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Experimental Advances Towards Neural Regeneration from Induced Stem Cells to Direct In Vivo Reprogramming

机译:从诱导干细胞到直接体内重编程的神经再生的实验进展

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摘要

Neuronal loss is a common substrate of many neurological diseases that still lack effective treatments and highly burden lives of affected individuals. The discovery of self-renewing stem cells within the central nervous system (CNS) has opened the doors to the possibility of using the plasticity of CNS as a potential strategy for the development of regenerative therapies after injuries. The role of neural progenitor cells appears to be crucial, but insufficient in reparative processes after damage. In addition, the mechanisms that regulate these events are still largely unknown. Stem cell-based therapeutic approaches have primarily focused on the use of either induced pluripotent stem cells or induced neural stem cells as sources for cell transplantation. More recently, in vivo direct reprogramming of endogenous CNS cells into multipotent neural stem/progenitor cells has been proposed as an alternative strategy that could overcome the limits connected with both the invasiveness of exogenous cell transplantation and the technical issues of in vitro reprogramming (i.e., the time requested and the limited available amount of directly induced neuronal cells). In this review, we aim to highlight the recent studies on in vivo direct reprogramming, focusing on astrocytes conversion to neurons or to neural stem/precursors cells, in the perspective of future therapeutic purposes for neurological disorders.
机译:神经元丢失是许多神经系统疾病的常见底物,这些疾病仍然缺乏有效的治疗方法,并严重影响了受影响个体的生命。在中枢神经系统(CNS)中发现自我更新的干细胞,为将CNS的可塑性用作受伤后发展再生疗法的潜在策略打开了大门。神经祖细胞的作用似乎至关重要,但在受损后的修复过程中却不足。另外,调节这些事件的机制仍然是未知的。基于干细胞的治疗方法主要集中在使用诱导的多能干细胞或诱导的神经干细胞作为细胞移植来源。最近,有人提出将内源性CNS细胞体内直接重编程为多能神经干/祖细胞作为一种替代策略,可以克服与外源细胞移植的侵袭性和体外重编程的技术问题有关的限制(即,所需的时间以及直接诱导的神经元细胞的可用数量有限)。在这篇综述中,我们的目的是从神经疾病的未来治疗目的出发,着重强调有关体内直接重编程的最新研究,重点是星形胶质细胞向神经元或神经干/前体细胞的转化。

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