生物
表观基因组
染色质
转录组
细胞生物学
维甲酸
表观遗传学
干细胞
造血
染色质免疫沉淀
细胞分化
细胞
转录因子
祖细胞
造血干细胞
重编程
遗传学
DNA甲基化
细胞培养
基因表达
基因
发起人
作者
Katharina Schönberger,Nadine Obier,Mari Carmen Romero-Mulero,Pierre Cauchy,Julian Mess,Polina V. Pavlovich,Yu Wei Zhang,Michael Mitterer,Jasmin Rettkowski,Maria‐Eleni Lalioti,Karin Jäcklein,Jonathan D. Curtis,Betty Féret,Pia Sommerkamp,Claudia Morganti,Keisuke Ito,Norbert B. Ghyselinck,Eirini Trompouki,Joerg M. Buescher,Erika L. Pearce,Nina Cabezas‐Wallscheid
出处
期刊:Cell Stem Cell
[Elsevier]
日期:2022-01-01
卷期号:29 (1): 131-148.e10
被引量:50
标识
DOI:10.1016/j.stem.2021.10.002
摘要
Hematopoietic stem cells (HSCs) rely on complex regulatory networks to preserve stemness. Due to the scarcity of HSCs, technical challenges have limited our insights into the interplay between metabolites, transcription, and the epigenome. In this study, we generated low-input metabolomics, transcriptomics, chromatin accessibility, and chromatin immunoprecipitation data, revealing distinct metabolic hubs that are enriched in HSCs and their downstream multipotent progenitors. Mechanistically, we uncover a non-classical retinoic acid (RA) signaling axis that regulates HSC function. We show that HSCs rely on Cyp26b1, an enzyme conventionally considered to limit RA effects in the cell. In contrast to the traditional view, we demonstrate that Cyp26b1 is indispensable for production of the active metabolite 4-oxo-RA. Further, RA receptor beta (Rarb) is required for complete transmission of 4-oxo-RA-mediated signaling to maintain stem cells. Our findings emphasize that a single metabolite controls stem cell fate by instructing epigenetic and transcriptional attributes.
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