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拟南芥中WRKY基因家族的进化

WRKY gene family evolution in Arabidopsis thaliana.

作者信息

Wang Qishan, Wang Minghui, Zhang Xiangzhe, Hao Boji, Kaushik S K, Pan Yuchun

机构信息

School of Agriculture and Biology, Shanghai Jiao Tong University, Shanghai 200240, People's Republic of China.

出版信息

Genetica. 2011 Aug;139(8):973-83. doi: 10.1007/s10709-011-9599-4. Epub 2011 Jul 31.

DOI:10.1007/s10709-011-9599-4
PMID:21805321
Abstract

The Arabidopsis thaliana WRKY proteins are characterized by a sequence of 60 amino acids including WRKY domain. It is well established that these proteins are involved in the regulation of various physiological programs unique to plants including pathogen defense, senescence and response to environmental stresses, which attracts attention of the scientific community as to how this family might have evolved. We tried to satisfy this curiosity and analyze reasons for duplications of these gene sequences leading to their diversified gene actions. The WRKY sequences available in Arabidopsis thaliana were used to evaluate selection pressure following duplication events. A phylogenetic tree was constructed and the WRKY family was divided into five sub-families. After that, tests were conducted to decide whether positive or purified selection played key role in these events. Our results suggest that purifying selection played major role during the evolution of this family. Some amino acid changes were also detected in specific branches of phylogeny suggesting that relaxed constraints might also have contributed to functional divergence among sub-families. Sites relaxed from purifying selection were identified and mapped onto the structural and functional regions of the WRKY1 protein. These analyses will enhance our understanding of the precise role played by natural selection to create functional diversity in WRKY family.

摘要

拟南芥WRKY蛋白的特征是具有一段包含WRKY结构域的60个氨基酸的序列。众所周知,这些蛋白参与调控植物特有的各种生理程序,包括病原体防御、衰老以及对环境胁迫的响应,这引发了科学界对该家族可能如何进化的关注。我们试图满足这种好奇心,并分析这些基因序列重复导致其基因作用多样化的原因。利用拟南芥中可用的WRKY序列来评估复制事件后的选择压力。构建了系统发育树,并将WRKY家族分为五个亚家族。之后,进行测试以确定正向选择或纯化选择在这些事件中是否起关键作用。我们的结果表明,纯化选择在该家族的进化过程中起主要作用。在系统发育的特定分支中也检测到了一些氨基酸变化,这表明宽松的限制可能也促成了亚家族之间的功能分化。确定了从纯化选择中放松的位点,并将其映射到WRKY1蛋白的结构和功能区域上。这些分析将增进我们对自然选择在WRKY家族中创造功能多样性所起精确作用的理解。

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