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ATPase-Defective Derivatives of Escherichia coli DnaK That Behave Differently with Respect to ATP-Induced Conformational Change and Peptide Release

机译:大肠埃希氏菌DnaK的ATPase缺陷衍生物在ATP诱导的构象变化和肽释放方面表现不同

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摘要

We have characterized the effects of the T199S, T199A, and K70A mutations on the biochemical activity and in vivo functioning of Escherichia coli DnaK. Threonine-199 is the site of autophosphorylation of DnaK, and the lysine residue of bovine Hsc70 corresponding to K70 of DnaK has been shown to be essential for the hydrolysis of ATP. The dnaK alleles T199A and K70A are completely unable, and the T199S allele is only partially able, to complement the defects of a ΔdnaK mutant. The ATPase activities of the DnaK T199A and DnaK K70A proteins are nearly abolished, while the ATPase activity of the DnaK T199S protein has a steady-state rate similar to that of wild-type DnaK. The DnaK T199S protein also retains approximately 13% of the autophosphorylation activity of wild-type DnaK, while the autophosphorylation activities of the T199A and K70A derivatives are completely abolished. All four DnaK proteins bind a model peptide substrate, and the wild-type, T199A, and T199S DnaK proteins release the peptide with similar kinetics upon the addition of ATP. The DnaK K70A protein, in contrast, does not release the peptide upon the addition of ATP. ATP induces a conformational change in the wild-type, T199A, and T199S DnaK proteins but not in the DnaK K70A protein. The T199A and K70A mutations both disrupt the ATPase activity of DnaK but have profoundly different effects on the ATP-induced conformational change and peptide release activities of DnaK, implying that the two mutations affect different steps in the functional cycle of DnaK. The DnaK T199S protein represents a new class of DnaK mutant, one which has near-normal levels of ATPase activity and undergoes an ATP-induced conformational change that results in the release of peptide but which is not able to fully complement loss of DnaK function in the cell.
机译:我们已经表征了T199S,T199A和K70A突变对大肠杆菌DnaK的生化活性和体内功能的影响。苏氨酸199是DnaK的自磷酸化位点,并且已证明牛Hsc70的赖氨酸残基(对应于DnaK的K70)对ATP的水解至关重要。 dnaK等位基因T199A和K70A完全不能,而T199S等位基因仅能部分弥补ΔdnaK突变体的缺陷。 DnaK T199A和DnaK K70A蛋白的ATPase活性几乎被废除,而DnaK T199S蛋白的ATPase活性具有与野生型DnaK相似的稳态速率。 DnaK T199S蛋白还保留了野生型DnaK约13%的自磷酸化活性,而T199A和K70A衍生物的自磷酸化活性则被完全废除。所有四种DnaK蛋白均结合模型肽底物,而野生型T199A和T199S DnaK蛋白在添加ATP后以相似的动力学释放肽。相反,DnaK K70A蛋白在添加ATP后不会释放肽。 ATP诱导野生型,T199A和T199S DnaK蛋白发生构象变化,但不诱导DnaK K70A蛋白发生构象变化。 T199A和K70A突变都破坏了DnaK的ATPase活性,但对ATP诱导的DnaK的构象变化和肽释放活性具有深远不同的影响,这意味着这两个突变影响DnaK功能周期的不同步骤。 DnaK T199S蛋白代表一类新的DnaK突变体,其具有接近正常水平的ATPase活性,并经历ATP诱导的构象变化,导致肽释放,但不能完全弥补DnaK功能丧失。细胞。

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