Institute of Biological and Chemical Systems - Biological Information Processing, Karlsruhe Institute of Technology, Eggenstein-Leopoldshafen, Germany.
Institute of Metabolism and Systems Research, College of Medical and Dental Sciences, University of Birmingham, Birmingham, United Kingdom.
Elife. 2020 Sep 24;9:e57068. doi: 10.7554/eLife.57068.
The glucose-sensing Mondo pathway regulates expression of metabolic genes in mammals. Here, we characterized its function in the zebrafish and revealed an unexpected role of this pathway in vertebrate embryonic development. We showed that knockdown of impaired the early morphogenetic movement of epiboly in zebrafish embryos and caused microtubule defects. Expression of genes in the terpenoid backbone and sterol biosynthesis pathways upstream of pregnenolone synthesis was coordinately downregulated in these embryos, including the most downregulated gene . Loss of Nsdhl function likewise impaired epiboly, similar to MondoA loss of function. Both epiboly and microtubule defects were partially restored by pregnenolone treatment. Maternal-zygotic mutants of showed perturbed epiboly with low penetrance and compensatory changes in the expression of terpenoid/sterol/steroid metabolism genes. Collectively, our results show a novel role for MondoA in the regulation of early vertebrate development, connecting glucose, cholesterol and steroid hormone metabolism with early embryonic cell movements.
葡萄糖感应 Mondo 通路调节哺乳动物代谢基因的表达。在这里,我们对其在斑马鱼中的功能进行了表征,并揭示了该通路在脊椎动物胚胎发育中的一个意外作用。我们发现, knockdown 会损害斑马鱼胚胎中胚层延伸的早期形态发生运动,并导致微管缺陷。在这些胚胎中, pregnenolone 合成上游的萜类骨架和固醇生物合成途径的基因表达被协调地下调,包括下调最明显的基因 。Nsdhl 功能的丧失同样会损害胚层延伸,类似于 MondoA 功能丧失。两者的胚层延伸和微管缺陷都可以部分恢复 pregnenolone 的治疗。 的母-合突变体显示胚层延伸受到干扰,其外显率低,萜类/固醇/甾体代谢基因的表达发生代偿性变化。总的来说,我们的结果表明 MondoA 在早期脊椎动物发育的调节中发挥了新的作用,将葡萄糖、胆固醇和类固醇激素代谢与早期胚胎细胞运动联系起来。