4.7 Article

A splicing factor switch controls hematopoietic lineage specification of pluripotent stem cells

期刊

EMBO REPORTS
卷 22, 期 1, 页码 -

出版社

WILEY

关键词

alternative splicing; NOTCH signaling; NUMB; splicing factor switch; SRSF2

资金

  1. National Key Research and Development Program of China Stem Cell and Translational Research [2016YFA0102300, 2017YFA0103100, 2017YFA0103102]
  2. CAMS Innovation Fund for Medical Sciences (CIFMS) [2016-I2M-1-018, 2016-I2M-3-002, 2017-12M-1-015]
  3. Chinese National Natural Science Foundation [81870089, 81530008, 31671541, 81700105, 81890990]

向作者/读者索取更多资源

- Alternative splicing plays a crucial role in hematopoietic development of human pluripotent stem cells. - A switch in splicing factor occurs during the differentiation from mesodermal cells to endothelial progenitor cells. - The EPC-induced alternative spliced isoform of NUMB dictates EPC specification by controlling NOTCH signaling.
Alternative splicing (AS) leads to transcriptome diversity in eukaryotic cells and is one of the key regulators driving cellular differentiation. Although AS is of crucial importance for normal hematopoiesis and hematopoietic malignancies, its role in early hematopoietic development is still largely unknown. Here, by using high-throughput transcriptomic analyses, we show that pervasive and dynamic AS takes place during hematopoietic development of human pluripotent stem cells (hPSCs). We identify a splicing factor switch that occurs during the differentiation of mesodermal cells to endothelial progenitor cells (EPCs). Perturbation of this switch selectively impairs the emergence of EPCs and hemogenic endothelial progenitor cells (HEPs). Mechanistically, an EPC-induced alternative spliced isoform of NUMB dictates EPC specification by controlling NOTCH signaling. Furthermore, we demonstrate that the splicing factor SRSF2 regulates splicing of the EPC-induced NUMB isoform, and the SRSF2-NUMB-NOTCH splicing axis regulates EPC generation. The identification of this splicing factor switch provides a new molecular mechanism to control cell fate and lineage specification.

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