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小胶质细胞 cGAS 驱动帕金森病 MPTP 小鼠模型的神经炎症。

Microglial cGAS drives neuroinflammation in the MPTP mouse models of Parkinson's disease.

机构信息

Department of Immunology, State Key Laboratory of Reproductive Medicine, Jiangsu Key Lab of Cancer Biomarkers, Prevention and Treatment, Collaborative Innovation Center for Personalized Cancer Medicine, Gusu School, Nanjing Medical University, Nanjing, China.

Department of Pharmacology, Nanjing University of Chinese Medicine, Nanjing, China.

出版信息

CNS Neurosci Ther. 2023 Jul;29(7):2018-2035. doi: 10.1111/cns.14157. Epub 2023 Mar 13.

Abstract

BACKGROUND

Neuroinflammation has been widely accepted as a cause of the degenerative process. Increasing interest has been devoted to developing intervening therapeutics for preventing neuroinflammation in Parkinson's disease (PD). It is well known that virus infections, including DNA viruses, are associated with an increased risk of PD. In addition, damaged or dying dopaminergic neurons can release dsDNA during PD progression. However, the role of cGAS, a cytosolic dsDNA sensor, in PD progression remains unclear.

METHODS

Adult male wild-type mice and age-matched male cGAS knockout (cGas ) mice were treated with MPTP to induce neurotoxic PD model, and then behavioral tests, immunohistochemistry, and ELISA were conducted to compare disease phenotype. Chimeric mice were reconstituted to explore the effects of cGAS deficiency in peripheral immune cells or CNS resident cells on MPTP-induced toxicity. RNA sequencing was used to dissect the mechanistic role of microglial cGAS in MPTP-induced toxicity. cGAS inhibitor administration was conducted to study whether GAS may serve as a therapeutic target.

RESULTS

We observed that the cGAS-STING pathway was activated during neuroinflammation in MPTP mouse models of PD. cGAS deficiency in microglia, but not peripheral immune cells, controlled neuroinflammation and neurotoxicity induced by MPTP. Mechanistically, microglial cGAS ablation alleviated the neuronal dysfunction and inflammatory response in astrocytes and microglia by inhibiting antiviral inflammatory signaling. Additionally, the administration of cGAS inhibitors conferred the mice neuroprotection during MPTP exposure.

CONCLUSIONS

Collectively, these findings demonstrate microglial cGAS promote neuroinflammation and neurodegeneration during the progression of MPTP-induced PD mouse models and suggest cGAS may serve as a therapeutic target for PD patients.

LIMITATIONS OF THE STUDY

Although we demonstrated that cGAS promotes the progression of MPTP-induced PD, this study has limitations. We identified that cGAS in microglia accelerate disease progression of PD by using bone marrow chimeric experiments and analyzing cGAS expression in CNS cells, but evidence would be more straightforward if conditional knockout mice were used. This study contributed to the knowledge of the role of the cGAS pathway in PD pathogenesis; nevertheless, trying more PD animal models in the future will help us to understand the disease progression deeper and explore possible treatments.

摘要

背景

神经炎症已被广泛认为是退行性过程的原因。人们越来越关注开发干预疗法来预防帕金森病(PD)中的神经炎症。众所周知,病毒感染,包括 DNA 病毒,与 PD 的风险增加有关。此外,在 PD 进展过程中,受损或死亡的多巴胺能神经元会释放双链 DNA(dsDNA)。然而,细胞质双链 DNA 传感器 cGAS 在 PD 进展中的作用尚不清楚。

方法

成年雄性野生型小鼠和同龄雄性 cGAS 敲除(cGas )小鼠用 MPTP 处理以诱导神经毒性 PD 模型,然后进行行为测试、免疫组织化学和 ELISA 以比较疾病表型。嵌合小鼠被重建以探索外周免疫细胞或中枢神经系统固有细胞中 cGAS 缺乏对 MPTP 诱导的毒性的影响。使用 RNA 测序来剖析小胶质细胞 cGAS 在 MPTP 诱导的毒性中的机制作用。进行 cGAS 抑制剂给药以研究 GAS 是否可作为治疗靶标。

结果

我们观察到,在 PD 的 MPTP 小鼠模型的神经炎症过程中,cGAS-STING 途径被激活。小胶质细胞中的 cGAS 缺乏控制了 MPTP 诱导的神经炎症和神经毒性。机制上,小胶质细胞 cGAS 消融通过抑制抗病毒炎症信号来减轻星形胶质细胞和小胶质细胞中的神经元功能障碍和炎症反应。此外,在 MPTP 暴露期间给予 cGAS 抑制剂可赋予小鼠神经保护作用。

结论

总的来说,这些发现表明,小胶质细胞 cGAS 在 MPTP 诱导的 PD 小鼠模型的进展过程中促进神经炎症和神经退行性变,并提示 cGAS 可能作为 PD 患者的治疗靶标。

研究的局限性

尽管我们表明 cGAS 促进了 MPTP 诱导的 PD 的进展,但这项研究存在局限性。我们通过骨髓嵌合实验和分析 CNS 细胞中的 cGAS 表达,证明了小胶质细胞中的 cGAS 加速了 PD 的疾病进展,但如果使用条件性敲除小鼠,证据将更加直接。这项研究有助于了解 cGAS 途径在 PD 发病机制中的作用;然而,在未来尝试更多的 PD 动物模型将帮助我们更深入地了解疾病进展,并探索可能的治疗方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/953d/10324349/8948e020ec7f/CNS-29-2018-g002.jpg

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