El Bakkoury M, Dubois E, Messenguy F
Institut de Recherches Microbiologiques J-M. Wiame, and Laboratoire de Microbiologie de l'Universit¿e Libre de Bruxelles, Avenue E. Gryzon, 1, B-1070 Brussels, Belgium.
Mol Microbiol. 2000 Jan;35(1):15-31. doi: 10.1046/j.1365-2958.2000.01665.x.
Regulation of arginine metabolism requires the integrity of four regulatory proteins, ArgRI, ArgRII, ArgRIII and Mcm1. To characterize further the interactions between the different proteins, we used the two-hybrid system, which showed that ArgRI and Mcm1 interact together, and with ArgRII and ArgRIII, without an arginine requirement. To define the interacting domains of ArgRI and Mcm1 with ArgRIII, we fused portions of ArgRI and Mcm1 to the DNA-binding domain of Gal4 (GBD) and created mutations in GBD-ArgRI and GBD-Mcm1. The putative alpha helix present in the MADS-box domain of ArgRI and Mcm1 is their major region of interaction with ArgRIII. Interactions between the two MADS-box proteins and ArgRIII were confirmed using affinity chromatography. The requirement for ArgRIII in the control of arginine metabolism can be bypassed in vitro as well as in vivo by overproducing ArgRI or Mcm1, which indicates that ArgRIII is not present in the protein complex formed with the 'arginine boxes'. We show that the impairment of arginine regulation in an argRIII deletant strain is a result of a lack of stability of ArgRI and Mcm1. A mutation in ArgRI, impairing its interaction with ArgRIII, leads to an unstable ArgRI protein in a wild-type strain. ArgRIII integrity is crucial for Mcm1 function, as shown by the marked decreased expression of five genes controlled by Mcm1. However, ArgRIII is likely to recruit other proteins in the yeast cell, as overexpression of Mcm1 does not compensate some physiological defects observed in an argRIII deletant strain.
精氨酸代谢的调控需要四种调控蛋白ArgRI、ArgRII、ArgRIII和Mcm1的完整性。为了进一步表征不同蛋白之间的相互作用,我们使用了双杂交系统,该系统表明ArgRI和Mcm1相互作用,并且与ArgRII和ArgRIII相互作用,而不需要精氨酸。为了确定ArgRI和Mcm1与ArgRIII的相互作用结构域,我们将ArgRI和Mcm1的部分区域与Gal4的DNA结合结构域(GBD)融合,并在GBD-ArgRI和GBD-Mcm1中产生突变。ArgRI和Mcm1的MADS盒结构域中存在的假定α螺旋是它们与ArgRIII相互作用的主要区域。使用亲和色谱法证实了两种MADS盒蛋白与ArgRIII之间的相互作用。在体外和体内,通过过量表达ArgRI或Mcm1可以绕过ArgRIII对精氨酸代谢的控制需求,这表明ArgRIII不存在于与“精氨酸盒”形成的蛋白质复合物中。我们表明,argRIII缺失菌株中精氨酸调控的受损是由于ArgRI和Mcm1缺乏稳定性所致。ArgRI中的一个突变损害了它与ArgRIII的相互作用,导致野生型菌株中的ArgRI蛋白不稳定。如由Mcm1控制的五个基因的明显表达降低所示,ArgRIII的完整性对Mcm1功能至关重要。然而,ArgRIII可能在酵母细胞中招募其他蛋白质,因为Mcm1的过表达并不能补偿在argRIII缺失菌株中观察到的一些生理缺陷。