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Transplantation of stem cell-derived astrocytes for the treatment of amyotrophic lateral sclerosis and spinal cord injury

机译:干细胞来源星形胶质细胞的移植治疗肌萎缩性侧索硬化症和脊髓损伤

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摘要

Neglected for years, astrocytes are now recognized to fulfill and support many, if not all, homeostatic functions of the healthy central nervous system (CNS). During neurodegenerative diseases such as amyotrophic lateral sclerosis (ALS) and spinal cord injury (SCI), astrocytes in the vicinity of degenerating areas undergo both morphological and functional changes that might compromise their intrinsic properties. Evidence from human and animal studies show that deficient astrocyte functions or loss-of-astrocytes largely contribute to increased susceptibility to cell death for neurons, oligodendrocytes and axons during ALS and SCI disease progression. Despite exciting advances in experimental CNS repair, most of current approaches that are translated into clinical trials focus on the replacement or support of spinal neurons through stem cell transplantation, while none focus on the specific replacement of astroglial populations. Knowing the important functions carried out by astrocytes in the CNS, astrocyte replacement-based therapies might be a promising approach to alleviate overall astrocyte dysfunction, deliver neurotrophic support to degenerating spinal tissue and stimulate endogenous CNS repair abilities. Enclosed in this review, we gathered experimental evidence that argue in favor of astrocyte transplantation during ALS and SCI. Based on their intrinsic properties and according to the cell type transplanted, astrocyte precursors or stem cell-derived astrocytes promote axonal growth, support mechanisms and cells involved in myelination, are able to modulate the host immune response, deliver neurotrophic factors and provide protective molecules against oxidative or excitotoxic insults, amongst many possible benefits. Embryonic or adult stem cells can even be genetically engineered in order to deliver missing gene products and therefore maximize the chance of neuroprotection and functional recovery. However, before broad clinical translation, further preclinical data on safety, reliability and therapeutic efficiency should be collected. Although several technical challenges need to be overcome, we discuss the major hurdles that have already been met or solved by targeting the astrocyte population in experimental ALS and SCI models and we discuss avenues for future directions based on latest molecular findings regarding astrocyte biology.
机译:多年来被忽视的星形胶质细胞现在被认为可以履行和支持健康的中枢神经系统(CNS)的许多(甚至不是全部)稳态功能。在诸如肌萎缩性侧索硬化症(ALS)和脊髓损伤(SCI)等神经退行性疾病期间,退化区域附近的星形胶质细胞会发生形态和功能变化,这可能会损害其固有特性。人类和动物研究的证据表明,星形胶质细胞功能不足或星形胶质细胞丢失在很大程度上导致了ALS和SCI疾病发展过程中神经元,少突胶质细胞和轴突对细胞死亡的敏感性增加。尽管在中枢神经系统修复实验方面取得了令人兴奋的进展,但目前转化为临床试验的大多数方法都侧重于通过干细胞移植替代或支持脊神经元,而没有一种方法侧重于星形胶质细胞群体的特定替代。了解星形胶质细胞在中枢神经系统中所起的重要功能,基于星形胶质细胞替代的疗法可能是减轻总体星形胶质细胞功能障碍,为退化的脊髓组织提供神经营养支持并刺激内源性中枢神经系统修复能力的有前途的方法。随信附上,我们收集了实验证据,这些证据支持在ALS和SCI期间进行星形胶质细胞移植。根据其固有特性并根据所移植的细胞类型,星形胶质细胞前体或干细胞衍生的星形胶质细胞可促进轴突生长,支持机制和参与髓鞘形成的细胞,能够调节宿主的免疫反应,传递神经营养因子并提供保护分子氧化性或兴奋性毒性侮辱,其中包括许多可能的好处。胚胎或成体干细胞甚至可以进行基因工程改造,以提供缺失的基因产物,从而最大限度地提高神经保护和功能恢复的机会。但是,在进行广泛的临床翻译之前,应收集有关安全性,可靠性和治疗效率的更多临床前数据。尽管有几个技术挑战需要克服,但我们讨论了在实验性ALS和SCI模型中针对星形胶质细胞群体已经解决或解决的主要障碍,并根据有关星形胶质细胞生物学的最新分子发现讨论了未来的发展方向。

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