Rolland Filip, Winderickx Joris, Thevelein Johan M
Laboratorium voor Moleculaire Celbiologie, Institute of Botany and Microbiology, Katholieke Universiteit Leuven, Kasteelpark Arenberg 31, Flanders, Belgium.
FEMS Yeast Res. 2002 May;2(2):183-201. doi: 10.1111/j.1567-1364.2002.tb00084.x.
Glucose has dramatic effects on the regulation of carbon metabolism and on many other properties of yeast cells. Several sensing and signalling pathways are involved. For many years attention has focussed on the main glucose-repression pathway which is responsible for the downregulation of respiration, gluconeogenesis and the transport and catabolic capacity of alternative sugars during growth on glucose. The hexokinase 2- dependent glucose-sensing mechanism of this pathway is not well understood but the downstream part of the pathway has been elucidated in great detail. Two putative glucose sensors, the Snf3 and Rgt2 non-transporting glucose carrier homologs, control the expression of many functional glucose carriers. Recently, several new components of this glucose-induction pathway have been identified. The Ras-cAMP pathway controls a wide variety of cellular properties in correlation with cellular proliferation. Glucose is a potent activator of cAMP synthesis. In this case glucose sensing is carried out by two systems, a G-protein-coupled receptor system and a still elusive glucose-phosphorylation-dependent system. The understanding of glucose sensing and signalling in yeast has made dramatic advances in recent years and has become a strong paradigm for the elucidation of nutrient-sensing mechanisms in other eukaryotic organisms.
葡萄糖对酵母细胞的碳代谢调节及许多其他特性具有显著影响。涉及多种传感和信号传导途径。多年来,人们一直关注主要的葡萄糖抑制途径,该途径负责在酵母利用葡萄糖生长期间下调呼吸作用、糖异生作用以及其他糖类的转运和分解代谢能力。该途径中依赖己糖激酶2的葡萄糖传感机制尚未完全了解,但该途径的下游部分已得到详细阐明。两个假定的葡萄糖传感器,即Snf3和Rgt2非转运型葡萄糖载体同源物,控制许多功能性葡萄糖载体的表达。最近,该葡萄糖诱导途径的几个新组分已被鉴定出来。Ras - cAMP途径与细胞增殖相关,控制着多种细胞特性。葡萄糖是cAMP合成的有效激活剂。在这种情况下,葡萄糖传感由两个系统进行,一个是G蛋白偶联受体系统,另一个是仍不清楚的葡萄糖磷酸化依赖性系统。近年来,对酵母中葡萄糖传感和信号传导的理解取得了显著进展,并已成为阐明其他真核生物营养传感机制的有力范例。