Skip to content
Open access

Mitochondrial Genome Assemblies of Four “Bee-Assassin” (Hemiptera: Reduviidae: Apiomerus) Recovered Using Shallow Whole-Genome sequencing

Aug 2026 · F1000Research · Vol 15, pp. 921 · 0 citations · 24 references

TL;DR

Low-coverage whole-genome sequencing data from four vouchered specimens collected in Colombia and reconstructed mitochondrial genomes for Apiomerus sp.

Abstract

Apiomerus (“bee-assassin” assassin bugs) is a Neotropical genus of Reduviidae with ecological importance as a group of predatory insects and notable morphological diversity, yet mitochondrial genomic resources have remained unavailable for the genus. We generated low-coverage whole-genome sequencing data from four vouchered specimens collected in Colombia and reconstructed mitochondrial genomes for Apiomerus sp., A. ochropterus , A. luctuosus , and A. nitidicollis . Quality-filtered reads were assembled using an organelle-specific GetOrganelle workflow, and the resulting assembly graphs and candidate sequences were evaluated against initial SPAdes/BLASTN-based reconstructions. GetOrganelle recovered complete circular mitochondrial genomes for Apiomerus sp., A. ochropterus , and A. nitidicollis , whereas A. luctuosus was represented by a single gap-free, non-circularized mitochondrial scaffold in which the control region was not completely recovered. The selected assemblies ranged from 14,943 to 19,405 bp and were strongly AT-rich. Annotation and manual curation recovered the complete complement of 13 protein-coding genes, 22 tRNA genes, and two rRNA genes in all four taxa. Comparative analysis showed complete conservation of mitochondrial gene content, gene order, and transcriptional orientation, with no evidence of gene rearrangements among the sampled species. Phylogenetic analysis based on concatenated mitochondrial protein-coding genes recovered the four Apiomerus taxa as a monophyletic group, with A. ochropterus and Apiomerus sp. forming a sister pair, A. nitidicollis sister to that clade, and A. luctuosus occupying the basal position among the sampled taxa. These assemblies constitute the first mitochondrial genomic resources for Apiomerus and expand the representation of Apiomerini for comparative mitogenomic, taxonomic, and phylogenetic studies.

Read PDF

Similar papers

Open access Aug 2026

Polyphyly and Deep Evolutionary History of Piscine Coccidia: Mitochondrial Genomics of a New Goussia Species From Pacific Saury (Cololabis saira).

The genus Goussia Labbé 1896 represents a polyphyletic assemblage of piscine coccidia whose systematics remain poorly resolved due to morphological convergence and limited genomic data. Here we describe Goussia sairae n. sp. from the liver of Pacific saury (Cololabis saira) in the Northwestern Pacific, characterized through integrated morphological, histopathological, and molecular analyses. Long-read amplicon sequencing of single-oocyst isolates enabled the first complete mitochondrial genome assembly for a marine Goussia species, revealing two co-existing mitogenome genotypes (99.3% identity) within individual oocysts-the first robust evidence consistent with intra-oocyst mitochondrial heterogeneity in the Eimeriidae. Phylogenetic reconstructions based on nuclear 18S ribosomal RNA and concatenated mitochondrial protein-coding genes robustly supported the polyphyly of Goussia sensu lato, recovering five major lineages. A time-calibrated Bayesian phylogeny dated the marine-freshwater divergence to the Early Jurassic (median 197 million years ago; 95% HPD: 124-275 Mya), congruent with the ancient divergence of their respective teleost host groups. These findings support re-evaluation of the current generic boundaries of Goussia and suggest that the hyper-divergent Epicellular lineage may warrant recognition as a distinct family basal to the Eimeriorina.

Peihang Hong, Toshihiro Tokiwa, Sijia Yu et al. · 0 citations
Open access Jul 2026

The Complete Chloroplast Genome of Ficus gasparriniana var. laceratifolia Reveals Discordance Between Morphology-Based Classification and Plastid Phylogeny

This plastome provides a valuable genomic resource and reveals robust discordance between morphology-based classification and plastid phylogenetic placement in F. gasparriniana, providing a foundation for future nuclear-genomic and population-level tests of the alternative evolutionary scenarios underlying this discordance.

Yong Shi, Jie-Jun Liu, Lei Ren et al. · 0 citations
Open access Aug 2026

The complete mitochondrial genome of Acanthaspis geniculata (Hsiao, 1976) (Hemiptera: Reduviidae) and its phylogenetic analyses

Abstract The genus Acanthaspis (Hemiptera: Reduviidae) comprises predatory insects of ecological importance, yet mitochondrial genomic resources for this group remain limited. Here, we present the complete mitochondrial genome of Acanthaspis geniculata (Hsiao, 1976). The mitogenome is 16,226 bp in length and contains the standard set of 37 mitochondrial genes (13 protein-coding genes, 2 rRNA genes, and 22 tRNA genes), along with a control region (D-loop). The nucleotide composition is A (40.4%), T (29.6%), C (17.9%), and G (12.1%), with an overall AT content of 70.0%. Phylogenetic analyses based on partitioned mitochondrial datasets strongly support the monophyly of the subfamily Reduviinae and reveal that A. geniculata forms a close sister-group relationship with A. ruficeps and A. pedestris. This study provides a fundamental mitogenomic resource for future evolutionary and systematic studies of the Reduviidae.

Wan-Ting Liu, Jia-Hao Chen, Jia-Kun Lin et al. · 0 citations
Open access Jul 2026

New species and novel mitochondrial gene rearrangements in the thread-legged bug genus Chinemesa (Hemiptera: Reduviidae: Emesinae)

Abstract The thread-legged bug genus Chinemesa Wygodzinsky, 1966 (Hemiptera: Heteroptera: Reduviidae: Emesinae: Emesini) is a small group of five species endemic to the Oriental Region. However, the species diversity of this genus is still far from completely explored, especially in the mainland of Asia. Here we describe three new species, C. ornata sp. n ., C. pulchella sp. n . and C. weilingfengi sp. n ., from southern China. Based on the newly sequenced mitochondrial genomes of four Chinemesa species, we detected two gene rearrangement patterns in the genus: a translocation of trnI and trnQ in all four species, and a loss of trnW in C. pulchella sp. n . Both gene rearrangements are novel within Reduviidae as well as Heteroptera, and can be explained by the tandem duplication-random loss (TDRL) model. Phylogenetic analyses based on mitogenomic datasets recovered the monophyly of Chinemesa , with the translocation of trnI - trnQ as a potential molecular synapomorphy for the genus.

Zhuo Chen, Hu Li, Wanzhi Cai · 0 citations