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人类胚胎干细胞中杂合不足的全基因组分析。

Genome-wide analysis of haploinsufficiency in human embryonic stem cells.

机构信息

The Azrieli Center for Stem Cells and Genetic Research, Department of Genetics, The Alexander Silberman Institute of Life Sciences, The Hebrew University of Jerusalem, Jerusalem 91904, Israel.

The Azrieli Center for Stem Cells and Genetic Research, Department of Genetics, The Alexander Silberman Institute of Life Sciences, The Hebrew University of Jerusalem, Jerusalem 91904, Israel.

出版信息

Cell Rep. 2022 Mar 29;38(13):110573. doi: 10.1016/j.celrep.2022.110573.

Abstract

Haploinsufficiency describes a phenomenon where one functioning allele is insufficient for a normal phenotype, underlying several human diseases. The effect of haploinsufficiency on human embryonic stem cells (hESC) has not been thoroughly studied. To establish a genome-wide loss-of-function screening for heterozygous mutations, we fuse normal haploid hESCs with a library of mutant haploid hESCs. We identify over 600 genes with a negative effect on hESC growth in a haploinsufficient manner and characterize them as genes showing less tolerance to mutations, conservation during evolution, and depletion from telomeres and X chromosome. Interestingly, a large fraction of these genes is associated with extracellular matrix and plasma membrane and enriched for genes within WNT and TGF-β pathways. We thus identify haploinsufficiency-related genes that show growth retardation in early embryonic cells, suggesting dosage-dependent phenotypes in hESCs. Overall, we construct a unique model for studying haploinsufficiency and identified important dosage-dependent pathways involved in hESC growth and survival.

摘要

杂合性不足描述了一种现象,即一个功能等位基因不足以产生正常表型,这是几种人类疾病的基础。杂合性不足对人类胚胎干细胞 (hESC) 的影响尚未得到彻底研究。为了建立针对杂合突变的全基因组功能丧失筛选,我们将正常的单倍体 hESC 与突变的单倍体 hESC 文库融合。我们以杂合性不足的方式鉴定出超过 600 个对 hESC 生长有负面影响的基因,并将它们描述为对突变的耐受性较低、在进化过程中保守以及从端粒和 X 染色体中缺失的基因。有趣的是,这些基因的很大一部分与细胞外基质和质膜有关,并且富集了 WNT 和 TGF-β 通路内的基因。因此,我们鉴定出与早期胚胎细胞生长迟缓相关的杂合性不足相关基因,表明 hESC 中存在剂量依赖表型。总体而言,我们构建了一种独特的研究杂合性不足的模型,并鉴定出参与 hESC 生长和存活的重要剂量依赖途径。

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