Four genera and nine species of Leptopodidae Brullé, 1836 are recorded from China, including one genus Erianotus Fieber, 1861 and four species Erianotus lanosus (Dufour, 1834), Leptopus travancorensis Distant, 1910, Patapius spinosus (Rossi, 1790), and Valleriola bui Li, Jin & Ye, 2023 now recorded from China for the first time. Photographs of the habitus and male genital capsules are provided. Additionally, a checklist of the family in China as well as an identification key to the species are presented. With the addition of the four newly recorded species, the distribution range of Leptopodidae in China has expanded from the Oriental Region to encompass both the Oriental and Palaearctic Regions.
A new genus of the family Ochteridae (Hemiptera: Nepomorpha), dagger Trichochterus gen. nov., is described from mid-Cretaceous, with two new species: dagger T. zhengi sp. nov. and dagger T. nieseri sp. nov. The new genus can be distinguished from other ochterids by its unique antennal structure and the first documented occurrence of trichobothrium-like setae within the family. Notably, the presence of trichobothria in velvety shore bugs represents a distinctive morphological feature, potentially reflecting ecological specialization in riparian or terrestrial habitats. Detailed morphological descriptions, supported by highresolution photographs and illustrations, highlight the diagnostic characters of dagger Trichochterus gen. nov., such as the elongate rostrum, ridged frons, cursorial legs, and tarsal formula. An updated identification key and a comparative table are provided to facilitate the classification of all extant and fossil genera of Ochteridae. Furthermore, the phylogenetic placement of the newly established genus was assessed based on a morphological matrix. (c) 2025 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
Insects are the most species-rich group of animals, and the high morphological complexity and spectacular diversification of mouthparts among insects are crucial to their prosperity. Currently, the knowledge on insect mouthpart types remains largely stationary, yet little evidence has been documented to illustrate the transitional forms. In this study, we report for the first time a series of fossil specimens which reveal the successive process between two types of insect mouthparts. Correspondingly, three new families including six new species are established based on such mid-Cretaceous Kachin amber to place these new fossil records. Starting from the morphological differences in the mouthparts of the newly defined families and the extant water boatmen families, we further deduce the structural homology between different mouthpart types and find the coevolution between the mouthparts and the forelegs in the phylogenetic context of total evidence. Our discovery provides direct evidence of the transformation process of the water boatmen's mouthparts from a sucking to a triangular type. This study provides new evidence and perspectives for in-depth understanding of the evolutionary process of insect mouthparts.
During an inventory of the Gelastocoridae in the Naturalis Biodiversity Center, Leiden, The Netherlands (formerly Rijksmuseum van Natuurlijke Historie, Leiden, The Netherlands), and the Nieser & Chen Collection in Tiel, The Netherlands, we came across an undescribed species of Nerthra Say, 1832 (Hemiptera: Heteroptera: Gelastocoridae: Nerthrinae). The specimens were collected from Bonaire and Curaçao, Kingdom of the Netherlands, and we describe them here as N. papaceki sp. nov. Nerthra lurida Todd, 1959, syn. nov., is synonymized with Nerthra occidua Todd, 1959 (both from Indonesia: Sulawesi). In addition, we provide new distributional records of Nerthra americana (Montandon, 1905) (Brazil: Paraná), Nerthra buenoi Todd, 1955 (Brazil: Pará), and Nerthra raptoria (Fabricius, 1803) (Suriname) and provide their differential diagnoses and illustrations.
During an inventory of the Gelastocoridae in the Naturalis Biodiversity Center, Netherlands), and the Nieser & Chen Collection in Tiel, The Netherlands, we came across an undescribed species of Nerthra Say, 1832 (Hemiptera: Heteroptera: Gelastocoridae: Nerthrinae). The specimens were collected from Bonaire and Cura & ccedil;ao, Kingdom of the Netherlands, and we describe them here as N. papaceki sp. nov. Nerthra lurida Todd, 1959, syn. nov., is synonymized with Nerthra occidua Todd, 1959 (both from Indonesia: Sulawesi). In addition, we provide new distributional records of Nerthra americana (Montandon, 1905) (Brazil: Paran & aacute;), Nerthra buenoi Todd, 1955 (Brazil: Par & aacute;), and Nerthra raptoria (Fabricius, 1803) (Suriname) and provide their differential diagnoses and illustrations.
