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Data from: Rewiring of embryonic glucose metabolism via suppression of pfk-1/aldolase during mouse chorioallantoic branching

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DataONE2016-12-02 更新2024-06-26 收录
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Adapting the energy metabolism state to changing bioenergetic demands is essential for mammalian development accompanying massive cell proliferation and cell differentiation. However, it remains unclear how developing embryos meet the changing bioenergetic demands during the chorioallantoic branching (CB) stage when the maternal-fetal exchange of gases and nutrients is promoted. In this study, using metabolome analysis with mass-labeled glucose, we found that developing embryos redirected glucose carbon flow into the pentose phosphate pathway (PPP) via suppression of the key glycolytic enzymes PFK-1 and aldolase during CB. Concomitantly, embryos had increases in lactate pool size and in the fractional contribution of glycolysis to lactate biosynthesis. Imaging mass spectrometry (IMS) visualized lactate-rich tissues, such as the dorsal or posterior neural tube, somites, and head mesenchyme. Furthermore, we found that the heterochronic gene Lin28a could act as a regulator of the metabolic changes observed during CB. Perturbation of glucose metabolism rewiring by suppressing Lin28a downregulation resulted in perinatal lethality. Thus, our work demonstrates that developing embryos rewire glucose metabolism following CB for normal development.

将能量代谢状态适配于动态变化的生物能需求,对于伴随大量细胞增殖与细胞分化的哺乳动物发育而言至关重要。然而,在尿囊绒膜分支(CB)阶段,当母胎间气体与营养物质交换得以促进时,发育中的胚胎如何应对动态变化的生物能需求,目前仍不明确。本研究借助同位素标记葡萄糖的代谢组学分析,发现发育中的胚胎在CB阶段会通过抑制关键糖酵解酶磷酸果糖激酶-1(PFK-1)与醛缩酶,将葡萄糖碳流重定向至磷酸戊糖途径(PPP)。与此同时,胚胎的乳酸池容量以及糖酵解对乳酸生物合成的分数贡献均有所提升。成像质谱(IMS)可视化显示了富含乳酸的组织,例如背侧神经管、后神经管、体节以及头部间充质。进一步研究发现,异时基因Lin28a可作为上述CB阶段代谢变化的调控因子。通过抑制Lin28a的下调来扰乱葡萄糖代谢重编程,会导致围产期致死。综上,本研究证实发育中的胚胎在CB阶段会对葡萄糖代谢进行重编程,以保障正常发育。

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2016-12-02
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