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Conformational dynamics of DnaB helicase upon DNA and nucleotide binding: analysis by intrinsic tryptophan fluorescence quenching.

机译:DNA和核苷酸结合对DNAB螺旋酶的构象动态:内在色氨酸荧光猝灭分析。

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DnaB helicase of E. coli unwinds duplex DNA in the replication fork using the energy of ATP hydrolysis. We have analyzed structural and conformational changes in the DnaB protein in various nucleotides and DNA bound intermediate states by fluorescence quenching analysis of intrinsic fluorescence of native tryptophan (Trp) residues in DnaB. Fluorescence quenching analysis indicated that Trp48 in domain alpha is in a hydrophobic environment and resistant to fluorescence quenchers such as potassium iodide (KI). In domain beta, Trp294 was found to be in a partially hydrophobic environment, whereas Trp456 in domain gamma appeared to be in the least hydrophobic environment. Binding of oligonucleotides to DnaB helicase resulted in a significant attenuation of the fluorescence quenching profile, indicating a change in conformation. ATPgammaS or ATP binding appeared to lead to a conformation in which Trp residues had a higher degree of solvent exposure and fluorescence quenching. However, the most dramatic increase of Trp fluorescence quenching was observed with ADP binding with a possible conformational relaxation. Site-specific Trp --> Cys mutants of DnaB helicase demonstrated that conformational change upon ADP binding could be attributed exclusively to a conformational transition in the alpha domain leading to an increase in the solvent exposure of Trp48. However, formation of DnaB.ATPgammaS.DNA ternary complex led to a conformation with a fluorescence quenching profile similar to that observed with DnaB alone. The DnaB.ADP.DNA ternary complex produced a quenching curve similar to that of DnaB.ADP complex pointing to a change in conformation due to ATP hydrolysis. There are at least four identifiable structural/conformational states of DnaB helicase that are likely important in the helicase activity. The noncatalytic alpha domain in the N-terminus appeared to undergo the most significant conformational changes during nucleotide binding and hydrolysis. This is the first reported elucidation of the putative role of domain alpha, which is essential for DNA helicase action. We have correlated these results with partial structural models of alpha, beta, and gamma domains
机译:大肠杆菌的Dnab Helicase使用ATP水解的能量在复制叉中展开双相DNA。通过DNAB中的天然色氨酸(TRP)残留物的固有荧光的荧光猝灭分析,在各种核苷酸和DNA结合中间状态下分析了DNAB蛋白的结构和构象变化。荧光猝灭分析表明,结构域α中的TRP48在疏水环境中,耐荧光猝灭剂如碘化钾(Ki)。在结构域β中,发现TRP294是在部分疏水的环境中,而TRP456在结构域伽玛中似乎是最少的疏水环境。寡核苷酸与DNAB螺旋酶的结合导致荧光猝灭曲线的显着衰减,表明构象的变化。 ATPγ或ATP结合似乎导致了TRP残基具有更高程度的溶剂暴露和荧光猝灭的构象。然而,通过ADP结合与可能的构象松弛观察到TRP荧光猝灭的最大程度的增加。 DNAB螺旋酶的特异性TRP - > CYS突变体证明了ADP结合对ADP结合的构象变化可以完全归因于α结构域中的构象过渡,导致TRP48的溶剂暴露的增加。然而,形成DNAB.ATPγ.DNA三元复合物导致与单独用DNAB观察到的荧光猝灭型材的构象。 DNAB.ADP.DNA三元复合物产生类似于DNAB.ADP复合物的淬火曲线,其指向ATP水解引起的构象变化的变化。存在至少四种可识别的DNAB螺旋酶的结构/构象状态,其在螺旋酶活性中可能是重要的。 N-Terminus中的非催化α结构域似乎在核苷酸结合和水解期间经历最显着的构象变化。这是第一次报道阐明域α的推定作用,这对于DNA螺旋酶作用至关重要。我们将这些结果与Alpha,Beta和Gamma域的部分结构模型相关联

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