[1]Dual transcriptome analysis reveals insights into the response to Rice black-streaked dwarf virus in maize. Zhou, Yu,Duan, Canxing,Hao, Zhuanfang,Li, Mingshun,Yong, Hongjun,Zhang, Degui,Zhang, Shihuang,Weng, Jianfeng,Li, Xinhai,Zhou, Yu,Xu, Zhennan,Wang, Zhenhua,Chen, Yanping,Meng, Qingchang,Wu, Jirong.
[2]Rice black-streaked dwarf virus P10 induces membranous structures at the ER and elicits the unfolded protein response in Nicotiana benthamiana. Sun, Zongtao,Xie, Li,Sun, Liying,Li, Junmin,Wang, Xu,Chen, Jianping,Yang, Di,Zhang, Shanglin,Zhu, Qisong. 2013
[3]Nonstructural protein P7-2 encoded by Rice black-streaked dwarf virus interacts with SKP1, a core subunit of SCF ubiquitin ligase. Wang, Qian,Wang, Qian,Tao, Tao,Han, Yanhong,Chen, Xiangru,Fan, Zaifeng,Li, Dawei,Yu, Jialin,Han, Chenggui,Wang, Qian,Tao, Tao,Han, Yanhong,Chen, Xiangru,Fan, Zaifeng,Li, Dawei,Yu, Jialin,Han, Chenggui. 2013
[4]Structure and components of the globular and filamentous viroplasms induced by Rice black-streaked dwarf virus. Xie, Li,Lv, Ming-fang,Song, Xi-Jiao,Yang, Jian,Li, Jing,Sun, Zong-Tao,Chen, Jian-Ping,Zhang, Heng-Mu,Lv, Ming-fang,Chen, Jian-Ping,Zhang, Ying-Yi. 2017
[5]Development and use of three monoclonal antibodies for the detection of rice black-streaked dwarf virus in field plants and planthopper vectors. Wu, Jianxiang,Ni, Yuequn,Liu, Huan,Rao, Lixia,Zhou, Xueping,Zhou, Yijun. 2013
[6]Bacterial microbiota in small brown planthopper populations with different rice viruses. Li, Shuo,Zhou, Changwei,Chen, Guangyi,Zhou, Yijun. 2017
[7]A novel, in vivo, indoor method to preserve rice black-streaked dwarf virus in small brown planthopper using wheat seedling as a bridge host. Ren, Chunmei,Cheng, Zhaobang,Yang, Liu,Miao, Qian,Fan, Yongjian,Zhou, Yijun.
[8]Whole-genome expression analysis of Rice black-streaked dwarf virus in different plant hosts and small brown planthopper. Xu, Qiufang,Ni, Haiping,Zhang, Jinfeng,Lan, Ying,Ren, Chunmei,Zhou, Yijun,Xu, Qiufang,Lan, Ying,Ren, Chunmei,Zhou, Yijun,Ni, Haiping.
[9]A simplified method for simultaneous detection of Rice stripe virus and Rice black-streaked dwarf virus in insect vector. Li, Shuo,Wang, Xi,Ji, Yinghua,Zhou, Yijun,Wang, Xi,Xu, Jianxiang.
[10]Studies on the epidemiology and yield losses from rice black-streaked dwarf disease in a recent epidemic in Zhejiang province, China. Wang, H. -D.,Jiang, X. -H.,Chen, J. -P.,Wang, A. -G.,Adams, M. J..
[11]The Complete Genome Sequence of Two Isolates of Southern rice black-streaked dwarf virus, a New Member of the Genus Fijivirus. Wang, Qiang,Zhou, Guo-Hui,Yang, Jian,Zhang, Heng-Mu,Chen, Jian-Ping,Adams, Michael J..
[12]Construction and characterization of a bacterial artificial chromosome library of the maize inbred line Qi319. Mu, Chun Hua,Zhang, Fa Jun,Li, Wen Cai,Lu, Shou Ping,Meng, Zhao Dong,Liu, Xia,Mu, Chun Hua,Liu, Xia,Yang, Yu,Li, Guang Cun. 2016
[13]Genome-wide high-resolution mapping of DNA methylation identifies epigenetic variation across embryo and endosperm in Maize (Zea may). Wang, Pengfei,Ma, Chuanxi,Wang, Pengfei,Xia, Han,Zhang, Ye,Zhao, Shuzhen,Zhao, Chuanzhi,Hou, Lei,Li, Changsheng,Li, Aiqin,Wang, Xingjun. 2015
[14]ZmFKBP20-1 improves the drought and salt tolerance of transformed Arabidopsis. Yu, Yanli,Li, Yanjiao,Zhao, Meng,Li, Wencai,Sun, Qi,Li, Wenlan,Meng, Zhaodong,Jia, Fengjuan,Jia, Fengjuan,Li, Nana. 2017
[15]Effects of pollination-prevention on leaf senescence and post-silking nitrogen accumulation and remobilization in maize hybrids released in the past four decades in China. Guo, Song,Chen, Fanjun,Yuan, Lixing,Mi, Guohua,Guo, Song.
[16]Determination of 16 Mycotoxins in Maize by Ultrahigh-Performance Liquid Chromatography-Tandem Mass Spectrometry. Li, Xia,Liu, Bin,Wang, Fengen,Ma, Xinfeng,Li, Zengmei,Guo, Dongliang,Wang, Yutao,Deng, Ligang,Zhang, Shuqiu,Wan, Fachun. 2018
[17]Meta-analysis of constitutive QTLs for disease resistance in maize and its synteny conservation in the rice genome. Zhao, L.,Wang, Q. Y.,Liu, H. J.,Zhang, C. X.,Li, X. H.. 2015
[18]Genome-wide identification, expression analysis of auxin-responsive GH3 family genes in maize (Zea mays L.) under abiotic stresses. Feng, Shangguo,Yang, Yanjun,Xu, Mingfeng,Wang, Huizhong,Shen, Chenjia,Yue, Runqing,Zhang, Lei. 2015
[19]Silver nanoparticles deteriorate the mutual interaction between maize (Zea mays L.) and arbuscular mycorrhizal fungi: a soil microcosm study. Cao, Jiling,Feng, Youzhi,Lin, Xiangui,Cao, Jiling,Feng, Youzhi,Lin, Xiangui,Cao, Jiling,Feng, Youzhi,Lin, Xiangui,Cao, Jiling,He, Shiying. 2017
[20]The changes of organelle ultrastructure and Ca2+ homeostasis in maize mesophyll cells during the process of drought-induced leaf senescence. Ma, Yuan-Yuan,Guo, Xiu-Lin,Liu, Zi-Hui,Ma, Yuan-Yuan,Shao, Hong-Bo,Shao, Hong-Bo,Liu, Bin-Hui. 2011