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首页> 外文期刊>Biochemistry >Structure and Energetics of an Allele-Specific Genetic Interaction between dnaJ and dnaK: Correlation of Nuclear Magnetic Resonance Chemical Shift Perturbations in the J-Domain of Hsp40/DnaJ with Binding Affinity for the ATPase Domain of Hsp70/DnaK.
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Structure and Energetics of an Allele-Specific Genetic Interaction between dnaJ and dnaK: Correlation of Nuclear Magnetic Resonance Chemical Shift Perturbations in the J-Domain of Hsp40/DnaJ with Binding Affinity for the ATPase Domain of Hsp70/DnaK.

机译:dnaJ和dnaK之间的等位基因特异性遗传相互作用的结构和能量:Hsp40 / DnaJ的J-域中核磁共振化学位移扰动与Hsp70 / DnaK ATPase域的结合亲和力的相关性。

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摘要

The molecular chaperone machine composed of Escherichia coli Hsp70/DnaK and Hsp40/DnaJ binds and releases client proteins in cycles of ATP-dependent protein folding, membrane translocation, disassembly, and degradation. The J-domain of DnaJ simultaneously stimulates ATP hydrolysis in the ATPase domain and capture of the client protein in the peptide-binding domain of DnaK. ATP-dependent binding of DnaJ to DnaK mimics DnaJ-dependent capture of a client protein. The dnaJ mutation that replaces aspartate-35 with asparagine (D35N) in the J-domain causes a defect in binding of DnaJ to DnaK. The dnaK mutation that replaces arginine-167 with alanine (R167A) in the ATPase domain of DnaK(R167A) restores binding of DnaJ(D35N). This genetic interaction was said to be allele-specific because wild-type DnaJ does not bind to DnaK(R167A). The J-domain of DnaJ binds to the ATPase domain of DnaK in its capacity as modulator of DnaK ATPase activity and conformational behavior. Surprisingly, the mutations affect the domainwise interaction in an almost opposite manner. D35N increases the affinity of the J-domain for the ATPase domain. R167A has no affect on the affinity of the ATPase domain for the D35N mutant J-domain, but it reduces the affinity for the wild-type J-domain. Previous amide ((1)H, (15)N) NMR chemical shift perturbation mapping in the J-domain suggested that the ATPase domain binds to J-domain helix II and the flanking loops. In the D35N mutant J-domain, chemical shift perturbations include additional effects at amides in the flexible loop II-III and helix III, which have been proposed to undergo an induced fit conformational change upon binding to DnaK. The integrated magnitudes of chemical shift perturbations for the various J-domain and ATPase domain pairs correlate with the free energies of binding. Thus, the J-domain structure can be described as a dynamic ensemble of conformations that is constrained by binding to the ATPase domain. J-domain helix II bends upon binding to the ATPase domain. D35N increases helix II bending, but less so in combination with R167A in the ATPase domain. Taken together, the results suggest that D35N overstabilizes an induced fit conformational change in loop II-III and helix III that is necessary for the J-domain to couple ATP hydrolysis with a conformational change in DnaK, and R167A destabilizes the induced conformation. Conclusions from this work have implications for understanding mechanisms of protein-protein interaction that are involved in allosteric regulation and genetic suppression.
机译:由大肠杆菌Hsp70 / DnaK和Hsp40 / DnaJ组成的分子伴侣机以ATP依赖的蛋白质折叠,膜移位,分解和降解的周期结合并释放客户蛋白质。 DnaJ的J结构域同时刺激ATPase结构域中的ATP水解,并在DnaK的肽结合结构域中捕获客户蛋白。 DnaJ与DnaK的ATP依赖性结合模仿了客体蛋白的DnaJ依赖性捕获。在J结构域中用天冬酰胺(D35N)替换天冬氨酸35的dnaJ突变导致DnaJ与DnaK的结合缺陷。在DnaK(R167A)ATPase域中用丙氨酸(R167A)取代精氨酸167的dnaK突变恢复了DnaJ(D35N)的结合。据说这种遗传相互作用是等位基因特异性的,因为野生型DnaJ不与DnaK(R167A)结合。 DnaJ的J结构域以其作为DnaK ATPase活性和构象行为的调节剂的能力与DnaK的ATPase域结合。令人惊讶地,突变以几乎相反的方式影响域相互作用。 D35N增加了J结构域对ATPase结构域的亲和力。 R167A对ATPase结构域对D35N突变体J结构域的亲和力没有影响,但会降低对野生型J结构域的亲和力。 J域中以前的酰胺((1)H,(15)N)NMR化学位移扰动图谱表明ATPase域与J结构域螺旋II和侧链结合。在D35N突变体J结构域中,化学位移扰动包括对柔性环II-III和螺旋III中酰胺的其他作用,这些作用已被提议在与DnaK结合后经历诱导的构象变化。各种J结构域和ATPase结构域对的化学位移扰动的积分强度与结合的自由能相关。因此,J结构域结构可以描述为通过结合至ATPase结构域而受约束的构象的动态整体。 J结构域螺旋II在与ATPase结构域结合后弯曲。 D35N增加了螺旋II的弯曲,但与ATPase域中的R167A结合的弯曲不大。两者合计,结果表明D35N过度稳定环II-III和螺旋III中诱导的拟合构象变化,这对于J结构域将ATP水解与DnaK的构象变化耦合起来是必需的,而R167A则使诱导的构象不稳定。这项工作的结论对理解变构调节和遗传抑制中涉及的蛋白质-蛋白质相互作用的机制具有重要意义。

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