bioRxiv · 10.1101/685347
Homo- and heterodimerization of bHLH transcription factors balance stemness and bipotential differentiation
Abstract
Multipotent adult stem cells balance self-renewal with differentiation into various cell types. How this balance is regulated at the transcriptional level is poorly understood. Here we show that a network of basic Helix-Loop-Helix (bHLH) transcription factors controls both stemness and bi-potential differentiation in the Drosophila adult intestine. We find that homodimers of Daughterless (Da), homolog of mammalian E proteins, maintain self-renewal of intestinal stem cells (ISCs), antagonising the Enteroendocrine fate promoted by heterodimers of Da and Scute (Sc, homolog of ASCL). The HLH factor Extramacrochaetae (Emc, homologous to Id proteins) promotes absorptive differentiation by titrating Da and Sc. Emc prevents the committed absorptive progenitor from de-differentiating, underscoring the plasticity of these cells. Switching physical interaction partners in this way enables the active maintenance of stemness while priming stem cells for differentiation along two alternative fates. Such regulatory logic is likely operative in other bipotent stem cell systems.
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Puig-Barbe, A., de Navascues, J.. 2019-06-27. Homo- and heterodimerization of bHLH transcription factors balance stemness and bipotential differentiation. https://doi.org/10.1101/685347
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