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Nucleotide-induced asymmetry within ATPase activator ring drives σ54–RNAP interaction and ATP hydrolysis

机译:ATPase激活环内核苷酸诱导的不对称性驱动σ54–RNAP相互作用和ATP水解

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摘要

It is largely unknown how the typical homomeric ring geometry of ATPases associated with various cellular activities enables them to perform mechanical work. Small-angle solution X-ray scattering, crystallography, and electron microscopy (EM) reconstructions revealed that partial ATP occupancy caused the heptameric closed ring of the bacterial enhancer-binding protein (bEBP) NtrC1 to rearrange into a hexameric split ring of striking asymmetry. The highly conserved and functionally crucial GAFTGA loops responsible for interacting with σ54–RNA polymerase formed a spiral staircase. We propose that splitting of the ensemble directs ATP hydrolysis within the oligomer, and the ring's asymmetry guides interaction between ATPase and the complex of σ54 and promoter DNA. Similarity between the structure of the transcriptional activator NtrC1 and those of distantly related helicases Rho and E1 reveals a general mechanism in homomeric ATPases whereby complex allostery within the ring geometry forms asymmetric functional states that allow these biological motors to exert directional forces on their target macromolecules.
机译:很大程度上未知的是与各种细胞活动相关的ATPase的典型同聚环几何形状如何使它们执行机械功。小角度溶液X射线散射,晶体学和电子显微镜(EM)重建显示,部分ATP占据导致细菌增强子结合蛋白(bEBP)NtrC1的七聚体闭环重新排列为具有明显不对称性的六聚体裂环。高度保守且对功能至关重要的GAFTGA环负责与σ54-RNA聚合酶相互作用,形成了螺旋形阶梯。我们提出该集合的分裂指导寡聚体中的ATP水解,并且环的不对称性指导ATPase与σ54和启动子DNA的复合物之间的相互作用。转录激活因子NtrC1的结构与远距离解旋酶Rho和E1的结构之间的相似性揭示了同型ATPase中的一般机制,由此环几何结构内的复杂变构形成不对称的功能状态,这些功能状态使这些生物马达在其目标大分子上施加定向力。

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