Department of Molecular Genetics, Institute of Life Science, Kurume University, Kurume, Fukuoka, Japan.
Department of Germline Development, Institute of Molecular Embryology and Genetics, and Graduate School of Pharmaceutical Sciences, Kumamoto University, Kumamoto, Kumamoto, Japan.
PLoS Biol. 2022 Jun 10;20(6):e3001678. doi: 10.1371/journal.pbio.3001678. eCollection 2022 Jun.
Cells must adjust the expression levels of metabolic enzymes in response to fluctuating nutrient supply. For glucose, such metabolic remodeling is highly dependent on a master transcription factor ChREBP/MondoA. However, it remains elusive how glucose fluctuations are sensed by ChREBP/MondoA despite the stability of major glycolytic pathways. Here, we show that in both flies and mice, ChREBP/MondoA activation in response to glucose ingestion involves an evolutionarily conserved glucose-metabolizing pathway: the polyol pathway. The polyol pathway converts glucose to fructose via sorbitol. It has been believed that this pathway is almost silent, and its activation in hyperglycemic conditions has deleterious effects on human health. We show that the polyol pathway regulates the glucose-responsive nuclear translocation of Mondo, a Drosophila homologue of ChREBP/MondoA, which directs gene expression for organismal growth and metabolism. Likewise, inhibition of the polyol pathway in mice impairs ChREBP's nuclear localization and reduces glucose tolerance. We propose that the polyol pathway is an evolutionarily conserved sensing system for glucose uptake that allows metabolic remodeling.
细胞必须根据营养供应的波动调整代谢酶的表达水平。对于葡萄糖来说,这种代谢重塑高度依赖于一个主转录因子 ChREBP/MondoA。然而,尽管主要的糖酵解途径很稳定,但葡萄糖波动是如何被 ChREBP/MondoA 感知的仍然难以捉摸。在这里,我们发现在果蝇和小鼠中,ChREBP/MondoA 对葡萄糖摄取的激活涉及一个进化保守的葡萄糖代谢途径:多元醇途径。多元醇途径通过山梨醇将葡萄糖转化为果糖。人们一直认为这条途径几乎是沉默的,其在高血糖条件下的激活对人类健康有有害影响。我们表明,多元醇途径调节果蝇 ChREBP/MondoA 同源物 Mondo 的葡萄糖反应性核易位,该途径指导机体生长和代谢的基因表达。同样,在小鼠中抑制多元醇途径会损害 ChREBP 的核定位并降低葡萄糖耐量。我们提出,多元醇途径是一种进化上保守的葡萄糖摄取感应系统,允许代谢重塑。