Rapid gene expression change in a novel synthesized allopolyploid population of cultivated peanutxArachis doigoi cross by cDNA-SCoT and HFO-TAG technique

文献类型: 外文期刊

第一作者: Tang Rong-hua

作者: Tang Rong-hua;Jiang Jing;Xiong Fa-qian;Huang Zhi-peng;Wu Hai-ning;Gao Zhong-kui;Zhong Rui-chun;Han Zhu-qiang;He Xin-hua

作者机构:

关键词: peanut;allopolyploidy;gene expression;start codon-targeted polymorphism;high-frequency oligonucleotidetargeting active gene

期刊名称:JOURNAL OF INTEGRATIVE AGRICULTURE ( 影响因子:2.848; 五年影响因子:2.979 )

ISSN: 2095-3119

年卷期: 2017 年 16 卷 5 期

页码:

收录情况: SCI

摘要: Allopolyploidy has played an important role in plant evolution and heterosis. Recent studies indicate that the process of wide hybridization and (or) polyploidization may induce rapid and extensive genetic and epigenetic changes in some plant species. To better understand the, allopolyploidy evolutionism and the genetic mechanism of Arachis interspecific hybridization, this study was conducted to monitor the gene expression variation by cDNA start codon targeted polymorphism (cDNA-SCOT) and cDNA high-frequency oligonucleotide-targeting active gene (cDNA-HFO-TAG) techniques, from the hybrids (F-1) and newly synthesized allopolyploid generations (S-0-S-3) between tetraploid cultivated peanut Zhongkaihua 4 with diploid wild one Arachis doigoi. Rapid and considerable gene expression variations began as early as in the F-1 hybrid or immediately after chromosome doubling. Three types of gene expression changes were observed, including complete silence (gene from progenitors was not expressed in all progenies), incomplete silence (gene expressed only in some progenies) and new genes activation. Those silent genes mainly involved in RNA transcription, metabolism, disease resistance, signal transduction and unknown functions. The activated genes with known function were almost retroelements by cDNA-SCoT technique and all metabolisms by cDNA-HFO-TAG. These findings indicated that interspecific hybridization and ploidy change affected gene expression via genetic and epigenetic alterations immediately upon allopolyploid formation, and some obtained transcripts derived fragments (TDFs) probably could be used in the research of molecular mechanism of Arachis allopolyploidization which contribute to thwe genetic diploidization of newly formed allopolyploids. Our research is valuable for understanding of peanut evolution and improving the utilization of putative and beneficial genes from the wild peanut.

分类号:

  • 相关文献

[1]Cloning and characterization of SPL-family genes in the peanut (Arachis hypogaea L.). Li, M.,Zhao, S. Z.,Zhao, C. Z.,Zhang, Y.,Xia, H.,Wan, S. B.,Wang, X. J.,Lopez-Baltazar, J.. 2016

[2]Making the Bread: Insights from Newly Synthesized Allohexaploid Wheat. Li, Ai-Li,Geng, Shuai-Feng,Mao, Long,Zhang, Lian-Quan,Liu, Deng-Cai. 2015

[3]Transgenic Expression and Identification of Recombinant Human Proinsulin in Peanut. Zheng Ling,Wang Yu,Wan Shu-Bo,Peng Zhen-Ying,Bi Yu-Ping,Zheng Ling,Wang Yu,Bian Fei,Wan Shu-Bo,Peng Zhen-Ying,Zheng Ling,Wang Yu,Bian Fei,Wan Shu-Bo,Peng Zhen-Ying,Bi Yu-Ping,Jiao Qi-Qing,Qu Shu-Jie,Wan Shu-Bo,Bi Yu-Ping. 2016

[4]Transcriptome Analysis of Calcium and Hormone-Related Gene Expressions during Different Stages of Peanut Pod Development. Li, Yan,Meng, Jingjing,Yang, Sha,Guo, Feng,Zhang, Jialei,Geng, Yun,Cui, Li,Li, Xinguo,Wan, Shubo. 2017

[5]Calcium contributes to photoprotection and repair of photosystem II in peanut leaves during heat and high irradiance. Yang, Sha,Wang, Fang,Guo, Feng,Meng, Jing-Jing,Li, Xin-Guo,Yang, Sha,Guo, Feng,Meng, Jing-Jing,Li, Xin-Guo,Wan, Shu-Bo,Wang, Fang. 2015

[6]Cloning of Acyl-ACP thioesterase FatA from Arachis hypogaea L. and its expression in Escherichia coli. Chen, G.,Peng, Z. Y.,Xuan, N.,Zhang, Y.,Bi, Y. P.,Chen, G.. 2012

