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葡萄 ASR 调节葡萄糖转运、代谢和信号转导。

Grape ASR Regulates Glucose Transport, Metabolism and Signaling.

机构信息

UMR CNRS 7267 Écologie et Biologie des Interactions, Équipe Sucres & Echanges Végétaux Environnement, Université de Poitiers, 3 Rue Jacques Fort, 86073 Poitiers, France.

Institut des Sciences des Plantes de Montpellier (IPSiM), UMR CNRS/INRAE/Institut Agro/Université de Montpellier, 2 Place Pierre Viala, 34000 Montpellier, France.

出版信息

Int J Mol Sci. 2022 May 31;23(11):6194. doi: 10.3390/ijms23116194.

Abstract

To decipher the mediator role of the grape Abscisic acid, Stress, Ripening (ASR) protein, VvMSA, in the pathways of glucose signaling through the regulation of its target, the promoter of hexose transporter VvHT1, we overexpressed and repressed in embryogenic and non-embryogenic grapevine cells. The embryogenic cells with organized cell proliferation were chosen as an appropriate model for high sensitivity to the glucose signal, due to their very low intracellular glucose content and low glycolysis flux. In contrast, the non-embryogenic cells displaying anarchic cell proliferation, supported by high glycolysis flux and a partial switch to fermentation, appeared particularly sensitive to inhibitors of glucose metabolism. By using different glucose analogs to discriminate between distinct pathways of glucose signal transduction, we revealed VvMSA positioning as a transcriptional regulator of the glucose transporter gene in glycolysis-dependent glucose signaling. The effects of both the overexpression and repression of VvMSA on glucose transport and metabolism via glycolysis were analyzed, and the results demonstrated its role as a mediator in the interplay of glucose metabolism, transport and signaling. The overexpression of VvMSA in the mutant provided evidence for its partial functional complementation by improving glucose absorption activity.

摘要

为了解葡萄脱落酸、胁迫、成熟(ASR)蛋白 VvMSA 在葡萄糖信号通路中的中介作用,我们通过调控其靶标——葡萄糖转运蛋白 VvHT1 的启动子,在胚胎发生和非胚胎发生的葡萄细胞中过表达和抑制 VvMSA。选择具有组织细胞增殖的胚胎发生细胞作为对葡萄糖信号高度敏感的合适模型,因为它们的细胞内葡萄糖含量非常低,糖酵解通量也很低。相比之下,非胚胎发生细胞表现出紊乱的细胞增殖,糖酵解通量高,并部分转向发酵,对葡萄糖代谢抑制剂表现出特别的敏感性。通过使用不同的葡萄糖类似物来区分葡萄糖信号转导的不同途径,我们揭示了 VvMSA 在糖酵解依赖的葡萄糖信号转导中作为葡萄糖转运基因转录调节剂的定位。通过分析 VvMSA 过表达和抑制对糖酵解途径中葡萄糖转运和代谢的影响,结果表明其作为葡萄糖代谢、转运和信号转导相互作用的中介的作用。在 突变体中过表达 VvMSA 提供了其部分功能互补的证据,改善了葡萄糖吸收活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0453/9181829/db7ef5498182/ijms-23-06194-g001.jpg

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