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对与c-Myc相互作用的锌指蛋白1(Miz-1)的结构见解揭示了DNA扫描和序列特异性结合所需的结构域。

Structural Insights into c-Myc-interacting Zinc Finger Protein-1 (Miz-1) Delineate Domains Required for DNA Scanning and Sequence-specific Binding.

作者信息

Bédard Mikaël, Roy Vincent, Montagne Martin, Lavigne Pierre

机构信息

Département de Biochimie, Institut de Pharmacologie de Sherbrooke, Faculté de Médecine et des Sciences de la Santé, Université de Sherbrooke, Sherbrooke J1H 5N4, Canada; Regroupement Stratégique sur la Fonction, la Structure, et l'Ingénierie des Protéines (PROTEO), Université Laval, Québec G1V 0A6, Canada; Groupe de Recherche Axé sur la Structure des Protéines (GRASP), McGill University, Montréal, Québec H3G 0B1, Canada.

Département de Biochimie, Institut de Pharmacologie de Sherbrooke, Faculté de Médecine et des Sciences de la Santé, Université de Sherbrooke, Sherbrooke J1H 5N4, Canada; Regroupement Stratégique sur la Fonction, la Structure, et l'Ingénierie des Protéines (PROTEO), Université Laval, Québec G1V 0A6, Canada; Groupe de Recherche Axé sur la Structure des Protéines (GRASP), McGill University, Montréal, Québec H3G 0B1, Canada.

出版信息

J Biol Chem. 2017 Feb 24;292(8):3323-3340. doi: 10.1074/jbc.M116.748699. Epub 2016 Dec 29.

Abstract

c-Myc-interacting zinc finger protein-1 (Miz-1) is a poly-Cys2His2 zinc finger (ZF) transcriptional regulator of many cell cycle genes. A Miz-1 DNA sequence consensus has recently been identified and has also unveiled Miz-1 functions in other cellular processes, underscoring its importance in the cell. Miz-1 contains 13 ZFs, but it is unknown why Miz-1 has so many ZFs and whether they recognize and bind DNA sequences in a typical fashion. Here, we used NMR to deduce the role of Miz-1 ZFs 1-4 in detecting the Miz-1 consensus sequence and preventing nonspecific DNA binding. In the construct containing the first 4 ZFs, we observed that ZFs 3 and 4 form an unusual compact and stable structure that restricts their motions. Disruption of this compact structure by an electrostatically mismatched A86K mutation profoundly affected the DNA binding properties of the WT construct. On the one hand, Miz1-4 was found to bind the Miz-1 DNA consensus sequence weakly and through ZFs 1-3 only. On the other hand, the four ZFs in the structurally destabilized Miz1-4 mutant bound to the DNA consensus with a 30-fold increase in affinity (100 nm). The formation of such a thermodynamically stable but nonspecific complex is expected to slow down the rate of DNA scanning by Miz-1 during the search for its consensus sequence. Interestingly, we found that the motif stabilizing the compact structure between ZFs 3 and 4 is conserved and enriched in other long poly-ZF proteins. As discussed in detail, our findings support a general role of compact inter-ZF structures in minimizing the formation of off-target DNA complexes.

摘要

c-Myc相互作用锌指蛋白1(Miz-1)是许多细胞周期基因的多聚Cys2His2锌指(ZF)转录调节因子。最近已鉴定出Miz-1的DNA序列共有序列,并且还揭示了Miz-1在其他细胞过程中的功能,突出了其在细胞中的重要性。Miz-1包含13个锌指,但尚不清楚为什么Miz-1有如此多的锌指,以及它们是否以典型方式识别并结合DNA序列。在这里,我们使用核磁共振来推断Miz-1的锌指1-4在检测Miz-1共有序列和防止非特异性DNA结合中的作用。在包含前4个锌指的构建体中,我们观察到锌指3和4形成了一种不寻常的紧密且稳定的结构,限制了它们的运动。通过静电不匹配的A86K突变破坏这种紧密结构,深刻影响了野生型构建体的DNA结合特性。一方面,发现Miz1-4仅通过锌指1-3与Miz-1 DNA共有序列弱结合。另一方面,结构不稳定的Miz1-4突变体中的四个锌指与DNA共有序列结合,亲和力增加了30倍(100 nM)。预计这种热力学稳定但非特异性复合物的形成会减缓Miz-1在寻找其共有序列过程中扫描DNA的速率。有趣的是,我们发现稳定锌指3和4之间紧密结构的基序在其他长多锌指蛋白中是保守且富集的。如详细讨论的那样,我们的发现支持紧密的锌指间结构在最小化脱靶DNA复合物形成中的一般作用。

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