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MSL2 确保哺乳动物的等位基因的双等位基因表达。

MSL2 ensures biallelic gene expression in mammals.

机构信息

Max Planck Institute of Immunobiology and Epigenetics, Freiburg, Germany.

Faculty of Biology, University of Freiburg, Freiburg, Germany.

出版信息

Nature. 2023 Dec;624(7990):173-181. doi: 10.1038/s41586-023-06781-3. Epub 2023 Nov 29.

DOI:10.1038/s41586-023-06781-3
PMID:38030723
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10700137/
Abstract

In diploid organisms, biallelic gene expression enables the production of adequate levels of mRNA. This is essential for haploinsufficient genes, which require biallelic expression for optimal function to prevent the onset of developmental disorders. Whether and how a biallelic or monoallelic state is determined in a cell-type-specific manner at individual loci remains unclear. MSL2 is known for dosage compensation of the male X chromosome in flies. Here we identify a role of MSL2 in regulating allelic expression in mammals. Allele-specific bulk and single-cell analyses in mouse neural progenitor cells revealed that, in addition to the targets showing biallelic downregulation, a class of genes transitions from biallelic to monoallelic expression after MSL2 loss. Many of these genes are haploinsufficient. In the absence of MSL2, one allele remains active, retaining active histone modifications and transcription factor binding, whereas the other allele is silenced, exhibiting loss of promoter-enhancer contacts and the acquisition of DNA methylation. Msl2-knockout mice show perinatal lethality and heterogeneous phenotypes during embryonic development, supporting a role for MSL2 in regulating gene dosage. The role of MSL2 in preserving biallelic expression of specific dosage-sensitive genes sets the stage for further investigation of other factors that are involved in allelic dosage compensation in mammalian cells, with considerable implications for human disease.

摘要

在二倍体生物中,双等位基因表达使 mRNA 产生足够的水平。这对于单倍不足基因至关重要,因为这些基因需要双等位基因表达才能发挥最佳功能,以防止发育障碍的发生。在个体基因座中,细胞类型特异性地以何种方式以及如何确定双等位基因或单等位基因状态仍然不清楚。MSL2 已知在果蝇中对雄性 X 染色体进行剂量补偿。在这里,我们确定了 MSL2 在调节哺乳动物等位基因表达中的作用。在小鼠神经祖细胞中的等位基因特异性批量和单细胞分析表明,除了表现出双等位基因下调的靶标外,在 MSL2 缺失后,一类基因从双等位基因表达转变为单等位基因表达。这些基因中有许多是单倍不足的。在没有 MSL2 的情况下,一个等位基因仍然保持活跃,保留活跃的组蛋白修饰和转录因子结合,而另一个等位基因则被沉默,表现出启动子-增强子接触的丧失和 DNA 甲基化的获得。Msl2 敲除小鼠在围产期死亡,并在胚胎发育过程中表现出异质表型,这支持了 MSL2 在调节基因剂量方面的作用。MSL2 维持特定剂量敏感基因双等位基因表达的作用为进一步研究其他参与哺乳动物细胞等位基因剂量补偿的因素奠定了基础,这对人类疾病具有重要意义。

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