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首页> 外文期刊>Biophysical Journal >Atomistic ensemble modeling and small-angle neutron scattering of intrinsically disordered protein complexes: applied to minichromosome maintenance protein.
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Atomistic ensemble modeling and small-angle neutron scattering of intrinsically disordered protein complexes: applied to minichromosome maintenance protein.

机译:内在无序的蛋白质复合物的原子团合建模和小角度中子散射:应用于微染色体维持蛋白。

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摘要

The minichromosome maintenance (MCM) proteins are thought to function as the replicative helicases in archaea and eukarya. In this work we determined the solution structure of the N-terminal portion of the MCM complex from the archaeon Methanothermobacter thermautotrophicus (N-mtMCM) in the presence and absence of DNA using small-angle neutron scattering (SANS). N-mtMCM is a multimeric protein complex that consists of 12 monomers, each of which contains three distinct domains and two unstructured regions. Using an all-atom approach incorporating modern force field and Monte Carlo methods to allow the unstructured regions of each monomer to be varied independently, we generated an ensemble of biologically relevant structures for the complex. An examination of the subsets of structures that were most consistent with the SANS data revealed that large movements between the three domains of N-mtMCM can occur in solution. Furthermore, changes in the SANS curves upon DNA binding could be correlated to the motion of a particular N-mtMCM domain. These results provide structural support to the previously reported biochemical observations that large domain motions are required for the activation of the MCM helicase in archaea and eukarya. The methods developed here for N-mtMCM solution structure modeling should be suitable for other large protein complexes with unstructured flexible regions.
机译:认为微染色体维持(MCM)蛋白在古细菌和真核生物中起复制性解旋酶的作用。在这项工作中,我们使用小角度中子散射(SANS)在存在DNA和不存在DNA的情况下,确定了古细菌甲烷甲烷嗜热自养菌(N-mtMCM)的MCM复合物N末端部分的溶液结构。 N-mtMCM是一种多聚体蛋白质复合物,由12个单体组成,每个单体包含三个不同的域和两个非结构化区域。使用结合了现代力场和蒙特卡洛方法的全原子方法,允许每个单体的非结构化区域独立变化,我们为该复合物生成了生物学相关结构的集合。对与SANS数据最一致的结构子集的检查显示,N-mtMCM的三个域之间可能发生较大的运动。此外,DNA结合后SANS曲线的变化可能与特定N-mtMCM域的运动有关。这些结果为以前报道的生化观察提供了结构上的支持,即在古细菌和真核生物中激活MCM解旋酶需要大的域运动。此处开发的用于N-mtMCM溶液结构建模的方法应适用于具有非结构化柔性区域的其他大型蛋白质复合物。

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