GSDME-mediated pyroptosis in microglia exacerbates demyelination and neuroinflammation in multiple sclerosis: insights from humans and cuprizone-induced demyelination model mice

IF 13.7 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Danjie Wang, Tongtong Zhang, Qi Shao, Xinyi Wu, Xiaoqiang Zhao, Hongyu Zhang, Yumeng Wang, Jingxian Sun, Xuechun Chang, Keying Zhu, Shuai Wu, Li Cao, Wankun Chen, Jun Wang
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Abstract

Demyelination, a hallmark of multiple sclerosis (MS), disrupts neural conduction due to myelin sheath degradation. Microglia-mediated inflammation plays a pivotal role in this process, with emerging evidence implicating gasdermin E (GSDME) in neuroinflammation and neurodegeneration. However, the specific role of GSDME in MS remains unclear. Here, we investigated the involvement of GSDME in MS using brain tissues from MS patients and cuprizone (CPZ)-induced demyelination model mice. We observed elevated GSDME expression in the central nervous system (CNS) lesions of MS patients, with pronounced GSDME cleavage in microglia at injury sites. Genetic knockout of Gsdme alleviated CPZ-induced motor deficits, demyelination, and neuroinflammation. Furthermore, caspase-3 inhibition significantly suppressed GSDME activation, resulting in reduced demyelination, motor coordination impairment, and neuroinflammation. In an experimental autoimmune encephalomyelitis (EAE) model, caspase-3/GSDME-mediated microglial pyroptosis critically mediated the progression of neuroinflammation and white matter demyelination. Transcriptome sequencing revealed that GSDME regulated the expression of genes related to disease-associated microglia (DAMs) and impaired microglial autophagy, a process critical for myelin debris clearance. Gsdme knockout downregulated the expression of genes associated with DAMs and CPZ-induced microglia-driven demyelination while increasing the expression of remyelination-related genes (Cybb and Cd74). In vitro, GSDME suppression promoted microglial autophagy and myelin debris clearance. Collectively, our findings highlight GSDME-mediated pyroptosis as a key driver of demyelination and neuroinflammation in MS, suggesting novel therapeutic targets for neuroinflammatory disorders.

Abstract Image

脱髓鞘,多发性硬化症(MS)的标志,破坏神经传导由于髓鞘退化。小胶质细胞介导的炎症在这一过程中起着关键作用,新出现的证据表明气真皮蛋白E (GSDME)参与神经炎症和神经变性。然而,GSDME在MS中的具体作用尚不清楚。在这里,我们利用MS患者和铜吡嗪(CPZ)诱导脱髓鞘模型小鼠的脑组织来研究GSDME在MS中的作用。我们观察到GSDME在MS患者中枢神经系统(CNS)病变中的表达升高,损伤部位的小胶质细胞中有明显的GSDME切割。基因敲除Gsdme可减轻cpz诱导的运动缺陷、脱髓鞘和神经炎症。此外,caspase-3抑制显著抑制GSDME激活,导致脱髓鞘减少、运动协调障碍和神经炎症。在实验性自身免疫性脑脊髓炎(EAE)模型中,caspase-3/ gsdme介导的小胶质细胞焦亡严重介导神经炎症和白质脱髓鞘的进展。转录组测序显示,GSDME调节与疾病相关的小胶质细胞(dam)和受损的小胶质细胞自噬相关的基因表达,这是髓磷脂碎片清除的关键过程。Gsdme敲除下调了与dam和cpz诱导的小胶质细胞驱动脱髓鞘相关基因的表达,同时增加了髓鞘再生相关基因的表达(Cybb和Cd74)。在体外,抑制GSDME可促进小胶质细胞自噬和髓磷脂碎片清除。总之,我们的研究结果强调了gsdme介导的焦亡是MS中脱髓鞘和神经炎症的关键驱动因素,为神经炎症疾病提供了新的治疗靶点。
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来源期刊
Cell Death and Differentiation
Cell Death and Differentiation 生物-生化与分子生物学
CiteScore
24.70
自引率
1.60%
发文量
181
审稿时长
3 months
期刊介绍: Mission, vision and values of Cell Death & Differentiation: To devote itself to scientific excellence in the field of cell biology, molecular biology, and biochemistry of cell death and disease. To provide a unified forum for scientists and clinical researchers It is committed to the rapid publication of high quality original papers relating to these subjects, together with topical, usually solicited, reviews, meeting reports, editorial correspondence and occasional commentaries on controversial and scientifically informative issues.
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