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68 results for “non-biting midges”
Figure 2 in Wanted, tracked down and identified: Mesozoic non-biting midges of the subfamily Chironominae (Chironomidae, Diptera)
Figure 2. Mesoacentron kaluginae, adult male, PIN 3130/224; Late Cretaceous, Santonian; Yantardakh, Taimyr Peninsula, Russia. A, B, wing, with anal lobe and squama magnified (B). C, D, tibial armature of mid (C) and hindleg (D). E, hypopygium, ventral aspect. F, anal point. G, H, hypopygial volsellae: superior (green), inferior (blue), digitus (yellow), pseudovolsella (red) and pars ventralis (purple) photographed (G) and drawn (H).
Figure 7 in Wanted, tracked down and identified: Mesozoic non-biting midges of the subfamily Chironominae (Chironomidae, Diptera)
Figure 7. Palaeocentron krzeminskii, adult male, MP/4020 (ISEZ PAN); mid-Cretaceous, probably Albian–Cenomanian; Hukawng Valley, Kachin State, Myanmar. A, B, hypopygium in dorsolateral (A) and ventrolateral aspect (B). C, D, anal point photographed (C) and drawn (D). E, superior volsellae. F, G, inferior volsellae drawn (F) and photographed (G).
Figure 1 in Wanted, tracked down and identified: Mesozoic non-biting midges of the subfamily Chironominae (Chironomidae, Diptera)
Figure 1. Mesoacentron kaluginae, adult male, PIN 3130/224; Late Cretaceous, Santonian; Yantardakh, Taimyr Peninsula, Russia. A, inclusion in amber embedded in epoxy resin. B, habitus. C, head. D, antenna (arrowheads indicate borders between flagellomeres fm 1–14: black – distinctly separated, grey – weakly separated or partially fused). E, head and thorax in lateral aspect.
FIGURE 17 in Exploring the utility of DNA barcoding in species delimitation of Polypedilum (Tripodura) non-biting midges (Diptera: Chironomidae)
FIGURE 17. Maximum likelihood subtree of P. cochlearum, P. sp1, P. sp16 and P. sp17 with GTR substitution model. Numbers on branches represent bootstrap support (>70%) based on 500 replicates; scale represents K2P genetic distance.
FIGURE 6 in Exploring the utility of DNA barcoding in species delimitation of Polypedilum (Tripodura) non-biting midges (Diptera: Chironomidae)
FIGURE 6. Maximum likelihood subtree of P. japonicum species complex with GTR substitution model. Numbers on branches represent bootstrap support (>70%) based on 500 replicates; scale represents K2P genetic distance.
FIGURE 4 in Exploring the utility of DNA barcoding in species delimitation of Polypedilum (Tripodura) non-biting midges (Diptera: Chironomidae)
FIGURE 4. The number of the OTUs by the prior intraspecific divergence calculated with ABGD online using the K2P substitution model.
FIGURE 2 in Exploring the utility of DNA barcoding in species delimitation of Polypedilum (Tripodura) non-biting midges (Diptera: Chironomidae)
FIGURE 2. Histogram of pairwise K2P distances between morphological species of Tripodura. The horizontal axis shows the pairwise K2P-distance, and the vertical axis shows the number of pairwise sequence comparisons.
FIGURE 3 in Exploring the utility of DNA barcoding in species delimitation of Polypedilum (Tripodura) non-biting midges (Diptera: Chironomidae)
FIGURE 3. Maximum likelihood tree of Tripodura species. The tree was based on partial COI sequences and the generalized time reversible substitution model, Stictochironomus sticticus Fabricius, 1781 and S. sinsauensis Ree & Jeong, 2010 as outgroups. Numbers on branches represent bootstrap support (>70%) based on 500 replicates; scale represents K2P genetic distance; different species clade with different colors.
FIGURE 7 in Exploring the utility of DNA barcoding in species delimitation of Polypedilum (Tripodura) non-biting midges (Diptera: Chironomidae)
FIGURE 7. Maximum likelihood subtree of P. unifascium species complex with GTR substitution model. Numbers on branches represent bootstrap support (>70%) based on 500 replicates; scale represents K2P genetic distance.
FIGURES 11–15 in New species of the non-biting midges of Tribe Chironomini (Dptera, Chironomidae) from the Bolshekhekhtsyrsky Reserve (Russia, Khabarovsk Territory)
FIGURES 11–15. The male of Polypedilum (s. str.) odyrensis sp.n.11–12—apex of fore tibia; 13–14—hypopygium; 15— tergite IX and anal point. Scale bars 50 µm.
