Abstract
AbstractMost phloem-feeding insects face nutritional deficiency and rely on their intracellular symbionts to provide nutrients, and most of endosymbiont genomes have undergone reduction. However, the study of genome reduction processes of endosymbionts has been constrained by the limited availability of genome data from different insect lineages. The obligate relationship between aphids and Buchnera aphidicola (hereafter Buchnera) makes them a classic model for studying insect-endosymbiont interaction. Here, we report 29 newly sequenced Buchnera genomes from 11 aphid subfamilies, and a comprehensive dataset based on 90 Buchnera genomes from 14 aphid subfamilies. The dataset shows a significant genomic difference of Buchnera among different aphid lineages. The dataset exhibits a more balanced distribution of Buchnera (from 14 aphid subfamilies) genome sizes, ranging from 400 kb to 600 kb, which can illustrate the genome reduction process of Buchnera. The new genome data provide valuable insights into the microevolutionary processes leading to genomic reduction of insect endosymbionts.
Funder
National Natural Science Foundation of China
Publisher
Springer Science and Business Media LLC
Reference68 articles.
1. Sudakaran, S., Kost, C. & Kaltenpoth, M. Symbiont acquisition and replacement as a source of ecological innovation. Trends Microbiol. 25, 375–390 (2017).
2. Misof, B. et al. Phylogenomics resolves the timing and pattern of insect evolution. Science 346, 763–767 (2014).
3. Gupta, A. & Nair, S. Dynamics of insect-microbiome interaction influence host and microbial symbiont. Front. Microbiol. 11, 1357 (2020).
4. Zytynska, S. E., Tighiouart, K. & Frago, E. Benefits and costs of hosting facultative symbionts in plant-sucking insects: A meta-analysis. Mol. Ecol. 30, 2483–2494 (2021).
5. Wang, S. B. & Qu, S. Insect symbionts and their potential application in pest and vector-borne disease control. Bulletin of Chinese Academy of Sciences (Chinese Version) 32, 863–872 (2017).