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多应激响应 WRKY TF-DNA 复合物的结构建模和分子动力学研究,以阐明其在鹰嘴豆应激信号机制中的作用。

Structural modelling and molecular dynamics of a multi-stress responsive WRKY TF-DNA complex towards elucidating its role in stress signalling mechanisms in chickpea.

机构信息

a Division of Plant Biotechnology , ICAR-Indian Institute of Pulses Research , Kanpur , India.

b Department of Computational Biology and Bioinformatics , JIBB, SHUATS , Allahabad , India.

出版信息

J Biomol Struct Dyn. 2018 Jul;36(9):2279-2291. doi: 10.1080/07391102.2017.1349690. Epub 2017 Jul 28.

DOI:10.1080/07391102.2017.1349690
PMID:28679078
Abstract

Chickpea is a premier food legume crop with high nutritional quality and attains prime importance in the current era of 795 million people being undernourished worldwide. Chickpea production encounters setbacks due to various stresses and understanding the role of key transcription factors (TFs) involved in multiple stresses becomes inevitable. We have recently identified a multi-stress responsive WRKY TF in chickpea. The present study was conducted to predict the structure of WRKY TF to identify the DNA-interacting residues and decipher DNA-protein interactions. Comparative modelling approach produced 3D model of the WRKY TF with good stereochemistry, local/global quality and further revealed W19, R20, K21, and Y22 motifs within a vicinity of 5 Å to the DNA amongst R18, G23, Q24, K25, Y36, Y37, R38 and K47 and these positions were equivalent to the 2LEX WRKY domain of Arabidopsis. Molecular simulations analysis of reference protein -PDB ID 2LEX, along with Car-WRKY TF modelled structure with the DNA coordinates derived from PDB ID 2LEX and docked using HADDOCK were executed. Root Mean Square (RMS) Deviation and RMS Fluctuation values yielded consistently stable trajectories over 50 ns simulation. Strengthening the obtained results, neither radius of gyration, distance and total energy showed any signs of DNA-WRKY complex falling apart nor any significant dissociation event over 50 ns run. Therefore, the study provides first insights into the structural properties of multi-stress responsive WRKY TF-DNA complex in chickpea, enabling genome wide identification of TF binding sites and thereby deciphers their gene regulatory networks.

摘要

鹰嘴豆是一种具有高营养价值的主要食用豆科作物,在当前全球有 7.95 亿人营养不良的时代,它具有重要地位。鹰嘴豆生产因各种胁迫而受挫,因此了解参与多种胁迫的关键转录因子(TFs)的作用变得必不可少。我们最近在鹰嘴豆中鉴定出一种多胁迫响应 WRKY TF。本研究旨在预测 WRKY TF 的结构,以鉴定与 DNA 相互作用的残基并破译 DNA-蛋白质相互作用。比较建模方法产生了 WRKY TF 的 3D 模型,具有良好的立体化学、局部/全局质量,并且进一步在距离 DNA 约 5Å 的范围内揭示了 R18、G23、Q24、K25、Y36、Y37、R38 和 K47 之间的 W19、R20、K21 和 Y22 基序,这些位置与拟南芥的 2LEX WRKY 结构域相当。对参考蛋白-PDB ID 2LEX 以及用从 PDB ID 2LEX 衍生的 DNA 坐标建模的 Car-WRKY TF 结构进行分子模拟分析,并使用 HADDOCK 对接。根均方偏差(RMS)和均方根波动值在 50ns 模拟过程中产生了一致稳定的轨迹。加强获得的结果,无论是旋转半径、距离还是总能量,都没有任何迹象表明 DNA-WRKY 复合物解体,也没有在 50ns 运行过程中发生任何显著的解离事件。因此,该研究首次提供了关于鹰嘴豆中多胁迫响应 WRKY TF-DNA 复合物结构特性的见解,从而能够在全基因组范围内识别 TF 结合位点,并破译它们的基因调控网络。

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