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Helicase Assembly Protein Gp59 of Bacteriophage T4: Fluorescence Anisotropy and Sedimentation Studies of Complexes Formed with Derivatives of Gp32, the Phage ssDNA Binding Protein

机译:噬菌体T4的解旋酶装配蛋白Gp59:与噬菌体ssDNA结合蛋白Gp32衍生物形成的复合物的荧光各向异性和沉淀研究

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摘要

The gene 59 protein (gp59) of bacteriophage T4 performs a vital function in phage DNA replication by directing the assembly of gp41, the DNA helicase component of the T4 primosome, onto lagging strand ssDNA at nascent replication forks. The helicase assembly activity of gp59 is required for optimum efficiency of helicase acquisition by the replication fork during strand displacement DNA synthesis and is essential for helicase and primosome assembly during T4 recombination-dependent DNA replication transactions. Of central importance is the ability of gp59 to load the gp41 helicase onto ssDNA previously coated with cooperatively bound molecules of gp32, the T4 ssDNA binding protein. Gp59 heteroassociations with ssDNA, gp32, and gp41 all appear to be essential for this loading reaction. Previous studies demonstrated that a tripartite complex containing gp59 and gp32 simultaneously cooccupying ssDNA is an essential intermediate in gp59-dependent helicase loading; however, the biochemical and structural parameters of gp59-gp32 complexes with or without ssDNA are currently unknown. To better understand gp59-gp32 interactions, we performed fluorescence anisotropy and analytical ultracentrifugation experiments employing native or rhodamine-labeled gp59 species in combination with altered forms of gp32, allowing us to determine their binding parameters, shape parameters, and other hydrodynamic properties. Two truncated forms of gp32 were used: gp32-B, which lacks the N-terminal B-domain required for cooperative binding to ssDNA and for stable self-association, and A-domain fragment, which is the C-terminal peptide of gp32 lacking ssDNA binding ability. Results indicate that gp59 binds with high affinity to either gp32 derivative to form a 1:1 heterodimer. In both cases, heterodimer formation is accompanied by a conformational change in gp59 which correlates with decreased gp59-DNA binding affinity. Hydrodynamic modeling suggests an asymmetric prolate ellipsoid shape for gp59, consistent with its X-ray crystallographic structure, and this asymmetry appears to increase upon binding of gp32 derivatives. Implications of our findings for the structure and function of gp59 and gp59-gp32 complexes in T4 replication are discussed.
机译:噬菌体T4的基因59蛋白(gp59)在噬菌体DNA复制中起着至关重要的作用,它可以指导g441(T4原始体的DNA解旋酶成分)的装配到新生复制叉的滞后链ssDNA上。 gp59的解旋酶组装活性是链叉置换DNA合成过程中通过复制叉获得解旋酶的最佳效率所必需的,并且对于T4重组依赖的DNA复制交易中的解旋酶和primosome组装是必不可少的。至关重要的是,gp59将gp41解旋酶加载到预先包被有合作结合分子gp32(T4 ssDNA结合蛋白)的ssDNA上的能​​力。与ssDNA,gp32和gp41的Gp59杂合似乎对这种加载反应至关重要。先前的研究表明,同时包含ssDNA的包含gp59和gp32的三方复合物是依赖gp59的解旋酶负载的重要中间体。然而,目前尚不清楚带有或不带有ssDNA的gp59-gp32复合物的生化和结构参数。为了更好地理解gp59-gp32的相互作用,我们进行了荧光各向异性和分析性超速离心实验,采用天然或若丹明标记的gp59种类与gp32的变化形式相结合,从而使我们能够确定它们的结合参数,形状参数和其他流体力学性质。使用了两种截短形式的gp32:gp32-B,其缺少与ssDNA协同结合和稳定的自缔合所需的N端B结构域,以及A结构域片段,即缺少gp32的C末端肽ssDNA结合能力。结果表明,gp59以高亲和力与任一gp32衍生物结合,形成1:1异二聚体。在这两种情况下,异二聚体的形成都伴随着gp59的构象变化,这与降低的gp59-DNA结合亲和力有关。流体力学建模表明gp59的不对称长椭球形形状,与其X射线晶体学结构一致,并且这种不对称性似乎在gp32衍生物结合后增加。讨论了我们的发现对T4复制中gp59和gp59-gp32复合物的结构和功能的影响。

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