神经炎症
小胶质细胞
神经退行性变
黑质
免疫系统
生物
炎症
神经科学
T细胞
细胞生物学
免疫学
多巴胺能
医学
疾病
多巴胺
病理
作者
Simone Bido,Melania Nannoni,Sharon Muggeo,Diana Gambarè,G. Ruffini,Edoardo Bellini,Laura Passeri,Silvia Iaia,Mirko Luoni,M. Provinciali,Serena Giannelli,Francesca Giannese,Dejan Lazarević,Silvia Gregori,Vania Broccoli
标识
DOI:10.1126/scitranslmed.adm8563
摘要
Neuroinflammation plays a key role in exacerbating dopaminergic neuron (DAN) loss in Parkinson’s disease (PD). However, it remains unresolved how to effectively normalize this immune response given the complex interplay between the innate and adaptive immune responses occurring within a scarcely accessible organ like the brain. In this study, we uncovered a consistent correlation between neuroinflammation, brain parenchymal lymphocytes, and DAN loss among several commonly used mouse models of PD generated by a variety of pathological triggers. We validated a viral therapeutic approach for the microglia-specific expression of interleukin 10 (IL-10) to selectively mitigate the excessive inflammatory response. We found that this approach induced a local nigral IL-10 release that alleviated DAN loss in mice overexpressing the human SNCA gene in the substantia nigra. Single-cell transcriptomics revealed that IL-10 induced the emergence of a molecularly distinct microglial cell state, enriched in markers of cell activation with enhanced expression of prophagocytic pathways. IL-10 promoted microglial phagocytotic and clearance activities in vitro and reduced αSYN aggregate burden in the nigral area in mice overexpressing SNCA . Furthermore, IL-10 stimulated the differentiation of CD4 + T lymphocytes into active T regulatory cells and promoted inhibitory characteristics in CD8 + T cells. In summary, our results show that local and microglia-specific IL-10 transduction elicited strong immunomodulation in the nigral tissue with enhanced suppression of lymphocyte toxicity that was associated with DAN survival. These results offer insights into the therapeutic benefits of IL-10 and showcase a promising gene delivery approach that could minimize undesired side effects.
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