of therapeutics is challenging. Recent development of various nanoscale strategies provides exciting and promising new means of treating SCI by crossing the blood-spinal cord barrier and delivering therapeutics. As such, we discuss different nanomaterial fabrication methods and provide an overview of recent studies where nanomaterials were developed to modulate inflammatory signals, target inhibitory factors in the lesion, and promote axonal regeneration after SCI. We also review emerging areas of research such as optogenetics, immunotherapy and CRISPR-mediated genome editing where nanomaterials can provide synergistic effects in developing novel SCI therapy regimens, as well as current efforts and barriers to clinical translation of nanomaterials.
脊髓损伤(SCI)是一种毁灭性的复杂疾病,目前尚无治愈方法。最初的机械创伤之后是继发性损伤,其特征是炎症细胞浸润和抑制性神经胶质瘢痕形成。由于血脊髓屏障的限制,全身性输送治疗药物具有挑战性。各种纳米级策略的最新发展为通过血脊髓屏障输送治疗药物提供了令人兴奋和有前途的新方法,用于治疗 SCI。因此,我们讨论了不同的纳米材料制造方法,并概述了最近的研究,这些研究开发了纳米材料来调节炎症信号、靶向病变中的抑制因子,并促进 SCI 后的轴突再生。我们还回顾了新兴的研究领域,如光遗传学、免疫疗法和 CRISPR 介导的基因组编辑,纳米材料在开发新的 SCI 治疗方案中可以产生协同作用,以及纳米材料向临床转化的当前努力和障碍。