Marini A M, Springael J Y, Frommer W B, André B
Laboratoire de Physiologie Cellulaire, Université Libre de Bruxelles, CP300, Institut de Biologie et de Médecine Moléculaires, Rue des Pr. Jeener et Brachet, 12, 6041 Gosselies, Belgium.
Mol Microbiol. 2000 Jan;35(2):378-85. doi: 10.1046/j.1365-2958.2000.01704.x.
Ammonium uptake in the yeast Saccharomyces cerevisiae involves three membrane transporters (Mep1, -2 and -3) belonging to an evolutionarily conserved protein family that also includes the rhesus (Rh) blood group polypeptides of erythrocytes. We show here that, in the 26972c mutant defective in NH4+ transport, the Mep1 protein carrying an amino acid substitution in its cytoplasmic C-terminus trans-inhibits the closely related Mep3 protein. The same mutation introduced into Mep3 leads to loss of transport activity and this inactive form also trans-inhibits native Mep3. Inhibition of Mep3 is post-translational and can be overcome by overexpression. These results are consistent with a direct interaction between Mep proteins, as is the case for the Rh polypeptides. The soybean GmSAT1 gene, recently cloned for its ability to complement the NH4+ transport defect of strain 26972c, has been described as an NH4+ channel protein involved in the transfer of fixed nitrogen from the bacteroid to the host plant. We show here that GmSAT1 contains a sequence homologous to the DNA-binding domain of basic helix-loop-helix (bHLH) transcription factors. We also show that GmSAT1 restores NH4+ uptake in the yeast mutant by interfering with the inhibition of Mep3. Our results are not consistent with a direct role of GmSAT1 in ammonium transport.
酿酒酵母中的铵摄取涉及三种膜转运蛋白(Mep1、-2和-3),它们属于一个进化上保守的蛋白质家族,该家族还包括红细胞的恒河猴(Rh)血型多肽。我们在此表明,在NH4+转运缺陷的26972c突变体中,其细胞质C末端携带氨基酸取代的Mep1蛋白会反式抑制密切相关的Mep3蛋白。引入到Mep3中的相同突变导致转运活性丧失,并且这种无活性形式也会反式抑制天然Mep3。对Mep3的抑制是翻译后水平的,并且可以通过过表达来克服。这些结果与Mep蛋白之间的直接相互作用一致,就像Rh多肽的情况一样。最近因其能够弥补26972c菌株的NH4+转运缺陷而克隆的大豆GmSAT1基因,已被描述为一种参与将固定氮从类菌体转移到宿主植物的NH4+通道蛋白。我们在此表明,GmSAT1包含与碱性螺旋-环-螺旋(bHLH)转录因子的DNA结合结构域同源的序列。我们还表明,GmSAT1通过干扰对Mep3的抑制来恢复酵母突变体中的NH4+摄取。我们的结果与GmSAT1在铵转运中的直接作用不一致。