Miao B, Davis J E, Craig E A
Department of Biomolecular Chemistry, University of Wisconsin, Madison 53706, USA.
J Mol Biol. 1997 Feb 7;265(5):541-52. doi: 10.1006/jmbi.1996.0762.
Mge1, a GrpE-related protein in the mitochondrial matrix of the budding yeast Saccharomyces cerevisiae, is required for translocation of precursor proteins into mitochondria. The effect of Mge1 on nucleotide release from Ssc1, an Hsp70 of the mitochondrial matrix, was analyzed. The release of both ATP and ADP from Ssc1 was stimulated in the presence of Mge1, therefore we conclude that Mge1 functions as a nucleotide release factor for Ssc1. Mge1 bound stably to Ssc1 in vitro; this interaction was resistant to high concentrations of salt but was disrupted by the addition of ATP. ADP was much less effective in releasing Mge1 from Ssc1 whereas ATP gamma S and AMPPNP could not disrupt the Ssc1/Mge1 complex. Ssc1-3, a temperature sensitive SSC1 mutant protein, did not form a detectable complex with Mge1. Consistent with the lack of a detectable interaction, Mge1 did not stimulate nucleotide release from Ssc1-3. A conserved loop structure on the surface of the ATPase domain of DnaK has been implicated in its interaction with GrpE. Since the single amino acid change in Ssc1-3 lies very close to the analogous loop in Ssc1, the role of this loop in the Ssc1:Mge1 interaction was investigated. Deletion of the loop abolished the physical and functional interaction of Ssc1 with Mge1, suggesting that the loop in Ssc1 is also important for the Ssc1:Mge1 interaction. Two mutants with single amino acid changes within the loop did not eliminate the stable binding of Mge1, yet the binding of Mge1 did not stimulate the release of nucleotides from the mutant SSC1 proteins. We propose that the loop region of Ssc1 is important for the physical interaction between Mge1 and Ssc1, and for generation of a conformational change necessary for Mge1-induced nucleotide release.
Mge1是出芽酵母酿酒酵母线粒体基质中一种与GrpE相关的蛋白质,它是前体蛋白转运到线粒体所必需的。分析了Mge1对线粒体基质Hsp70——Ssc1核苷酸释放的影响。在Mge1存在的情况下,ATP和ADP从Ssc1的释放均受到刺激,因此我们得出结论,Mge1作为Ssc1的核苷酸释放因子发挥作用。Mge1在体外与Ssc1稳定结合;这种相互作用对高浓度盐具有抗性,但通过添加ATP会被破坏。ADP从Ssc1释放Mge1的效果要差得多,而ATPγS和AMPPNP不能破坏Ssc1/Mge1复合物。Ssc1-3是一种温度敏感的SSC1突变蛋白,它与Mge1未形成可检测到的复合物。与缺乏可检测到的相互作用一致,Mge1不会刺激Ssc1-3的核苷酸释放。DnaK的ATP酶结构域表面上的一个保守环结构涉及其与GrpE的相互作用。由于Ssc1-3中的单个氨基酸变化非常接近Ssc1中的类似环,因此研究了该环在Ssc1:Mge1相互作用中的作用。该环的缺失消除了Ssc1与Mge1的物理和功能相互作用,表明Ssc1中的环对Ssc1:Mge1相互作用也很重要。该环内有两个单氨基酸变化的突变体并未消除Mge1的稳定结合,但Mge1的结合并未刺激突变型SSC1蛋白释放核苷酸。我们提出,Ssc1的环区域对于Mge1与Ssc1之间的物理相互作用以及产生Mge1诱导的核苷酸释放所需的构象变化很重要。