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首页> 外文期刊>Frontiers in Plant Science >Structural and Functional Insights into WRKY3 and WRKY4 Transcription Factors to Unravel the WRKY–DNA (W-Box) Complex Interaction in Tomato ( Solanum lycopersicum L.). A Computational Approach
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Structural and Functional Insights into WRKY3 and WRKY4 Transcription Factors to Unravel the WRKY–DNA (W-Box) Complex Interaction in Tomato ( Solanum lycopersicum L.). A Computational Approach

机译:对WRKY3和WRKY4转录因子的结构和功能洞察力,以阐明番茄( Solanum lycopersicum L.)中WRKY-DNA(W-Box)复合物的相互作用。一种计算方法

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The WRKY transcription factors (TFs), play crucial role in plant defense response against various abiotic and biotic stresses. The role of WRKY3 and WRKY4 genes in plant defense response against necrotrophic pathogens is well-reported. However, their functional annotation in tomato is largely unknown. In the present work, we have characterized the structural and functional attributes of the two identified tomato WRKY transcription factors, WRKY3 (SlWRKY3), and WRKY4 (SlWRKY4) using computational approaches. Arabidopsis WRKY3 (AtWRKY3: NP_178433) and WRKY4 (AtWRKY4: NP_172849) protein sequences were retrieved from TAIR database and protein BLAST was done for finding their sequential homologs in tomato. Sequence alignment, phylogenetic classification, and motif composition analysis revealed the remarkable sequential variation between, these two WRKYs. The tomato WRKY3 and WRKY4 clusters with Solanum pennellii showing the monophyletic origin and evolution from their wild homolog. The functional domain region responsible for sequence specific DNA-binding occupied in both proteins were modeled [using AtWRKY4 (PDB ID:1WJ2) and AtWRKY1 (PDBID:2AYD) as template protein structures] through homology modeling using Discovery Studio 3.0. The generated models were further evaluated for their accuracy and reliability based on qualitative and quantitative parameters. The modeled proteins were found to satisfy all the crucial energy parameters and showed acceptable Ramachandran statistics when compared to the experimentally resolved NMR solution structures and/or X-Ray diffracted crystal structures (templates). The superimposition of the functional WRKY domains from SlWRKY3 and SlWRKY4 revealed remarkable structural similarity. The sequence specific DNA binding for two WRKYs was explored through DNA-protein interaction using Hex Docking server. The interaction studies found that SlWRKY4 binds with the W-box DNA through WRKYGQK with Tyr~(408), Arg~(409), and Lys~(419)with the initial flanking sequences also get involved in binding. In contrast, the SlWRKY3 made interaction with RKYGQK along with the residues from zinc finger motifs. Protein-protein interactions studies were done using STRING version 10.0 to explore all the possible protein partners involved in associative functional interaction networks. The Gene ontology enrichment analysis revealed the functional dimension and characterized the identified WRKYs based on their functional annotation.
机译:WRKY转录因子(TFs)在针对各种非生物和生物胁迫的植物防御反应中起着至关重要的作用。 WRKY3和WRKY4基因在植物防御坏死性病原体的防御反应中的作用已有很好的报道。但是,它们在番茄中的功能注释在很大程度上是未知的。在目前的工作中,我们已使用计算方法对两个鉴定出的番茄WRKY转录因子WRKY3(SlWRKY3)和WRKY4(SlWRKY4)的结构和功能特性进行了表征。从TAIR数据库检索拟南芥WRKY3(AtWRKY3:NP_178433)和WRKY4(AtWRKY4:NP_172849)蛋白序列,并进行蛋白BLAST以发现其在番茄中的序列同源物。序列比对,系统发育分类和基序组成分析揭示了这两个WRKY之间的显着序列差异。番茄WRKY3和WRKY4与Pennellii茄簇在一起,显示了其野生同源物的单系起源和进化。通过使用Discovery Studio 3.0的同源性建模,对负责两种蛋白质中序列特异性DNA结合的功能域区域进行了建模[使用AtWRKY4(PDB ID:1WJ2)和AtWRKY1(PDBID:2AYD)作为模板蛋白质结构]。根据定性和定量参数,进一步评估生成的模型的准确性和可靠性。发现与经过实验解析的NMR溶液结构和/或X射线衍射晶体结构(模板)相比,建模的蛋白质可以满足所有关键的能量参数,并显示出可接受的Ramachandran统计数据。来自SlWRKY3和SlWRKY4的功能性WRKY结构域的重叠显示了显着的结构相似性。使用Hex Docking服务器通过DNA-蛋白质相互作用探索了两个WRKY的序列特异性DNA结合。相互作用研究发现,SlWRKY4通过带有Tyr〜(408),Arg〜(409)和Lys〜(419)的WRKYGQK与W-box DNA结合,初始侧翼序列也参与了结合。相反,SlWRKY3与RKYGQK以及锌指基序中的残基相互作用。使用STRING 10.0版进行了蛋白质间相互作用研究,以探索参与相关功能相互作用网络的所有可能的蛋白质伴侣。基因本体富集分析揭示了功能维度,并基于其功能注释对鉴定出的WRKY进行了表征。

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