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Conformational dynamics of the Escherichia coli DNA polymerase manager proteins UmuD and UmuD'.

机译:大肠杆菌DNA聚合酶管理蛋白UmuD和UmuD'的构象动力学。

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The expression of Escherichia coli umuD gene products is upregulated as part of the SOS response to DNA damage. UmuD is initially produced as a 139-amino-acid protein, which subsequently cleaves off its N-terminal 24 amino acids in a reaction dependent on RecA/single-stranded DNA, giving UmuD'. The two forms of the umuD gene products play different roles in the cell. UmuD is implicated in a primitive DNA damage checkpoint and prevents DNA polymerase IV-dependent -1 frameshift mutagenesis, while the cleaved form facilitates UmuC-dependent mutagenesis via formation of DNA polymerase V (UmuD'(2)C). Thus, the cleavage of UmuD is a crucial switch that regulates replication and mutagenesis via numerous protein-protein interactions. A UmuD variant, UmuD3A, which is noncleavable but is a partial biological mimic of the cleaved form UmuD', has been identified. We used hydrogen-deuterium exchange mass spectrometry (HXMS) to probe the conformations of UmuD, UmuD', and UmuD3A. In HXMS experiments, backbone amide hydrogens that are solvent accessible or not involved in hydrogen bonding become labeled with deuterium over time. Our HXMS results reveal that the N-terminal arm of UmuD, which is truncated in the cleaved form UmuD', is dynamic. Residues that are likely to contact the N-terminal arm show more deuterium exchange in UmuD' and UmuD3A than in UmuD. These observations suggest that noncleavable UmuD3A mimics the cleaved form UmuD' because, in both cases, the arms are relatively unbound from the globular domain. Gas-phase hydrogen exchange experiments, which specifically probe the exchange of side-chain hydrogens and are carried out on shorter timescales than solution experiments, show that UmuD' incorporates more deuterium than either UmuD or UmuD3A. This work indicates that these three forms of the UmuD gene products are highly flexible, which is of critical importance for their many protein interactions.
机译:大肠杆菌umuD基因产物的表达被上调,作为SOS对DNA损伤的反应的一部分。 UmuD最初是一种139个氨基酸的蛋白质,随后在依赖RecA /单链DNA的反应中从N末端的24个氨基酸处裂解,得到UmuD'。 umuD基因产物的两种形式在细胞中发挥不同的作用。 UmuD牵涉到原始的DNA损伤检查点,并防止DNA聚合酶IV依赖的-1移码诱变,而切割的形式通过形成DNA聚合酶V(UmuD'(2)C)促进UmuC依赖的诱变。因此,UmuD的切割是一个关键的开关,它通过多种蛋白质-蛋白质相互作用调节复制和诱变。已经鉴定了UmuD变体UmuD3A,其不可切割,但是是切割形式UmuD'的部分生物学模拟物。我们使用氢氘交换质谱(HXMS)来探究UmuD,UmuD'和UmuD3A的构象。在HXMS实验中,随着时间的流逝,可溶剂接触或不参与氢键键合的骨架酰胺氢被氘标记。我们的HXMS结果显示,UmuD的N末端臂是动态的,该N末端臂以UmuD'的切割形式被截短。与UmuD中相比,UmuD'和UmuD3A中可能与N末端臂接触的残基显示出更多的氘交换。这些观察结果表明不可切割的UmuD3A模仿了切割的UmuD'形式,因为在两种情况下,这些臂都相对于球形结构域相对未结合。气相氢交换实验(专门研究侧链氢的交换,并且比溶液实验在更短的时间尺度上进行)显示,UmuD'掺入的氘比UmuD或UmuD3A多。这项工作表明,这三种形式的UmuD基因产物具有高度的灵活性,这对于它们的许多蛋白质相互作用至关重要。

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