FIGURES 6–10 in New species of the non-biting midges of Tribe Chironomini (Dptera, Chironomidae) from the Bolshekhekhtsyrsky Reserve (Russia, Khabarovsk Territory)
FIGURES 6–10. Details of hypopygium structure of the male of Robackia lukini sp.n. 6—dorsal view of hypopygium; 7, 8— posterior margin of tergite IX and anal point in dorsal view; 9, 10—superior and inferior volsellae in dorsal view. Scale bars 50 µm.
FIGURES 1–5 in New species of the non-biting midges of Tribe Chironomini (Dptera, Chironomidae) from the Bolshekhekhtsyrsky Reserve (Russia, Khabarovsk Territory)
FIGURES 1–5. Details of hypopygium structure of the male of Polypedilum (s. str.) odyrensis sp.n. (1–4) and Polypedilum (s. str.) servatum sp.n. (5). 1, 5—dorsal view of hypopygium; 2—tergite IX and anal point in dorsal view; 3, 4—superior volsella in dorsal view. Scale bars 50 µm.
FIGURES 16–19 in New species of the non-biting midges of Tribe Chironomini (Dptera, Chironomidae) from the Bolshekhekhtsyrsky Reserve (Russia, Khabarovsk Territory)
FIGURES 16–19. The male of Polypedilum (s. str.) servatum sp.n. 16—apex of fore tibia; 17–19—hypopygium. Scale bars 50 µm.
FIGURES 3A–G in Chironomus rishii sp. n., an enigmatic non-biting midge (Diptera: Chironomidae: Chironominae) from Neotropical region
FIGURES 3A–G. Chironomus rishii Trivinho-Strixino & Silva sp. n., larva. A. Antenna. B. Seta I. C. Pecten epipharyngis. D. Premandible. E. Mandible. F. Mentum and ventromental plate. G. Abdomen.
FIGURES 2A–C in Chironomus rishii sp. n., an enigmatic non-biting midge (Diptera: Chironomidae: Chironominae) from Neotropical region
FIGURES 2A–C. Chironomus rishii Trivinho-Strixino & Silva sp. n., pupa. A. Frontal apotome and cephalic tubercles. B. Abdominal segments with chaetotaxy, dorsal aspect. C. Anal spur.
FIGURES 1A–C in Chironomus rishii sp. n., an enigmatic non-biting midge (Diptera: Chironomidae: Chironominae) from Neotropical region
FIGURES 1A–C. Chironomus rishii Trivinho-Strixino & Silva sp. n., adult. A. Abdominal coloration pattern, dorsal aspect. B. Hypopygium, left: dorsal aspect, right: ventral aspect,. C. Female genitalia.
Figure 2 in Diversity of Chironomidae (Diptera) breeding in the Great Stour, Kent: baseline results from the Westgate Parks non-biting midge project
Figure 2. (a) Genus percent abundance per site, and (b) genus dominance plot per site in the Great Stour in Kent, UK.
Figure 3 in Diversity of Chironomidae (Diptera) breeding in the Great Stour, Kent: baseline results from the Westgate Parks non-biting midge project
Figure 3. (a) Dendrogram showing the Bray-Curtis dissimilarities among sites, and (b) Principal Components Analysis (PCA) and biplot of Chironomidae genera for sites in the Great Stour in Kent, UK.
FIGURES 1A–D in Connecting the dots: DNA barcoding and lectotype designation shedding light on Labrundinia longipalpis (Goetghebuer, 1921), an intriguing non-biting midge (Chironomidae, Tanypodinae)
FIGURES 1A–D. Labrundinia longipalpis (Goetghebuer). A. Lectotype. B. Labels of Lectotype. C. Detailed views of the lectotype hypopygium, left: ventral aspect, right: dorsal aspect. D. Type series (Lectotype + Paralectotypes).
FIGURE 3 in Connecting the dots: DNA barcoding and lectotype designation shedding light on Labrundinia longipalpis (Goetghebuer, 1921), an intriguing non-biting midge (Chironomidae, Tanypodinae)
FIGURE 3. Neighbor joining tree for species of the genus Labrundinia (Chironomidae, Tanypodinae) based on partial COI sequences (DNA barcodes) and the Kimura-2-parameter. Bootstrap values are indicated on the branches. The North American and European populations of Labrundinia longipalpis (Goetghebuer, 1921) are highlighted within the red dotted box, indicating their clustering.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
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