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正常模式分析表明,在RNA聚合酶的整个功能循环中,蛋白质的灵活性受到调节。

Normal-mode analysis suggests protein flexibility modulation throughout RNA polymerase's functional cycle.

作者信息

Van Wynsberghe Adam, Li Guohui, Cui Qiang

机构信息

Graduate Program in Biophysics and Department of Chemistry and Theoretical Chemistry Institute, University of Wisconsin, 1101 University Avenue, Madison, Wisconsin 53706, USA.

出版信息

Biochemistry. 2004 Oct 19;43(41):13083-96. doi: 10.1021/bi049738+.

Abstract

To explore the domain-scale flexibility of bacterial RNA polymerase (RNAP) throughout its functional cycle, block normal-mode analyses (BNM) were performed on several important functional states, including the holoenzyme, the core complex, a model of RNAP bound to primarily duplex DNA, and a model of the ternary elongation complex. The calculations utilized a molecular mechanics (MM) force field with physical interactions; this is made possible by the use of BNM and the implementation of a sparse-matrix diagonalization routine. The use of homology models necessitated the MM force field rather than the simpler elastic network model (ENM). From the MM/BNM, we have systematically and semiquantitatively calculated the atomic fluctuations in the four functional states without bias due to crystal packing or other artifactual forces. We have observed that both alpha subunits and the omega subunit are rigid, in line with their roles as structural motifs that are not mechanistically involved in RNAP's functional cycle. It has been observed that the beta subunit has two highly mobile domains; these are commonly known as the beta1 and beta2 domains. Our calculations suggest that the flexibility of these domains is modulated throughout the functional cycle and that they move entirely independently of each other unless DNA is bound. From an energetic perspective, we have shown the beta2 domain can flex into and out of the cleft, forming interactions with DNA in the TEC as has been previously proposed. Our calculations also confirm that the beta' subunit's likely flexibility into and out of the DNA binding cleft is energetically allowed. These two observations validate that both of the RNAP crab claw's pincers are mobile, as both beta and beta' have substantial flexibility.

摘要

为了探究细菌RNA聚合酶(RNAP)在其整个功能周期中的结构域尺度灵活性,我们对几种重要的功能状态进行了块正常模式分析(BNM),包括全酶、核心复合物、与双链DNA结合的RNAP模型以及三元延伸复合物模型。计算使用了具有物理相互作用的分子力学(MM)力场;这通过使用BNM和稀疏矩阵对角化程序得以实现。同源模型的使用需要MM力场而非更简单的弹性网络模型(ENM)。通过MM/BNM,我们系统地、半定量地计算了四种功能状态下的原子波动,不存在晶体堆积或其他人为因素导致的偏差。我们观察到α亚基和ω亚基都是刚性的,这与它们作为结构基序的角色相符,它们在机制上不参与RNAP的功能周期。据观察,β亚基有两个高度可移动的结构域;这些通常被称为β1和β2结构域。我们的计算表明,这些结构域的灵活性在整个功能周期中受到调节,并且除非结合DNA,它们彼此完全独立移动。从能量角度来看,我们已经表明β2结构域可以弯曲进入和离开裂隙,如先前提出的那样在三元延伸复合物(TEC)中与DNA形成相互作用。我们的计算还证实,β'亚基进入和离开DNA结合裂隙的可能灵活性在能量上是允许的。这两个观察结果验证了RNAP蟹钳的两个钳夹都是可移动的,因为β和β'都具有很大的灵活性。

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