数字农科院2.0

Characterization of Ethylene Receptors and Their Interactions with GmTPR-A Novel Tetratricopeptide Repeat Protein (TPR) in Soybean (Glycine max L.)

文献类型: 外文期刊

作者: Niu Yan-yan;Chen Xue-ping;Niu Yan-yan;Chen Ming;Ma You-zhi

作者机构:

关键词: soybean;Arabidopsis;ethylene receptor;TPR protein

期刊名称: JOURNAL OF INTEGRATIVE AGRICULTURE

ISSN: 2095-3119

年卷期: 2013 年 12 卷 4 期

页码:

收录情况: SCI

摘要: Ethylene receptors play important roles not only in regulation of growth and development but also in response to environmental stimuli of plants. However, there are few reports on ethylene receptors in soybean. In this article, putative ethylene receptors of soybean were searched from soybean genomic database (http://www.phytozome.net/search.php) and analyzed. The ethylene receptor gene family in soybean comprising eight members, designated as GmERS1-1, GmERS1-2, GmETR1-1, GmETR1-2, GmETR2-1, GmETR2-2, GmEIN4-1, and GmEIN4-2 corresponding with their homologous genes in Arabidopsis, were isolated and analyzed. Phylogenetic analysis indicated that the eight soybean ethylene receptors (SERs) were in two subfamilies and further divided into four groups, viz., groups I (GmERS1-1 and GmERS1-2), II (GmETR1-1 and GmETR1-2), VI (GmETR2-1 and GmETR2-2), and VII (GmEIN4-1 and GmEIN4-2). Protein structure of the members in groups I and II from subfamily I were more conserved than the members in other two groups from subfamily II. Expression patterns of the SERs were compared with the homologous genes in Arabidopsis. The results demonstrated that expression patterns of the SERs differed from Arabidopsis members in the same group, suggesting that SERs are involved in different signal pathways compared to ethylene receptors in Arabidopsis. Promoter analysis showed that the sequences of the members in each group were different from each other, and some specific binding elements of transcription factors detected in promoter sequences might explain the differences between the members in the same group. A novel soybean TPR protein (tetratricopeptide repeat protein), GmTPR, was identified to interact with GmETR1-1, apparently an important ethylene receptor in ethylene signaling pathway in soybean. This suggested that GmTPR might be a novel downstream component of the ethylene signaling pathway.

分类号:

  • 相关文献

[1]四种甘蓝雄性不育类型基因芯片表达谱分析. 康俊根,王晓武,方智远. 2007

[2]Auxin-Mediated Statolith Production For Root G.ravitropism. Zhang, Yuzhou,Yang, Zuoren,Pang, Chaoyou,Yang, Zuoren,Ma, Xiongfeng,Yu, Jianing,Friml, Jiri,Zhang, Yuzhou,Ma, Xiongfeng,He, Peng,Xiao, Guanghui,Wang, Guodong. 2019

[3]Cloning And Characterization Of A N.ovel Gigantea Gene In S weet Potato. Yan, Hui,Wang, Xin,Tang, Wei,Park, Sung-Chul,Kwak, Sang-Soo,Zhang, Yun-gang,Liu, Ya-ju,Li, Qiang,Kou, Meng,Su, Zai-xing,Park, Sung-Chul,Ma, Dai-fu. 2017

[4]Characterization of Tomato Transcription Factor WUSCHEL and Functional Study in Arabidopsis. Wang Xiang,Wang Xin-guo,Ren Jiang-ping,Ma Ying,Yin Jun,Wang Xiang. 2012

[5]Characterization and functional analysis of four HYH splicing variants in Arabidopsis hypocotyl elongation. Li, Chen,Wang, Xuanbin,Li, Chen,Zheng, Lanlan,Zhang, Jingxuan,Lv, Yanxia,Zhang, Yonghong,Liu, Jianping,Palfalvi, Gergo,Wang, Guodong.

[6]Regulation of Leaf Morphology by MicroRNA394 and its Target LEAF CURLING RESPONSIVENESS. Song, Jian Bo,Huang, Si Qi,Yang, Zhi Min,Dalmay, Tamas,Huang, Si Qi. 2012

[7]Genetic discovery for oil production and quality in sesame. Zhang, Yanxin,Wang, Linhai,Li, Donghua,Zhu, Xiaodong,Zhu, Xiaofeng,Gao, Yuan,Zhang, Xiurong,Liu, Kunyan,Feng, Qi,Zhao, Yan,Zhao, Qiang,Li, Wenjun,Fan, Danlin,Lu, Yiqi,Zhou, Congcong,Zhu, Chuanrang,Tian, Qilin,Wen, Ziruo,Weng, Qijun,Han, Bin,Huang, Xuehui,Zhang, Xianmei,Liu, Lifeng,Tang, Xiumei,Zhong, Ruichun.

