Mengli Cai, Nipanshu Agarwal, Daniel S Garrett, James Baber, G Marius Clore
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Quantitative analysis of these data reveals exchange between major ground (∼95%) and sparsely populated excited (∼5%) states with an exchange lifetime of ∼3 ms involving residues at the interface between the N-terminal and C-terminal domains formed by the β3/β4 hairpin and helix α3 of the N-terminal domain and helices α4 and α5 of the C-terminal domain. The largest <sup>15</sup>N backbone chemical shift differences are associated with the β3/β4 hairpin, leading us to suggest that the excited state may involve a rigid body lateral displacement/rotation away from the C-terminal domain to adopt a position similar to that seen in the active RNA polymerase-bound state. Such a rigid body reorientation would result in a reduction in the interface between the N- and C-terminal domains with the possible introduction of a cavity or cavities. This hypothesis is supported by the observation that the population of the excited species and the exchange rate of interconversion between ground and excited states are reduced at a high (2.5 kbar) pressure. 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引用次数: 0
摘要
RfaH 是一种双链转录因子,其 C 端结构域在与 ops-paused RNA 聚合酶结合时会从 α 螺旋发夹折叠成 β 卷。为了确定是否存在一种稀疏的激发态,这种激发态可能为 RfaH 结合 ops 暂停的 RNA 聚合酶时的自动抑制静息态提供能量,我们进行了一系列基于核磁共振的交换实验,以探测毫秒级的构象交换。对这些数据的定量分析显示,主要的基态(∼95%)和稀少的激发态(∼5%)之间发生了交换,交换寿命为∼3 毫秒,涉及 N 端和 C 端结构域之间的残基,这些残基由 N 端结构域的 β3/β4 发夹和螺旋 α3 以及 C 端结构域的螺旋 α4 和 α5 形成。最大的 15N 主干化学位移差异与 β3/β4 发夹有关,这使我们认为,激发态可能涉及刚体横向位移/旋转,远离 C 端结构域,采用与活性 RNA 聚合酶结合态类似的位置。这种刚体重新定向将导致 N 端和 C 端结构域之间的界面缩小,并可能引入一个或多个空腔。在高压(2.5 千巴)条件下,激发态的数量和基态与激发态之间的相互转换率都会降低,这一观察结果支持了上述假设。本文讨论了在 RNA 聚合酶结合的背景下 C 端结构域折叠转换的机理。
A Transient, Excited Species of the Autoinhibited α-State of the Bacterial Transcription Factor RfaH May Represent an Early Intermediate on the Fold-Switching Pathway.
RfaH is a two-domain transcription factor in which the C-terminal domain switches fold from an α-helical hairpin to a β-roll upon binding the ops-paused RNA polymerase. To ascertain the presence of a sparsely populated excited state that may prime the autoinhibited resting state of RfaH for binding ops-paused RNA polymerase, we carried out a series of NMR-based exchange experiments to probe for conformational exchange on the millisecond time scale. Quantitative analysis of these data reveals exchange between major ground (∼95%) and sparsely populated excited (∼5%) states with an exchange lifetime of ∼3 ms involving residues at the interface between the N-terminal and C-terminal domains formed by the β3/β4 hairpin and helix α3 of the N-terminal domain and helices α4 and α5 of the C-terminal domain. The largest 15N backbone chemical shift differences are associated with the β3/β4 hairpin, leading us to suggest that the excited state may involve a rigid body lateral displacement/rotation away from the C-terminal domain to adopt a position similar to that seen in the active RNA polymerase-bound state. Such a rigid body reorientation would result in a reduction in the interface between the N- and C-terminal domains with the possible introduction of a cavity or cavities. This hypothesis is supported by the observation that the population of the excited species and the exchange rate of interconversion between ground and excited states are reduced at a high (2.5 kbar) pressure. Mechanistic implications for fold switching of the C-terminal domain in the context of RNA polymerase binding are discussed.
期刊介绍:
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