During an inventory of the Gelastocoridae in the Naturalis Biodiversity Center, Leiden, The Netherlands (formerly Rijksmuseum van Natuurlijke Historie, Leiden, The Netherlands), and the Nieser & Chen Collection in Tiel, The Netherlands, we came across an undescribed species of Nerthra Say, 1832 (Hemiptera: Heteroptera: Gelastocoridae: Nerthrinae). The specimens were collected from Bonaire and Curaçao, Kingdom of the Netherlands, and we describe them here as N. papaceki sp. nov. Nerthra lurida Todd, 1959, syn. nov., is synonymized with Nerthra occidua Todd, 1959 (both from Indonesia: Sulawesi). In addition, we provide new distributional records of Nerthra americana (Montandon, 1905) (Brazil: Paraná), Nerthra buenoi Todd, 1955 (Brazil: Pará), and Nerthra raptoria (Fabricius, 1803) (Suriname) and provide their differential diagnoses and illustrations.
Fossilized mating insects are irreplaceable material for comprehending the evolution of the mating behaviours and life-history traits in the deep-time record of insects as well as the potential sexual conflict. However, cases of mating pairs are particularly rare in fossil insects, especially aquatic or semi-aquatic species. Here, we report the first fossil record of a group of water striders in copulation (including three pairs and a single adult male) based on fossils from the mid-Cretaceous of northern Myanmar. The new taxon, Burmogerris gen. nov., likely represents one of the oldest cases of insects related to the marine environment, such as billabongs formed by the tides. It exhibits conspicuous dimorphism associated with sexual conflict: the male is equipped with a specialized protibial comb as a grasping apparatus, likely representing an adaptation to overcome female resistance during struggles. The paired Burmogerris show smaller males riding on the backs of the females, seemingly recording a scene of copulatory struggles between the sexes. Our discovery reveals a mating system dominated by males and sheds light on the potential sexual conflicts of Burmogerris in the Cretaceous. It indicates the mating behaviour remained stable over long-term geological time in these water-walking insects.
The genus Micronecta Kirkaldy, 1897 is the most species -rich genus in the family Micronectidae, containing more than 160 species. Micronecta is currently divided into 11 subgenera, five of which are monotypic. Moreover, the subgenus Micronecta is an empirical mixture group. The definitions of some subgenera were based on only a few aberrant morphological features, which are specializations with few phylogenetic significances. The relationship between these subgenera remains unclear. In this study, we newly sequenced mitochondrial genomes (mitogenomes) and nuclear rDNAs (nrDNAs) for 13 Micronecta species, representing seven subgenera, and those for ten other water bugs. Our phylogenetic analyses showed that the subgenus Lundbladella represents the sister group to all other studied subgenera of Micronecta. The subgenus Unguinecta was the sister group to the clade that contains Dichaetonecta and Sigmonecta. More importantly, the subgenus Micronecta represents a paraphyletic group, which further forms a monophyletic group together with the subgenera Basileonecta and Ctenonecta. This is for the first time that the phylogeny of the genus Micronecta was investigated based on molecular data and the paraphyly of the subgenus Micronecta was revealed. Such evidence suggested the necessity of the revision of the taxonomic system of the genus in the future, and may also serve as a reference for the delimitation of subgeneric characters.
Among hundreds of insect families, Hermatobatidae (commonly known as coral treaders) is one of the most unique. They are small, wingless predaceous bugs in the suborder Heteroptera. Adults are almost black in colour, measuring about 5 mm in body length and 3 mm in width. Thirteen species are known from tropical coral reefs or rocky shores, but their origin and evolutionary adaptation to their unusual marine habitat were unexplored. We report here the genome and metagenome of Hermatobates lingyangjiaoensis, hitherto known only from its type locality in the South China Sea. We further reconstructed the evolutionary history and origin of these marine bugs in the broader context of Arthropoda. The dated phylogeny indicates that Hexapoda diverged from their marine sister groups approximately 498 Ma and that Hermatobatidae originated 192 Ma, indicating that they returned to an oceanic life some 300 Myr after their ancestors became terrestrial. Their origin is consistent with the recovery of tropical reef ecosystems after the end-Triassic mass extinction, which might have provided new and open niches for them to occupy and thrive. Our analyses also revealed that both the genome changes and the symbiotic bacteria might have contributed to adaptations necessary for life in the sea.
