Identification of candidate host-manipulating effector genes in Aphis gossypii (Hemiptera: Aphididae) using a combination of transcriptome, genome, and differential gene expression data.

IF 2.1 3区 农林科学 Q1 ENTOMOLOGY
Chaoyang Zhao, Nicholas Mueller, Isabella Owens, Raman Bansal, Alana L Jacobson
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引用次数: 0

Abstract

The cotton aphid, Aphis gossypii Glover, is an important plant disease vector and a highly polyphagous agricultural pest that feeds on a broad range of host plants. During feeding, its salivary glands serve as a route for the transmission of circulative plant viruses and produce a range of secretory proteins, called effectors, to modulate host cellular processes. To understand the molecular mechanisms underlying aphid-plant interactions, we developed a bioinformatics pipeline that incorporated the salivary gland transcriptome, genome, and head vs abdomen differential gene expression data to predict secretory protein-encoding genes enriched in the salivary glands of A. gossypii. Annotation of the 351 predicted genes showed that the most abundant functional categories were associated with cellular signaling and metabolism processes, and revealed that 98 genes were hemipteran-specific. Notably, 51 genes encode secretory proteins matching the putative saliva proteins identified in prior proteomics studies. Quantitative PCR analysis validated differential expression of 4 selected genes between heads and abdomens and indicated that alate adults exhibited the highest gene expression, suggesting these genes may play key roles in host colonization. Additionally, 25 genes showed sequence similarities to functionally characterized hemipteran effectors, with some appearing to form effector groups with distinct evolutionary patterns. Collectively, this study identified numerous putative plant-manipulating genes in A. gossypii and provided valuable insights into the mechanisms of aphid-plant interactions.

利用转录组、基因组和差异基因表达数据的组合鉴定棉蚜(半翅目:蚜科)候选宿主操纵效应基因。
棉蚜(Aphis gossypii Glover)是一种重要的植物病媒,是一种以多种寄主植物为食的高度多食性农业害虫。在取食过程中,其唾液腺作为循环植物病毒传播的途径,并产生一系列称为效应物的分泌蛋白,以调节宿主的细胞过程。为了了解蚜虫与植物相互作用的分子机制,我们建立了一个生物信息学管道,将唾液腺转录组、基因组和头部与腹部差异基因表达数据结合起来,预测棉蚜唾液腺中丰富的分泌蛋白编码基因。对351个预测基因的注释显示,最丰富的功能类别与细胞信号传导和代谢过程相关,并揭示了98个基因是半翼类特异性的。值得注意的是,51个基因编码的分泌蛋白与先前蛋白质组学研究中发现的假定唾液蛋白相匹配。定量PCR分析证实了4个选择的基因在头部和腹部的差异表达,表明alate成虫表达量最高,表明这些基因可能在寄主定殖中起关键作用。此外,有25个基因显示出与功能特征的偏激效应子序列相似,其中一些基因似乎形成了具有不同进化模式的效应子群。总的来说,本研究确定了棉蚜中许多可能的植物操纵基因,并为蚜虫与植物相互作用的机制提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Insect Science
Journal of Insect Science 生物-昆虫学
CiteScore
3.70
自引率
0.00%
发文量
80
审稿时长
7.5 months
期刊介绍: The Journal of Insect Science was founded with support from the University of Arizona library in 2001 by Dr. Henry Hagedorn, who served as editor-in-chief until his death in January 2014. The Entomological Society of America was very pleased to add the Journal of Insect Science to its publishing portfolio in 2014. The fully open access journal publishes papers in all aspects of the biology of insects and other arthropods from the molecular to the ecological, and their agricultural and medical impact.
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