Ma Jian, Yang Yujie, Luo Wei, Yang Congcong, Ding Puyang, Liu Yaxi, Qiao Linyi, Chang Zhijian, Geng Hongwei, Wang Penghao, Jiang Qiantao, Wang Jirui, Chen Guoyue, Wei Yuming, Zheng Youliang, Lan Xiujin
Triticeae Research Institute, Sichuan Agricultural University, Chengdu, Sichuan, China.
Shanxi Key Laboratory of Crop Genetics and Molecular Improvement, Institute of Crop Science, Shanxi Academy of Agricultural Sciences, Taiyuan, China.
PLoS One. 2017 Jul 25;12(7):e0181443. doi: 10.1371/journal.pone.0181443. eCollection 2017.
The MADS-box genes encode transcription factors with key roles in plant growth and development. A comprehensive analysis of the MADS-box gene family in bread wheat (Triticum aestivum) has not yet been conducted, and our understanding of their roles in stress is rather limited. Here, we report the identification and characterization of the MADS-box gene family in wheat. A total of 180 MADS-box genes classified as 32 Mα, 5 Mγ, 5 Mδ, and 138 MIKC types were identified. Evolutionary analysis of the orthologs among T. urartu, Aegilops tauschii and wheat as well as homeologous sequences analysis among the three sub-genomes in wheat revealed that gene loss and chromosomal rearrangements occurred during and/or after the origin of bread wheat. Forty wheat MADS-box genes that were expressed throughout the investigated tissues and development stages were identified. The genes that were regulated in response to both abiotic stresses (i.e., phosphorus deficiency, drought, heat, and combined drought and heat) and biotic stresses (i.e., Fusarium graminearum, Septoria tritici, stripe rust and powdery mildew) were detected as well. A few notable MADS-box genes were specifically expressed in a single tissue and those showed relatively higher expression differences between the stress and control treatment. The expression patterns of considerable MADS-box genes differed from those of their orthologs in Brachypodium, rice, and Arabidopsis. Collectively, the present study provides new insights into the possible roles of MADS-box genes in response to stresses and will be valuable for further functional studies of important candidate MADS-box genes.
MADS盒基因编码在植物生长和发育中起关键作用的转录因子。尚未对面包小麦(普通小麦)中的MADS盒基因家族进行全面分析,我们对其在胁迫中的作用了解相当有限。在此,我们报告了小麦中MADS盒基因家族的鉴定和特征。共鉴定出180个MADS盒基因,分为32个Mα、5个Mγ、5个Mδ和138个MIKC类型。对乌拉尔图小麦、节节麦和小麦之间的直系同源基因进行进化分析,以及对小麦三个亚基因组之间的同源序列进行分析,结果表明在面包小麦起源期间和/或之后发生了基因丢失和染色体重排。鉴定出40个在整个研究组织和发育阶段都表达的小麦MADS盒基因。还检测到了响应非生物胁迫(即缺磷、干旱、高温以及干旱和高温复合胁迫)和生物胁迫(即禾谷镰刀菌、小麦叶枯病菌、条锈病和白粉病)而被调控的基因。少数显著的MADS盒基因在单一组织中特异性表达,并且在胁迫和对照处理之间表现出相对较高的表达差异。相当一部分MADS盒基因的表达模式与其在短柄草、水稻和拟南芥中的直系同源基因不同。总体而言,本研究为MADS盒基因在响应胁迫中的可能作用提供了新见解,对重要候选MADS盒基因的进一步功能研究具有重要价值。