True bugs (Hemiptera, suborder Heteroptera) constitute the largest suborder of nonholometabolous insects and occupy a wide range of habitats various from terrestrial to semiaquatic to aquatic niches. The transition and occupation of these diverse habitats impose various challenges to true bugs, including access to oxygen for the aquatic species and plant defense for the terrestrial phytophagans. Although numerous studies have demonstrated that microorganisms can provide multiple benefits to terrestrial host insects, a systematic study with comprehensive higher taxa sampling that represents aquatic and semiaquatic habitats is still lacking. To explore the role of symbiotic microorganisms in true bug adaptations, 204 samples belonging to all seven infraorders of Heteroptera were investigated, representing approximately 85% of its superfamilies and almost all known habitats. The symbiotic microbial communities of these insects were analyzed based on the full-length amplicons of the bacterial 16S rRNA gene and fungal ITS region. Bacterial communities varied among hosts inhabiting terrestrial, semiaquatic, and aquatic habitats, while fungal communities were more related to the geographical distribution of the hosts. Interestingly, co-occurrence networks showed that species inhabiting similar habitats shared symbiotic microorganism association types. Moreover, functional prediction analyses showed that the symbiotic bacterial community of aquatic species displayed richer amino acid and lipid metabolism pathways, while plant-feeding true bugs benefited more from the symbiont-provided xenobiotics biodegradation pathway. These results deepened the recognition that symbiotic microorganisms were likely to help heteropterans occupy diverse ecological habitats and provided a reference framework for further studies on how microorganisms affect host insects living in various habitats. IMPORTANCE Symbiotic bacteria and fungi generally colonize insects and provide various benefits for hosts. Although numerous studies have investigated symbionts in terrestrial plant-feeding insects, explorations of symbiotic bacterial and fungal communities in aquatic and semiaquatic insects are rare. In this study, the symbiotic microorganisms of 204 aquatic, semiaquatic, and terrestrial true bugs were explored. This comprehensive taxon sampling covers ~85% of the superfamilies of true bugs and most insect habitats. Analyses of the diversity of symbionts demonstrated that the symbiotic microbial diversities of true bugs were mainly affected by host habitats. Co-occurrence networks showed that true bugs inhabiting similar habitats shared symbiotic microbial association types. These correlations between symbionts and hosts together with the functions of bacterial communities indicated that symbiotic microbial communities may help true bugs adapt to (semi)aquatic habitats.
Brood care enhances offspring fitness and survival by providing protection or feeding through parents (commonly by females). It has evolved independently multiple times in animals, e.g. mammals, birds, dinosaurs and arthropods, especially various lineages of insects, and has significant implications for understanding the emergence of sociality of insects. However, few fossil insects document such an ephemeral behaviour directly. New exceptional fossils of the water boatman Karataviella popovi from the Middle–Late Jurassic Daohugou biota ( ca 163.5 Ma, northeastern China), with adult females bearing clutches of eggs on their left mesotibia, provide a unique brooding strategy (asymmetric egg-carrying behaviour) unknown in all extinct and extant insects. Our discovery represents the earliest direct evidence of brood care among insects, pushing back by more than 38 million years, indicating that relevant adaptations associated with maternal investment of insects can be traced back to at least the Middle–Late Jurassic, and highlighting the existence of diverse brooding strategies in Mesozoic insects. In addition, our discovery reveals that a specialized trawl-like filter-capture apparatus of K . popovi probably represents pre-adaptions originally used for trapping coeval anostracan (fairy shrimp) eggs for food.
