表观遗传学
生物
细胞生物学
神经发生的表观遗传调控
原癌基因蛋白质c-myc
基因表达
表达式(计算机科学)
基因表达调控
组蛋白
细胞分化
DNA甲基化
染色质
遗传学
后生
癌症研究
转录因子
基因
作者
Wen Gu,Xun Wang,Ashley Solmonson,Ling Cai,Yi Xiao,Alpaslan Tasdogan,Jordan Franklin,Yuannyu Zhang,Hua Zhang,Aundrea K. Westfall,Ashley Rowe,H S Trivedi,Brandon Faubert,Zheng Wu,Jessica Sudderth,Lauren G. Zacharias,Bushra Afroze,Ilya Bezprozvanny,Sunil Sudarshan,Feng Cai
摘要
High levels of l- and d-2-hydroxyglutarate (2HG), the reduced forms of α-ketoglutarate (αKG), are implicated in neurodevelopmental disorders and cancer by modulating αKG-dependent dioxygenases involved in histone, DNA, and RNA demethylation. L-2HG dehydrogenase (L2HGDH) deficiency, a rare autosomal recessive inborn error of metabolism associated with systemic L-2HG elevation, causes progressive neurological disability and increased brain tumor risk of unclear mechanism. Using an isogenic, patient-derived induced pluripotent stem cell system, we examined the impact of L2HGDH deficiency on neural progenitor cell (NPC) function and neuronal differentiation. L2HGDH deficiency caused L-2HG accumulation, NPC hyperproliferation, increased clonogenicity, and defective neuronal differentiation in 2D cultures and cortical spheroids. Editing the L2HGDH locus to WT reversed these effects. Inhibiting glutaminase reduced L-2HG levels and induced neuronal differentiation. L-2HG-dependent inhibition of KDM5 histone demethylases led to widespread retention of H3K4me2/3, markers of active gene expression, with prominent enrichment at the MYC locus and elevated MYC expression across multiple neural cell types. Despite broadly altered histone methylation, genetically or pharmacologically normalizing MYC completely restored neuronal differentiation. These data indicated that a primary metabolic disturbance activated MYC to favor self-renewal and suppress neuronal lineage commitment.
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