Sox2-mediated transdifferentiation of hAT-MSCs into induced neural progenitor-like cells for remyelination therapies

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-09-06 DOI:10.1016/j.tice.2024.102553
Hamed Shiri , Mohammad Javan
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Abstract

Mesenchymal stem cells (MSCs) are converted to neural cells using growth factors and chemicals. Although these neural cells are effective at modulating disease symptoms, they are less effective at replacing lost neural cells. Direct transdifferentiation seems to be a promising method for generating the required cells for regenerative medicine applications. Sox2 is a key transcription factor in neural progenitor (NP) fate determination and has been frequently used for transdifferentiating different cell types to NPs. Here, we demonstrated that the overexpression of a single transcription factor, Sox2, in human adipose tissue-derived mesenchymal stem cells (hAT-MSCs) led to the generation of induced NPs-like cells that were clonogenic, proliferative and passageable, and showed the potential to differentiate into three neural lineages. NPs are known as progenitors with the potential to differentiate into oligodendrocytes. In vivo, following transplantation into demyelinated adult mouse brains, they survived, differentiated and integrated into the adult brain while participating in the remyelination process and behavioral improvement. This report introduces a beneficial, low-cost and effective approach for generating NPs from an accessible adult source for autologous applications in treating neurodegenerative diseases, including remyelination therapies for multiple sclerosis and other demyelinating diseases.

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Sox2- 介导 hAT-MSCs 转分化为诱导神经祖细胞样细胞,用于再髓鞘化疗法
间充质干细胞利用生长因子和化学物质转化为神经细胞。虽然这些神经细胞能有效调节疾病症状,但在替代失去的神经细胞方面效果不佳。直接转分化似乎是产生再生医学应用所需细胞的一种有前途的方法。Sox2 是决定神经祖细胞(NP)命运的关键转录因子,经常被用于将不同类型的细胞转分化为 NP。在这里,我们证明了在人脂肪组织间充质干细胞(hAT-MSCs)中过表达单一转录因子Sox2可诱导产生NPs样细胞,这些细胞具有克隆性、增殖性和通过性,并显示出分化成三种神经系的潜力。众所周知,NPs 是具有分化成少突胶质细胞潜能的祖细胞。在体内,将 NPs 移植到脱髓鞘的成年小鼠大脑后,它们能够存活、分化并融入成年大脑,同时参与脱髓鞘过程并改善行为。本报告介绍了一种有益、低成本和有效的方法,可从可获得的成体来源中生成 NPs,用于治疗神经退行性疾病的自体应用,包括多发性硬化症和其他脱髓鞘疾病的再髓鞘化疗法。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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