Molecular and Integrative Biosciences Research Programme, Faculty of Biological and Environmental Sciences, University of Helsinki, Helsinki, Finland.
Institute of Biotechnology, University of Helsinki, Helsinki, Finland.
PLoS Genet. 2021 Oct 11;17(10):e1009855. doi: 10.1371/journal.pgen.1009855. eCollection 2021 Oct.
Nutrient-dependent gene regulation critically contributes to homeostatic control of animal physiology in changing nutrient landscape. In Drosophila, dietary sugars activate transcription factors (TFs), such as Mondo-Mlx, Sugarbabe and Cabut, which control metabolic gene expression to mediate physiological adaptation to high sugar diet. TFs that correspondingly control sugar responsive metabolic genes under conditions of low dietary sugar remain, however, poorly understood. Here we identify a role for Drosophila GATA TF Grain in metabolic gene regulation under both low and high sugar conditions. De novo motif prediction uncovered a significant over-representation of GATA-like motifs on the promoters of sugar-activated genes in Drosophila larvae, which are regulated by Grain, the fly ortholog of GATA1/2/3 subfamily. grain expression is activated by sugar in Mondo-Mlx-dependent manner and it contributes to sugar-responsive gene expression in the fat body. On the other hand, grain displays strong constitutive expression in the anterior midgut, where it drives lipogenic gene expression also under low sugar conditions. Consistently with these differential tissue-specific roles, Grain deficient larvae display delayed development on high sugar diet, while showing deregulated central carbon and lipid metabolism primarily on low sugar diet. Collectively, our study provides evidence for the role of a metazoan GATA transcription factor in nutrient-responsive metabolic gene regulation in vivo.
营养依赖性基因调控对动物生理学在不断变化的营养环境中的稳态控制起着至关重要的作用。在果蝇中,膳食糖激活转录因子(TFs),如 Mondo-Mlx、Sugarbabe 和 Cabut,它们控制代谢基因的表达,以介导对高糖饮食的生理适应。然而,相应地控制低糖饮食条件下糖响应代谢基因的 TFs 仍然知之甚少。在这里,我们确定了果蝇 GATA TF Grain 在低糖和高糖条件下代谢基因调控中的作用。从头预测发现,在果蝇幼虫中,糖激活基因的启动子上存在大量 GATA 样基序的显著过表达,这些基因受 Grain 调控,Grain 是果蝇 GATA1/2/3 亚家族的同源物。Grain 的表达受 Mondo-Mlx 依赖性糖激活,它有助于脂肪体中糖响应基因的表达。另一方面,Grain 在中肠前区表现出强烈的组成型表达,在低糖条件下也驱动脂肪生成基因的表达。与这些不同的组织特异性作用一致,Grain 缺陷型幼虫在高糖饮食下发育迟缓,而在低糖饮食下主要表现为中央碳和脂质代谢失调。总之,我们的研究为后生动物 GATA 转录因子在体内营养响应代谢基因调控中的作用提供了证据。