期刊论文详细信息
Frontiers in Insect Science
RNA interference-mediated knockdown of genes involved in sugar transport and metabolism disrupts psyllid Bactericera cockerelli (Order: Hemiptera) gut physiology and results in high mortality
Insect Science
Mosharrof Hossain Mondal1  Judith K. Brown1  Neda Arad1  Nathaniel Ponvert1  Jorge R. Paredes-Montero2 
[1] School of Plant Sciences, The University of Arizona, Tucson, AZ, United States;School of Plant Sciences, The University of Arizona, Tucson, AZ, United States;Facultad de Ciencias de la Vida, Escuela Superior Politécnica del Litoral, ESPOL, Guayaquil, Guayas, Ecuador;
关键词: biopesticide;    citrus greening;    sugar metabolism;    sugar transport;    potato psyllid;    RNAi;   
DOI  :  10.3389/finsc.2023.1283334
 received in 2023-08-25, accepted in 2023-10-02,  发布年份 2023
来源: Frontiers
PDF
【 摘 要 】

IntroductionThe causal agent of zebra chip of potato and vein-greening diseases of tomato is "Candidatus Liberibacter solanacearum" (CLso), a fastidious bacterium transmitted by the potato psyllid. In the absence of disease-resistant cultivars, disease management has relied on minimizing vector population size to reduce CLso transmission, which requires frequent insecticide applications. There is growing interest in the use of RNA interference (RNAi) technology to supplant traditional insecticides with biopesticides. This requires knowledge of genes essential for insect livelihood whose knockdown leads to significant mortality or other phenotypes. Such candidate genes can be evaluated by reverse genetics approaches to further corroborate predicted gene function.MethodsHere, five potato psyllid genes involved in sugar homeostasis in the potato psyllid gut, α-glucosidase1 (AGLU1), aquaporin2 (AQP2), facilitated trehalose transporter1 (TRET1), Trehalase1 (TRE1), and Trehalase2 (TRE2), were investigated as candidates for effective gene silencing. Potato psyllid dsRNAs were designed to optimize knockdown of gene targets. Third instar PoP nymphs were given a 48-hr ingestion-access period (IAP) on individual or groups of dsRNA in 20% sucrose. Mortality was recorded 0, 3, 5, 7, and 9 days post-IAP. Gene knockdown was analyzed 9 days post-IAP by quantitative real-time reverse-transcriptase polymerase chain reaction amplification. ResultsThe individual or stacked dsRNA combinations resulted in 20-60% and 20-40% knockdown, respectively, while subsequent psyllid mortality ranged from 20-40% to >60% for single and stacked dsRNA combinations, respectively. Reverse genetics analysis showed that simultaneous knockdown of the five selected candidate genes with predicted functions in pathways involved in sugar-homeostasis, metabolism, and -transport yielded the highest mortality, when compared with single or combinations of targets. DiscussionResults confirmed the functions afforded by psyllid gut genes responsible for osmotic homeostasis and sugar metabolism/transport are essential for livelihood, identifying them as potentially lucrative RNAi biopesticide targets and highlighted the translational relevance of targeting multiple nodes in a physiological pathway simultaneously.

【 授权许可】

Unknown   
Copyright © 2023 Arad, Paredes-Montero, Mondal, Ponvert and Brown

【 预 览 】
附件列表
Files Size Format View
RO202311148836838ZK.pdf 1685KB PDF download
  文献评价指标  
  下载次数:6次 浏览次数:0次