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人诱导多能干细胞衍生的星形胶质细胞通过捐赠功能性线粒体来挽救鱼藤酮诱导的体外线粒体功能障碍和多巴胺能神经退行性变。

Human iPSCs derived astrocytes rescue rotenone-induced mitochondrial dysfunction and dopaminergic neurodegeneration in vitro by donating functional mitochondria.

机构信息

Department of Neurology and Suzhou Clinical Research of Neurological Diseases, The Second Affiliated Hospital of Soochow University, Suzhou, 215004, China.

Department of Biochemistry and Molecular Medicine, University of California Davis, Sacramento, CA, 95817, USA.

出版信息

Transl Neurodegener. 2020 Apr 24;9(1):13. doi: 10.1186/s40035-020-00190-6.

Abstract

BACKGROUND

Parkinson's disease (PD) is one of the neurodegeneration diseases characterized by the gradual loss of dopaminergic (DA) neurons in the substantia nigra region of the brain. Substantial evidence indicates that at the cellular level mitochondrial dysfunction is a key factor leading to pathological features such as neuronal death and accumulation of misfolded α-synuclein aggregations. Autologous transplantation of healthy purified mitochondria has shown to attenuate phenotypes in vitro and in vivo models of PD. However, there are significant technical difficulties in obtaining large amounts of purified mitochondria with normal function. In addition, the half-life of mitochondria varies between days to a few weeks. Thus, identifying a continuous source of healthy mitochondria via intercellular mitochondrial transfer is an attractive option for therapeutic purposes. In this study, we asked whether iPSCs derived astrocytes can serve as a donor to provide functional mitochondria and rescue injured DA neurons after rotenone exposure in an in vitro model of PD.

METHODS

We generated DA neurons and astrocytes from human iPSCs and hESCs. We established an astroglial-neuronal co-culture system to investigate the intercellular mitochondrial transfer, as well as the neuroprotective effect of mitochondrial transfer. We employed immunocytochemistry and FACS analysis to track mitochondria.

RESULTS

We showed evidence that iPSCs-derived astrocytes or astrocytic conditioned media (ACM) can rescue DA neurons degeneration via intercellular mitochondrial transfer in a rotenone induced in vitro PD model. Specifically, we showed that iPSCs-derived astrocytes from health spontaneously release functional mitochondria into the media. Mito-Tracker Green tagged astrocytic mitochondria were detected in the ACM and were shown to be internalized by the injured neurons via a phospho-p38 depended pathway. Transferred mitochondria were able to significantly reverse DA neurodegeneration and axonal pruning following exposure to rotenone. When rotenone injured neurons were cultured in presence of ACM depleted of mitochondria (by ultrafiltration), the neuroprotective effects were abolished.

CONCLUSIONS

Our studies provide the proof of principle that iPSCs-derived astrocytes can act as mitochondria donor to the injured DA neurons and attenuate pathology. Using iPSCs derived astrocytes as a donor can provide a novel strategy that can be further developed for cellular therapy for PD.

摘要

背景

帕金森病(PD)是一种神经退行性疾病,其特征是大脑黑质区域的多巴胺能(DA)神经元逐渐丧失。大量证据表明,在细胞水平上,线粒体功能障碍是导致神经元死亡和错误折叠的α-突触核蛋白聚集物积累等病理特征的关键因素。自体移植健康纯化的线粒体已被证明可减轻 PD 体外和体内模型的表型。然而,获得具有正常功能的大量纯化线粒体存在重大技术困难。此外,线粒体的半衰期在几天到几周之间变化。因此,通过细胞间线粒体转移鉴定健康线粒体的连续来源是治疗目的的一个有吸引力的选择。在这项研究中,我们询问是否可以从 iPSCs 衍生的星形胶质细胞作为供体,在 PD 的体外模型中提供功能性线粒体并挽救鱼藤酮暴露后的损伤 DA 神经元。

方法

我们从人 iPSCs 和 hESCs 中生成 DA 神经元和星形胶质细胞。我们建立了星形胶质细胞-神经元共培养系统,以研究细胞间线粒体转移以及线粒体转移的神经保护作用。我们使用免疫细胞化学和 FACS 分析来追踪线粒体。

结果

我们证明了 iPSCs 衍生的星形胶质细胞或星形胶质细胞条件培养基(ACM)可以通过细胞间线粒体转移挽救鱼藤酮诱导的体外 PD 模型中的 DA 神经元变性。具体来说,我们表明健康的 iPSCs 衍生星形胶质细胞自发地将功能性线粒体释放到培养基中。在 ACM 中检测到 Mito-Tracker Green 标记的星形胶质细胞线粒体,并通过磷酸化 p38 依赖途径显示其被损伤神经元内化。转移的线粒体能够显著逆转鱼藤酮暴露后 DA 神经变性和轴突修剪。当在缺乏线粒体(通过超滤)的 ACM 中培养鱼藤酮损伤的神经元时,神经保护作用被消除。

结论

我们的研究提供了原理证明,即 iPSCs 衍生的星形胶质细胞可以作为供体向损伤的 DA 神经元提供线粒体,并减轻病理学。使用 iPSCs 衍生的星形胶质细胞作为供体可以提供一种新的策略,可进一步开发用于 PD 的细胞治疗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e12c/7325238/3d471cf3fb04/40035_2020_190_Fig1_HTML.jpg

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