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首页> 外文期刊>The Journal of biological chemistry >Mutations Altering a Structurally Conserved Loop-Helix-Loop Region of a Viral Packaging Motor Change DNA Translocation Velocity and Processivity
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Mutations Altering a Structurally Conserved Loop-Helix-Loop Region of a Viral Packaging Motor Change DNA Translocation Velocity and Processivity

机译:改变病毒包装电机的结构上保守的环 - 螺旋区的突变变化DNA易位速度和处理

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Many double-stranded DNA viruses employ ATP-driven motors to translocate their genomes into small, preformed viral capsids against large forces resisting confinement. Here, we show via direct single-molecule measurements that a mutation T194M downstream of the Walker B motif in the phage λ gpA packaging motor causes an 8-fold reduction in translocation velocity without substantially changing processivity or force dependence, whereas the mutation G212S in the putative C (coupling) motif causes a 3-fold reduction in velocity and a 6-fold reduction in processivity. Meanwhile a T194M pseudorevertant (T194V) showed a near restoration of the wild-type dynamics. Structural comparisons and modeling show that these mutations are in a loop-helix-loop region that positions the key residues of the catalytic motifs, Walker B and C, in the ATPase center and is structurally homologous with analogous regions in chromosome transporters and SF2 RNA helicases. Together with recently published studies of SpoIIIE chromosome transporter and Ded1 RNA helicase mutants, these findings suggest the presence of a structurally conserved region that may be a part of the mechanism that determines motor velocity and processivity in several different types of nucleic acid translocases.
机译:许多双链DNA病毒采用ATP驱动的电动机将其基因组转化为小型预制的病毒衣壳,用于抵抗禁闭的大型力。这里,通过直接单分子测量显示,噬菌体λGPA包装电动机中的步行者B基序下游的突变T194M导致易位速度的8倍,而不会变化的处理率或力依赖性,而突变G212推定的C(耦合)基序导致速度下降3倍,并降低处理率的6倍。同时,T194M伪维度(T194V)显示近恢复野生型动力学。结构比较和建模表明,这些突变在环螺旋环区域中,将催化基序,步行者B和C的关键残留物定位在ATP酶中心中,并在结构上与染色体转运蛋白中类似地区的同源物质和SF2 RNA直升酶。与最近发表的Spoiie染色体转运蛋白和DED1RNA直升酶突变体的研究一起建议存在结构保守区域,其可以是确定在几种不同类型的核酸易位酶中的电动机速度和处理率的机制的一部分。

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