Xinghua Zhao, Mengtian Zhang, WenZheng Zou, Chenxiao Li, Shukui Zhang, Yuqing Lv, Libo Su, Fen Ji, Jianwei Jiao, Yufei Gao
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引用次数: 0
摘要
星形胶质细胞对中枢神经系统(CNS)的发育和功能至关重要,其分化受到组蛋白修饰等表观遗传机制的严格控制。Zeste Homologue 2的增强子(Enhancer of Zeste Homologue 2, EZH2)是一种组蛋白甲基转移酶,在抑制基因表达中起重要作用。然而,EZH2在星形胶质细胞早期形态发生中的作用尚不清楚。利用星形胶质细胞特异性Ezh2敲除(cKO)小鼠模型,我们研究了Ezh2缺失对星形胶质细胞形态发生、血脑屏障(BBB)完整性和神经发育的影响。EZH2缺失导致胶质纤维酸性蛋白(GFAP)表达增加,星形胶质细胞形态改变,星形胶质细胞终足在血管上的覆盖减少,损害血脑屏障的完整性。血管异常,以血管密度增加和血管直径变小为特征,反映了烟雾病的代偿性变化。rna测序和ChIP-seq发现Ddn是Ezh2cKO星形胶质细胞中一个关键的上调基因,通过MAPK/ERK通路影响细胞骨架的变化。行为分析揭示了类似自闭症的特征,比如声音减少,但没有明显的类似焦虑的行为。这些发现强调EZH2是星形胶质细胞功能的关键调节因子,其破坏会导致神经发育障碍。这项研究为星形胶质细胞分化的分子途径提供了新的见解,并表明EZH2是治疗胶质瘤和其他中枢神经系统疾病的有希望的靶点。
Ezh2 Regulates Early Astrocyte Morphogenesis and Influences the Coverage of Astrocytic Endfeet on the Vasculature.
Astrocytes are crucial for central nervous system (CNS) development and function, with their differentiation being stringently controlled by epigenetic mechanisms, such as histone modifications. Enhancer of Zeste Homologue 2 (EZH2), a histone methyltransferase, is essential for the suppression of gene expression. However, the role of EZH2 in astrocyte early morphogenesis has remained unclear. Using an astrocyte-specific Ezh2 knockout (cKO) mouse model, we examined the effects of EZH2 deletion on astrocyte morphogenesis, blood-brain barrier (BBB) integrity and neurodevelopment. Loss of EZH2 led to increased glial fibrillary acidic protein (GFAP) expression, altered astrocyte morphology and reduced coverage of astrocytic endfeet on blood vessels, compromising BBB integrity. Vascular abnormalities, characterised by increased vascular density and smaller vessel diameter, mirrored compensatory changes seen in moyamoya disease. RNA-sequencing and ChIP-seq identified Ddn as a key upregulated gene in Ezh2cKO astrocytes, influencing cytoskeletal changes via the MAPK/ERK pathway. Behavioural analysis revealed autism-like traits, such as reduced vocalisations, without significant anxiety-like behaviour. These findings highlight EZH2 as a critical regulator of astrocyte function, with its disruption contributing to neurodevelopmental disorders. This study provides novel insights into the molecular pathways governing astrocyte differentiation and suggests EZH2 as a promising therapeutic target for gliomas and other CNS disorders.
期刊介绍:
Cell Proliferation
Focus:
Devoted to studies into all aspects of cell proliferation and differentiation.
Covers normal and abnormal states.
Explores control systems and mechanisms at various levels: inter- and intracellular, molecular, and genetic.
Investigates modification by and interactions with chemical and physical agents.
Includes mathematical modeling and the development of new techniques.
Publication Content:
Original research papers
Invited review articles
Book reviews
Letters commenting on previously published papers and/or topics of general interest
By organizing the information in this manner, readers can quickly grasp the scope, focus, and publication content of Cell Proliferation.