[8]The Blue Light-Dependent Phosphorylation of the CCE Domain Determines the Photosensitivity of Arabidopsis CRY2. Wang, Qin,Wang, Qin,He, Reqing,Liu, Xuanming,Zhao, Xiaoying,Barshop, William D.,Vashisht, Ajay A.,Wohlschlegel, James A.,Bian, Mingdi,Liu, Bin,Wang, Qin,Yu, Xuhong,Nguyen, Paula,Lin, Chentao. 2015

[9]The ARID-HMG DNA-binding protein AtHMGB15 is required for pollen tube growth in Arabidopsis thaliana. Xia, Chuan,Wang, Yu-Jiao,Liang, Yan,Niu, Qian-Kun,Tan, Xiao-Yun,Chu, Liang-Cui,Chen, Li-Qun,Zhang, Xue-Qin,Ye, De,Xia, Chuan,Ye, De.

[10]Arabidopsis C3H14 and C3H15 have overlapping roles in the regulation of secondary wall thickening and anther development. Chai, Guohua,Zhu, Ming,Yu, Li,Qi, Guang,Tang, Xianfeng,Wang, Zengguang,Cao, Yingping,Yu, Changjiang,Zhou, Gongke,Kong, Yingzhen.

[11]NPR1-dependent salicylic acid signaling is not involved in elevated CO2-induced heat stress tolerance in Arabidopsis thaliana. Li, Xin,Ahammed, Golam Jalal,Li, Xin,Yu, Jingquan,Shi, Kai. 2015

[12]Target-site basis for resistance to imazethapyr in redroot amaranth (Amaranthus retroflexus L.). Huang, Zhaofeng,Chen, Jinyi,Zhang, Chaoxian,Huang, Hongjuan,Wei, Shouhui,Chen, Jingchao,Wang, Xu,Zhou, Xinxin.

[13]Ubiquitin-specific proteases UBP12 and UBP13 act in circadian clock and photoperiodic flowering regulation in Arabidopsis. Cui, Xia,Lu, Falong,Xue, Yongming,Kang, Yanyuan,Zhang, Shuaibin,Qiu, Qi,Cui, Xiekui,Zheng, Shuzhi,Cao, Xiaofeng,Li, Yue,Xu, Xiaodong,Xue, Yongming,Kang, Yanyuan,Zhang, Shuaibin,Qiu, Qi,Cui, Xiekui,Liu, Bin.

[14]Cloning and characterization of a putative 12-oxophytodienoic acid reductase cDNA induced by osmotic stress in roots of foxtail millet. Zhang, Jin-Peng,Liu, Ting-Song,Zheng, Jun,Jin, Zheng,Zhu, Yun,Guo, Jiu-Feng,Wang, Guo-Ying.

[15]Cysteine Protease 51 (CP51), an anther-specific cysteine protease gene, is essential for pollen exine formation in Arabidopsis. Yang, Yongxue,Dong, Caihua,Yu, Jingyin,Tong, Chaobo,Huang, Junyan,Liu, Shengyi,Yang, Yongxue,Shi, Lei,Li, Zhenbo.

[16]Phenolics from Ageratina adenophora Roots and Their Phytotoxic Effects on Arabidopsis thaliana Seed Germination and Seedling Growth. Ren, Hui,Wang, Jing,Xu, Qiao-Lin,Xie, Hai-Hui,Tan, Jian-Wen,Liu, Wan-Xue,Wan, Fang-Hao,Pei, Gang,Ren, Hui,Wang, Jing,Xu, Qiao-Lin.

[17]R2R3-MYB gene pairs in Populus: evolution and contribution to secondary wall formation and flowering time. Chai, Guohua,Wang, Zengguang,Tang, Xianfeng,Yu, Li,Qi, Guang,Wang, Dian,Yan, Xiaofei,Zhou, Gongke,Kong, Yingzhen.

[18]Mutation of the rice narrow leaf1 gene, which encodes a novel protein, affects vein patterning and polar auxin transport. Qi, Jing,Bu, Qingyun,Li, Shuyu,Chen, Qian,Sun, Jiaqiang,Liang, Wenxing,Zhou, Yihua,Chu, Chengcai,Chen, Jinfeng,Chen, Mingsheng,Li, Chuanyou,Qian, Qian,Qi, Jing,Li, Shuyu,Chen, Qian,Liang, Wenxing,Li, Xugang,Ren, Fugang,Palme, Klaus,Li, Xugang,Ren, Fugang,Palme, Klaus,Zhao, Bingran.

[19]Isolation and identification of a gene in response to rice blast disease in rice. Zheng, XW,Chen, XW,Zhang, XH,Lin, ZZ,Shang, JJ,Xu, JC,Zhai, WX,Zhu, LH.

[20]Cloning and expression analysis of a vacuolar Na+/H+ antiporter gene from Alfalfa. Yang, QC,Wu, MS,Wang, PQ,Kang, JM,Zhou, XL.

作者其他论文 更多>>