More than 95% of phytophagous true bug (Hemiptera: Heteroptera) species belong to four superfamilies: Miroidea (Cimicomorpha), Pentatomoidea, Coreoidea, and Lygaeoidea (all Pentatomomorpha). These iconic groups of highly diverse, overwhelmingly phytophagous insects include several economically prominent agricultural and silvicultural pest species, though their evolutionary history has not yet been well resolved. In particular, superfamily- and family-level phylogenetic relationships of these four lineages have remained controversial, and the divergence times of some crucial nodes for phytophagous true bugs have hitherto been little known, which hampers a better understanding of the evolutionary processes and patterns of phytophagous insects. In the present study, we used 150 species and concatenated nuclear and mitochondrial protein-coding genes and rRNA genes to infer the phylogenetic relationships within the Terheteroptera (Cimicomorpha + Pentatomomorpha) and estimated their divergence times. Our results support the monophyly of Cimicomorpha, Pentatomomorpha, Miroidea, Pentatomoidea, Pyrrhocoroidea, Coreoidea, and Lygaeoidea. The phylogenetic relationships across phytophagous lineages are largely congruent at deep nodes across the analyses based on different datasets and tree-reconstructing methods with just a few exceptions. Estimated divergence times and ancestral state reconstructions for feeding habit indicate that phytophagous true bugs explosively radiated in the Early Cretaceous-shortly after the angiosperm radiation-with the subsequent diversification of the most speciose clades (Mirinae, Pentatomidae, Coreinae, and Rhyparochromidae) in the Late Cretaceous.
A new intertidal dwarf bug, Corallocoris xishaensis Luo, Wang & Chen sp. nov., from Xisha Islands of South China Sea is described, and is the first record of the family Omaniidae Cobben, 1970 from China. The new species can be distinguished from its allied Austro-Oriental species C. marksae (Woodward, 1958) by the colour of its body and legs, and the genitalic structures of both sexes. Photographs of the habitus, head, thorax, abdomen, appendages and genitalic structures are provided, additional scanning electron micrographs of the body surface are presented as well. A key to all the species of Omaniidae and distributional maps based on the known records for all species of this family are provided.
True water bugs (Hemiptera: Heteroptera: Nepomorpha) are among the most common insects of freshwater ecosystems, comprising approximately 2300 extant species spread over five recognized superfamilies, including Corixoidea, Nepoidea, Ochteroidea, Notonectoidea and Naucoroidea. They exhibit striking morphological and behavioural adaptations to various freshwater environments, including oar‐like swimming legs, breathing siphons or plastron respiration. The phylogeny of Nepomorpha remains contentious, particularly for the early‐diverging lineage, which has hindered the understanding of the evolution of morphology and respiratory behaviour within the clade. In the present study, we assembled a large‐scale phylogenomic dataset, including 2018 single‐copy, protein‐coding gene sequences from 85 representative species of heteropterans (44 nepomorphans) to investigate the phylogeny of Nepomorpha and the corresponding implications for character evolution. Our inferences suggest that Corixoidea is the sister group of the remaining Nepomorpha, then Nepoidea and Ochteroidea; these clades successively branched in the Triassic, following the end‐Permian extinction event about 251 million years ago. The five superfamilies radiated in the Jurassic, when geological reconfigurations and drastic climate changes occurred. An ancestral state reconstruction demonstrated that the ancestral respiration type in true water bugs is likely a simple air‐bubble type, which was widely utilized in true water bugs. Subsequently, different clades have evolved variously specialized adaptations to improve its efficiency. We propose that the crawling legs of Nepidae are secondary or symplesiomorphic characters, which cannot serve as the evidence for the sister group role of Nepoidea to the remaining nepomorphans.