[7]Genome-Wide Identification and Comparative Analysis of Cytosine-5 DNA Methyltransferase and Demethylase Families in Wild and Cultivated Peanut. Wang, Pengfei,Gao, Chao,Bian, Xiaotong,Zhao, Shuzhen,Zhao, Chuanzhi,Xia, Han,Song, Hui,Hou, Lei,Wan, Shubo,Wang, Xingjun. 2016

[8]Peanut (Arachis hypogaea L.) Omics and Biotechnology in China. Wang, Xing-Jun,Xia, Han,Wan, Shu-Bo,Zhao, Chuan-Zhi,Li, Ai-Qin,Wang, Xing-Jun,Xia, Han,Wan, Shu-Bo,Zhao, Chuan-Zhi,Li, Ai-Qin,Wang, Xing-Jun,Xia, Han,Wan, Shu-Bo,Zhao, Chuan-Zhi,Li, Ai-Qin,Liu, Shuan-Tao. 2011

[9]Identification of Metabolites and Transcripts Involved in Salt Stress and Recovery in Peanut. Cui, Feng,Liu, Yiyang,Han, Yan,Wan, Shubo,Li, Guowei,Cui, Feng,Liu, Yiyang,Han, Yan,Wan, Shubo,Li, Guowei,Sui, Na,Liu, Shanshan,Duan, Guangyou. 2018

[10]Small RNA profiling and degradome analysis reveal regulation of microRNA in peanut embryogenesis and early pod development. Gao, Chao,Wang, Pengfei,Zhao, Shuzhen,Zhao, Chuanzhi,Xia, Han,Hou, Lei,Zhang, Ye,Li, Changsheng,Wang, Xingjun,Wang, Xingjun,Ju, Zheng. 2017

[11]Genome-Wide Dissection of the Heat Shock Transcription Factor Family Genes in Arachis. Wang, Pengfei,Song, Hui,Li, Changsheng,Li, Pengcheng,Li, Aiqin,Guan, Hongshan,Hou, Lei,Wang, Xingjun,Wang, Xingjun. 2017

[12]Identification and expression dynamics of three WUSCHEL related homeobox 13 (WOX13) genes in peanut. Wang, Pengfei,Li, Changsheng,Li, Cui,Zhao, Chuanzhi,Xia, Han,Zhao, Shuzhen,Hou, Lei,Gao, Chao,Wan, Shubo,Wang, Xingjun,Wang, Pengfei,Li, Changsheng,Li, Cui,Zhao, Chuanzhi,Xia, Han,Zhao, Shuzhen,Hou, Lei,Gao, Chao,Wan, Shubo,Wang, Xingjun.

[13]Comparative proteomics of peanut gynophore development under dark and mechanical stimulation. Sun, Yong,Wang, Qingguo,Li, Zhen,Hou, Lei,Liu, Wei,Dai, Shaojun,Sun, Yong.

[14]Transcriptome and Differential Expression Profiling Analysis of the Mechanism of Ca2+ Regulation in Peanut (Arachis hypogaea) Pod Development. Yang, Sha,Zhang, Jialei,Geng, Yun,Guo, Feng,Meng, Jingjing,Li, Xinguo,Li, Lin,Wang, Jianguo,Sui, Na,Wan, Shubo. 2017

[15]Diversity characterization and association analysis of agronomic traits in a Chinese peanut (Arachis hypogaea L.) mini-core collection. Jiang, Huifang,Huang, Li,Ren, Xiaoping,Chen, Yuning,Zhou, Xiaojing,Huang, Jiaquan,Lei, Yong,Yan, Liying,Wan, Liyun,Liao, Boshou,Xia, Youlin. 2014

[16]Mitochondrial alterations during Al-induced PCD in peanut root tips. Li, Wen,He, Hu-yi,Li, Chuang-zhen,He, Long-fei,He, Hu-yi.

[17]Comparative transcriptome analysis of aerial and subterranean pods development provides insights into seed abortion in peanut. Zhu, Wei,Chen, Xiaoping,Li, Haifen,Zhu, Fanghe,Hong, Yanbin,Liang, Xuanqiang,Varshney, Rajeev K..

[18]Peanut regeneration by somatic embryogenesis (SE), involving bulbil-like body (BLB), a new type of SE structure. Xu, Kedong,Liu, Kun,Tan, Guangxuan,Li, Chengwei,Huang, Bingyan,Qi, Feiyan,Zhang, Xinyou.

[19]Determination and Dissipation of Fipronil and Its Metabolites in Peanut and Soil. Li, Minghui,Li, Puyu,Wang, Lin,Feng, Mengyuan,Han, Lijun,Li, Minghui,Wang, Lin.

[20]Proteomic identification of gravitropic response genes in peanut gynophores. Li, Hai-Fen,Zhu, Fang-He,Zhu, Wei,Chen, Xiao-Ping,Hong, Yan-Bin,Liu, Hai-Yan,Liang, Xuan-Qiang,Li, He-Ying,Wu, Hong.

作者其他论文 更多>>