Massive gene rearrangements of mitochondrial genomes and implications for the phylogeny of Trichoptera (Insecta)

IF 4.7 1区 农林科学 Q1 ENTOMOLOGY Systematic Entomology Pub Date : 2022-11-08 DOI:10.1111/syen.12575
Xinyu Ge, Lang Peng, Alfried P. Vogler, John C. Morse, Lianfang Yang, Changhai Sun, Beixin Wang
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引用次数: 9

Abstract

Mitochondrial genomes have been widely used for phylogenetic reconstruction and evolutionary analysis in various groups of Insecta. Gene rearrangements in the mitogenome can be informative characters for phylogenetic reconstruction and adaptive evolution. Trichoptera is one of the most important groups of aquatic insects. Prior to this study, complete mitogenomes from Trichoptera were restricted to eight families, resulting in a biased view of their mitogenome structure and evolution. Here, we assemble new mitogenomes for 66 species by high-throughput sequencing. The mitogenomes of 19 families and 47 genera are documented for the first time. Combined with 16 previously published mitogenomes of Trichoptera, we find 14 kinds of gene rearrangement patterns novel for Trichoptera, including rearrangement of protein-coding genes, tRNAs and control regions. Simultaneously, we provide evidence for the occurrence of tandem duplication and non-random loss events in the mitogenomes of three families. Phylogenetic analyses show that Hydroptilidae was recovered as a sister group to Annulipalpia. The increased nucleotide substitution rate and adaptive evolution may have affected the mitochondrial gene rearrangements in Trichoptera. Our study offers new insights into the mechanisms and patterns of mitogenome rearrangements in Insecta at large and into the usefulness of mitogenomic gene order as a phylogenetic marker within Trichoptera.

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线粒体基因组的大规模基因重排及其对毛翅目昆虫系统发育的意义
线粒体基因组已被广泛用于昆虫类群的系统发育重建和进化分析。有丝分裂基因组中的基因重排可以作为系统发育重建和适应性进化的信息特征。毛翅目昆虫是水生昆虫的重要类群之一。在此研究之前,毛翅目昆虫的完整有丝分裂基因组仅限于8个科,导致对其有丝分裂基因组结构和进化的看法存在偏见。在这里,我们通过高通量测序为66个物种组装了新的有丝分裂基因组。首次记录了19个科47个属的有丝分裂基因组。结合16个已发表的毛翅目有丝分裂基因组,我们发现了14种新的毛翅目基因重排模式,包括蛋白质编码基因重排、trna重排和控制区重排。同时,我们为三个家族的有丝分裂基因组中出现串联重复和非随机丢失事件提供了证据。系统发育分析表明,水螅科作为Annulipalpia的姊妹类群被恢复。核苷酸取代率的增加和适应性进化可能影响了毛翅目线粒体基因的重排。我们的研究为昆虫有丝分裂基因组重排的机制和模式提供了新的见解,并为有丝分裂基因组基因顺序作为毛翅目系统发育标记的用途提供了新的见解。
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来源期刊
Systematic Entomology
Systematic Entomology 生物-进化生物学
CiteScore
10.50
自引率
8.30%
发文量
49
审稿时长
>12 weeks
期刊介绍: Systematic Entomology publishes original papers on insect systematics, phylogenetics and integrative taxonomy, with a preference for general interest papers of broad biological, evolutionary or zoogeographical relevance.
期刊最新文献
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