MOE Key Laboratory of Protein Sciences, School of Life Sciences, Tsinghua University, Beijing, 100084, China.
Tsinghua-Peking Center for Life Sciences, School of Life Sciences, Tsinghua University, Beijing, 100084, China.
Nat Commun. 2022 Jul 9;13(1):3984. doi: 10.1038/s41467-022-31762-x.
TGF-β family proteins including Nodal are known as central regulators of early development in metazoans, yet our understanding of the scope of Nodal signaling's downstream targets and associated physiological mechanisms in specifying developmentally appropriate cell fates is far from complete. Here, we identified a highly conserved, transmembrane micropeptide-NEMEP-as a direct target of Nodal signaling in mesendoderm differentiation of mouse embryonic stem cells (mESCs), and this micropeptide is essential for mesendoderm differentiation. We showed that NEMEP interacts with the glucose transporters GLUT1/GLUT3 and promotes glucose uptake likely through these interactions. Thus, beyond expanding the scope of known Nodal signaling targets in early development and showing that this target micropeptide augments the glucose uptake during mesendoderm differentiation, our study provides a clear example for the direct functional impact of altered glucose metabolism on cell fate determination.
TGF-β 家族蛋白包括 Nodal,它们被认为是后生动物早期发育的核心调控因子,然而,我们对 Nodal 信号下游靶标的范围以及在指定发育适当的细胞命运方面的相关生理机制的理解还远远不够。在这里,我们鉴定了一个高度保守的跨膜微肽-NEMEP-作为 Nodal 信号在小鼠胚胎干细胞(mESCs)中中胚层分化中的直接靶标,并且这个微肽对于中胚层分化是必需的。我们表明,NEMEP 与葡萄糖转运体 GLUT1/GLUT3 相互作用,并可能通过这些相互作用促进葡萄糖摄取。因此,除了扩大早期发育中已知的 Nodal 信号靶标的范围,并表明这个靶标微肽在中胚层分化过程中增加了葡萄糖摄取之外,我们的研究还为改变葡萄糖代谢对细胞命运决定的直接功能影响提供了一个明确的例子。