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A disulfide-bonded DnaK dimer is maintained in an ATP-bound state

机译:二硫键结合的DnaK二聚体保持在ATP结合状态

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DnaK, a major Hsp70 molecular chaperones in Escherichia coli, is a widely used model for studying Hsp70s. We recently solved a crystal structure of DnaK in complex with ATP and showed that DnaK was packed as a dimer in the crystal structure. Our previous biochemical studies supported the formation of a specific DnaK dimer as observed in the crystal structure in solution in the presence of ATP and suggested an important role of this dimer in efficient interaction with Hsp40 co-chaperones. In this study, we dissected the biochemical properties of this DnaK dimer. To restrict DnaK in this dimer form, we mutated two residues on the dimer interface to cysteine, A303C, and H541C. Upon oxidation, this DnaK-A303C-H541C protein formed a specific dimer linked by disulfide bonds formed between A303C and H541C only in the presence of ATP, consistent with the crystal structure. Intriguingly, this disulfide-bond-linked dimer of DnaK-A303C-H541C has reduced ATPase activity and decreased affinity for peptide substrate. More interestingly, unlike wild-type DnaK, the peptide substrate-binding kinetics of this dimer is drastically accelerated even in the absence of ATP, suggesting this dimer is restricted in an ATP-bound conformation regardless of nucleotide bound, which was further supported by our analysis using tryptophan fluorescence and ATP-induced peptide release. Thus, formation of the dimer restricted DnaK in an ATP-bound state and blocked the progression through the chaperone cycle. Productive progression through the chaperone cycle requires the dissociation of this transient dimer. Surprisingly, a significantly compromised interaction with Hsp40 co-chaperone was observed for this disulfide-bond-linked dimer. Thus, dissociation of this DnaK dimer is equally crucial for efficient Hsp40 interaction. An initial interaction between Hsp70 and Hsp40 requires the formation of DnaK dimer; but a stable Hsp70-Hsp40 interaction may follow the dissociation of the dimer.
机译:DnaK是大肠杆菌中主要的Hsp70分子伴侣,是研究Hsp70s的广泛使用的模型。我们最近解决了与ATP配合的DnaK晶体结构,并显示DnaK在晶体结构中被包装为二聚体。我们先前的生化研究支持在ATP存在下在溶液中的晶体结构中观察到特定的DnaK二聚体的形成,并表明该二聚体在与Hsp40伴侣分子有效相互作用中的重要作用。在这项研究中,我们解剖了这种DnaK二聚体的生化特性。为了将DnaK限制为这种二聚体形式,我们将二聚体界面上的两个残基突变为半胱氨酸,A303C和H541C。氧化后,该DnaK-A303C-H541C蛋白形成特定的二聚体,该二聚体仅在ATP存在下通过A303C和H541C之间形成的二硫键连接,与晶体结构一致。有趣的是,DnaK-A303C-H541C的二硫键连接的二聚体具有降低的ATPase活性和对肽底物的亲和力。更有趣的是,与野生型DnaK不同,即使在没有ATP的情况下,该二聚体的肽底物结合动力学也得到了显着加速,这表明该二聚体不受ATP结合的限制,而与核苷酸结合,这进一步得到了我们的支持。使用色氨酸荧光和ATP诱导的肽释放进行分析。因此,二聚体的形成限制了DnaK处于ATP结合状态并阻止了分子伴侣循环的进行。通过伴侣循环的生产进展需要该瞬时二聚体的解离。出乎意料的是,对于这种二硫键连接的二聚体,观察到与Hsp40伴侣伴侣的相互作用显着受损。因此,该DnaK二聚体的解离对于有效的Hsp40相互作用同样至关重要。 Hsp70和Hsp40之间的初始相互作用需要DnaK二聚体的形成。但是稳定的Hsp70-Hsp40相互作用可能跟随二聚体的解离。

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