Aim Local environmental selection and lineage admixture have long been accepted as important adaptive mechanisms in adjusting widespread taxa to new environments. We studied a pond skater, Gerris latiabdominis, to explore the relative roles played by these two mechanisms in its process of adaptation to heterogeneous landscapes. Location East Asia. Taxon Gerris latiabdominis Miyamoto, 1958. Methods Mitochondrial (COI, COII) and nuclear (ddRAD-seq) markers were sequenced from 202 individuals. Phylogenetic and phylogeographical analyses were conducted to reveal the population genetic structure. The demographical history was simulated by approximate Bayesian computation (ABC). The single-nucleotide polymorphisms (SNPs) that may have been subjected to natural divergent selection among the populations were assessed, and the recent migration rates were estimated. Finally, shifts in suitable habitat from the last interglacial (LIG) to the present were predicted through ecological niche modelling (ENM). Results We found population structures inferred from both mitochondrial and nuclear genomes to be almost coincident and to correspond to temporal or spatial heterogeneity. The early Pliocene splitting event between the northern (NO) and southeastern (SE) groups is consistent with the 'arid belt hypothesis', followed by local environmental selection. Approximate Bayesian computation and gene flow estimation strongly suggested that the southwestern (SW) groups originated from a lineage admixture event between the SE and western (WE) groups and subsequently underwent ongoing gene flow from the SE group during the Pleistocene. The mito-nuclear discordance pattern in the SW group was probably due to the ancient mitochondrial differentiation. Main conclusion Our results suggest that both local environmental selection and lineage admixture acted as significant mechanisms of G. latiabdominis adaptation to heterogeneous landscapes in East Asia. Furthermore, this study showed that conclusions based exclusively on mitochondrial data might mislead taxonomic, phylogenetic and phylogeographical studies.
The goal of this study was to analyze the types and distributional patterns of sensilla in Corixoidea, which is part of the approach to the phylogeny study of Nepomorpha, based on the morphological characters of sensilla. This paper presents the results of the study, with the use of a scanning electron microscope (SEM), on the antennae of species from the families Corixidae and Micronectidae. The antennal sensilla of eleven species from Corixidae and two species from Micronectidae were studied. Five main types of sensilla with several subtypes of sensilla trichodea were found and described. The study has shown that the family Corixidae has a strong uniformity when it comes to antennal sensilla (similar patterns of sensilla trichodea and basiconica), and a similarity to the types and distributions of sensilla in two species of the family Micronectidae. However, significant differences between the families were also discovered (differences in sensilla presence on the first and second antennomeres, lack of sensilla coeloconica on the third antennomere in Micronectidae), which leads to a supportive conclusion of the systematic position of Micronectidae as a family.
The genus Potamometra Bianchi, 1896 represents big rheophilic semi-aquatic bugs that typically inhabit middle-altitude mountainous streams. Here, we integrated molecular and morphological data for delimiting species boundaries and understanding the evolutionary history of the genus Potamometra. Twenty-seven complete mitochondrial genomes of Potamometra were sequenced, with samples representing most of the known geographically distributed locations around the Sichuan Basin. The results of different species delimitation methods (ABGD, bPTP, GMYC and BPP) based on the monolocus or multilocus data strongly supported the existence of two cryptic new species (Potamometra anderseni Zheng, Ye & Bu, sp. nov. and Potamometra zhengi Zheng, Ye & Bu, sp. nov.) although more entities were found in the tree-based delimitation methods. The two new species were successfully validated using morphological characters within a detailed taxonomic framework. Phylogenetic analyses supported the reciprocal monophyly of the seven highly node-supported clades, which were matched with the five known species and two new taxa. A novel gene arrangement pattern that two trnF (trnF1 and trnF2) genes separated by an intergenic spacer (IGS) were found in all the species except the sister group of Potamometra berezowskii Bianchi, 1896 and Potamometra linnavuorii Chen, Nieser & Bu, 2016. This gene rearrangement event could be explained by the tandem duplication and random loss (TDRL) model. Our study emphasized that the combination of molecular sequence data, morphological characters and mitochondrial structural information could improve the accuracy of species delimitation.
Es werden die Ergebnisse von faunistischen Untersuchungen der beiden Hemipteren-Gruppen der Wanzen (Heteroptera) und Zikaden (Auchenorrhyncha) prasentiert, die wahrend des 23. Auchenorrhyncha-Tagung 2016 und an weiteren Terminen der Vegetationsperioden 2016 und 2017 an 22 Standorten im Landschaftspark “Gory Opawskie” (Zuckmanteler Bergland, Sudwest Polen) durchgefuhrt wurden. Dabei wurden insgesamt 143 Hemipteren-Arten nachgewiesen, davon 116 Zikadenarten (17 Arten der Fulgoromorpha, 99 Arten der Cicadomorpha) und 27 Wanzenarten. 3 Fulgoromorpha-Arten und 54 Cicadomorpha-Arten sind Neunachweise fur die Region der Ostlichen Sudeten.