Rice varietal resistance to the vector Sogatella furcifera hinders transmission of Southern rice black-streaked dwarf virus

被引:1
作者
Liu, Dandan [1 ]
Zhong, Yuqi [1 ]
Li, Zhengxi [2 ]
Hou, Maolin [1 ]
机构
[1] Chinese Acad Agr Sci, Inst Plant Protect, State Key Lab Biol Plant Dis & Insect Pests, Beijing, Peoples R China
[2] China Agr Univ, Coll Plant Protect, Beijing, Peoples R China
基金
中国国家自然科学基金;
关键词
Sogatella furcifera; Southern rice black-streaked dwarf virus (SRBSDV); electrical penetration graph (EPG); varietal insect resistance; probing behavior; virus transmission; FEEDING-BEHAVIOR; BROWN PLANTHOPPER; GRAIN APHID; DELPHACIDAE; HEMIPTERA; SPREAD; IDENTIFICATION; HOMOPTERA; HORVATH;
D O I
10.1002/ps.8072
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
BACKGROUND: The Southern rice black-streaked dwarf virus (SRBSDV) transmitted by Sogatella furcifera constitutes a threat to sustainable rice production. However, most rice varieties are highly vulnerable to SRBSDV, whereas the occurrence of the viral disease varies significantly under field conditions. This study aimed to evaluate the potential of rice varietal resistance to S. furcifera in reducing SRBSDV transmission. RESULTS: Among the five rice varieties, Zhongzheyou8 and Deyou108 exhibited high resistance to S. furcifera, Baixiangnuo33 was susceptible, and TN1 and Diantun502 were highly susceptible. The S. furcifera generally showed non-preference for and low feeding on the Zhongzheyou8 and Deyou108 plants, which may explain the resistance of these varieties to S. furcifera. Transmission of SRBSDV by S. furcifera was significantly impaired on the resistant varieties, both inoculation and acquisition rates were much lower on Zhongzheyou8 than on TN1. The short durations of S. furcifera salivation and phloem-related activities and the low S. furcifera feeding amount may explain the reduced SRBSDV inoculation and acquisition rates associated with Zhongzheyou8. Spearman's rank correlation revealed a significant negative correlation between S. furcifera resistance and SRBSDV transmission among the tested varieties. CONCLUSION: The results indicate that rice varietal resistance to the vector S. furcifera hinders SRBSDV transmission, which is largely associated with the host plant selection and feeding behaviors of the vector. The current findings shed light on the management of the SRBSDV viral disease through incorporation of S. furcifera resistant rice varieties in the management protocol. (c) 2024 Society of Chemical Industry.
引用
收藏
页码:3684 / 3690
页数:7
相关论文
共 50 条
[31]   The Complete Genome Sequence of Southern rice black-streaked dwarf virus Isolated from Vietnam [J].
Thi-Sau Dinh ;
Zhou, Cuiji ;
Cao, Xiuling ;
Han, Chenggui ;
Yu, Jialin ;
Li, Dawei ;
Zhang, Yongliang .
PLANT PATHOLOGY JOURNAL, 2012, 28 (04) :428-432
[32]   MicroRNAs responding to southern rice black-streaked dwarf virus infection and their target genes associated with symptom development in rice [J].
Xu, Donglin ;
Mou, Guiping ;
Wang, Kang ;
Zhou, Guohui .
VIRUS RESEARCH, 2014, 190 :60-68
[33]   Southern rice black-streaked dwarf virus induces incomplete autophagy for persistence in gut epithelial cells of its vector insect [J].
Zhang, Lu ;
Liu, Wenwen ;
Wu, Nan ;
Wang, Hui ;
Zhang, Zhongkai ;
Liu, Yule ;
Wang, Xifeng .
PLOS PATHOGENS, 2023, 19 (01)
[34]   Rice black-streaked dwarf virus Genome in China: Diversification, Phylogeny, and Selection [J].
Zhou, Yu ;
Zhang, Lin ;
Zhang, Xiaoming ;
Zu, Hongyue ;
Di, Hong ;
Dong, Ling ;
Liu, Xianjun ;
Zeng, Xing ;
Weng, Jianfeng ;
Wang, Zhenhua ;
Li, Xinhai .
PLANT DISEASE, 2017, 101 (09) :1588-1596
[35]   Phylogenetic and recombination analysis of rice black-streaked dwarf virus segment 9 in China [J].
Zhou, Yu ;
Weng, Jian-Feng ;
Chen, Yan-Ping ;
Liu, Chang-Lin ;
Han, Xiao-Hua ;
Hao, Zhuan-Fang ;
Li, Ming-Shun ;
Yong, Hong-Jun ;
Zhang, De-Gui ;
Zhang, Shi-Huang ;
Li, Xin-Hai .
ARCHIVES OF VIROLOGY, 2015, 160 (04) :1119-1123
[36]   Characteristics of siRNAs derived from Southern rice black-streaked dwarf virus in infected rice and their potential role in host gene regulation [J].
Xu, Donglin ;
Zhou, Guohui .
VIROLOGY JOURNAL, 2017, 14
[37]   Label-free quantitative proteomics analysis of Cytosinpeptidemycin responses in southern rice black-streaked dwarf virus-infected rice [J].
Yu, Lu ;
Wang, Wenli ;
Zeng, Song ;
Chen, Zhuo ;
Yang, Anming ;
Shi, Jing ;
Zhao, Xiaozhen ;
Song, Baoan .
PESTICIDE BIOCHEMISTRY AND PHYSIOLOGY, 2018, 147 :20-26
[38]   Functional analysis revealed the involvement of ZmABCB15 in resistance to rice black-streaked dwarf virus infection [J].
Yue, Runqing ;
Sun, Qi ;
Ding, Jianguo ;
Li, Wenlan ;
Li, Wencai ;
Zhao, Meng ;
Lu, Shouping ;
Zeng, Tingru ;
Zhang, Hua ;
Zhao, Suxian ;
Tie, Shuanggui ;
Meng, Zhaodong .
BMC PLANT BIOLOGY, 2022, 22 (01)
[39]   Efficient Inoculation of Rice black-streaked dwarf virus to Maize Using Laodelphax striatellus Fallen [J].
Miao, Hong-Qin ;
Di, Dian-Ping ;
Zhang, Ai-Hong ;
Lu, Yin-Gui ;
Tian, Lan-Zhi ;
Stewart, Lucy R. ;
Redinbaugh, Margaret G. .
JOURNAL OF PHYTOPATHOLOGY, 2015, 163 (7-8) :529-535
[40]   Quantitative detection of relative expression levels of the whole genome of Southern rice black-streaked dwarf virus and its replication in different hosts [J].
He, Peng ;
Liu, Jia-Ju ;
He, Ming ;
Wang, Zhen-Chao ;
Chen, Zhuo ;
Guo, Rong ;
Correll, James C. ;
Yang, Song ;
Song, Bao-An .
VIROLOGY JOURNAL, 2013, 10