Toxicity of overexpressed MeCP2 is independent of HDAC3 activity

加压器 生物 组蛋白脱乙酰基酶 核受体辅阻遏物1 核受体 MECP2 组蛋白 转换抑制 遗传学 乙酰化 表型 细胞生物学 基因 转录因子 交易激励
作者
Martha V. Koerner,Laura FitzPatrick,Jim Selfridge,Jacky Guy,Dina De Sousa,Rebekah Tillotson,Alastair Kerr,Zheng Sun,Mitchell A. Lazar,Matthew J. Lyst,Adrian Bird
出处
期刊:Genes & Development [Cold Spring Harbor Laboratory Press]
卷期号:32 (23-24): 1514-1524 被引量:30
标识
DOI:10.1101/gad.320325.118
摘要

Duplication of the X-linked MECP2 gene causes a severe neurological syndrome whose molecular basis is poorly understood. To determine the contribution of known functional domains to overexpression toxicity, we engineered a mouse model that expresses wild-type or mutated MeCP2 from the Mapt ( Tau ) locus in addition to the endogenous protein. Animals that expressed approximately four times the wild-type level of MeCP2 failed to survive to weaning. Strikingly, a single amino acid substitution that prevents MeCP2 from binding to the TBL1X(R1) subunit of nuclear receptor corepressor 1/2 (NCoR1/2) complexes, when expressed at equivalent high levels, was phenotypically indistinguishable from wild type, suggesting that excessive corepressor recruitment underlies toxicity. In contrast, mutations affecting the DNA-binding domain were toxic when overexpressed. As the NCoR1/2 corepressors are thought to act through histone deacetylation by histone deacetylase 3 (HDAC3), we asked whether mutations in NCoR1 and NCoR2 that drastically reduced their ability to activate this enzyme would relieve the MeCP2 overexpression phenotype. Surprisingly, severity was unaffected, indicating that the catalytic activity of HDAC3 is not the mediator of toxicity. Our findings shed light on the molecular mechanisms underlying MECP2 duplication syndrome and call for a re-evaluation of the precise biological role played by corepressor recruitment.

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