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Order-disorder transition of intrinsically disordered kinase inducible transactivation domain of CREB

机译:CREB的本质无序激酶诱导型转发结构域的订单紊乱转变

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摘要

Transcription factor cyclic Adenosine monophosphate response-element binding protein plays a critical role in the cyclic AMP response pathway via its intrinsically disordered kinase inducible transactivation domain (KID). KID is one of the most studied intrinsically disordered proteins (IDPs), although most previous studies focus on characterizing its disordered state structures. An interesting question that remains to be answered is how the order-disorder transition occurs at experimental conditions. Thanks to the newly developed IDP-specific force field ff 14IDPSFF, the quality of conformer sampling for IDPs has been dramatically improved. In this study, molecular dynamics (MD) simulations were used to study the order-to-disorder transition kinetics of KID based on the good agreement with the experiment on its disordered-state properties. Specifically, we tested four force fields, ff 99SBildn, ff 99IDPs, ff 14IDPSFF, and ff 14IDPs in the simulations of KID and found that ff 14IDPSFF can generate more diversified disordered conformers and also reproduce more accurate experimental secondary chemical shifts. Kinetics analysis of MD simulations demonstrates that the order-disorder transition of KID obeys the first-order kinetics, and the transition nucleus is I127/ L128/ L141. The possible transition pathways from the nucleus to the last folded residues were identified as I127-R125-L138-L141-S143-A145 and L128-R125-L138-L141-S143-A145 based on a residue-level dynamical network analysis. These computational studies not only provide testable prediction/ hypothesis on the order-disorder transition of KID but also confirm that the ff 14IDPSFF force field can be used to explore the correlation between the structure and function of IDPs. Published by AIP Publishing.
机译:转录因子环腺苷一磷酸响应 - 元素结合蛋白通过其本质上无序的激酶诱导的转移结构域(KID)在循环AMP响应途径中起重要作用。孩子是学习的本质无序蛋白质(IDPS)中的一种,尽管最先前的研究专注于表征其无序状态结构。一个有趣的问题仍有待解答的是如何在实验条件下发生秩序障碍转型。由于新开发的IDP特定力场FF 14IDPSFF,IDPS的适应材料采样质量已显着提高。在该研究中,用于基于对其无序状态性质的实验的良好协议来研究儿童的秩序转变动力学的分子动力学(MD)模拟。具体而言,我们测试了四个力场,FF 99sbildn,FF 99idps,FF 14IDPSFF和FF 14idps在孩子的模拟中,发现FF 14idPSFF可以产生更多样化的无序化同胞,并且还可以再现更准确的实验二次化学转换。 MD模拟的动力学分析表明,儿童抚慰的一阶动力学和过渡核的秩序紊乱转变为I127 / L128 / L141。基于残留水平的动态网络分析,将来自核从核到最后折叠残基的可能的过渡途径被鉴定为I127-R125-L138-L141-S143-A141-S143-A145和L128-R125-L141-S143-A145。这些计算研究不仅为孩子的秩序紊乱转变提供可测试的预测/假设,还可以确认FF 14IDPSFF力字段可用于探索IDPS结构和功能之间的相关性。通过AIP发布发布。

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  • 来源
    《The Journal of Chemical Physics》 |2018年第22期|共9页
  • 作者单位

    Shanghai Jiao Tong Univ Sch Life Sci &

    Biotechnol Natl Expt Teaching Ctr Life Sci &

    Biotechnol Dept State Key Lab Microbial Metab SJTU Yale Joint Ctr 800 Dongchuan Rd Shanghai 200240 Peoples R China;

    Shanghai Jiao Tong Univ Sch Life Sci &

    Biotechnol Natl Expt Teaching Ctr Life Sci &

    Biotechnol Dept State Key Lab Microbial Metab SJTU Yale Joint Ctr 800 Dongchuan Rd Shanghai 200240 Peoples R China;

    Shanghai Jiao Tong Univ Sch Life Sci &

    Biotechnol Natl Expt Teaching Ctr Life Sci &

    Biotechnol Dept State Key Lab Microbial Metab SJTU Yale Joint Ctr 800 Dongchuan Rd Shanghai 200240 Peoples R China;

    Univ Calif Irvine Dept Mol Biol &

    Biochem Irvine CA 92697 USA;

    Shanghai Jiao Tong Univ Sch Life Sci &

    Biotechnol Natl Expt Teaching Ctr Life Sci &

    Biotechnol Dept State Key Lab Microbial Metab SJTU Yale Joint Ctr 800 Dongchuan Rd Shanghai 200240 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
  • 关键词

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