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Fig. 35 in Revision ofEutyphlusLeConte (Coleoptera: Staphylinidae: Pselaphinae), with Description of a New Species and Phylogenetic Placement within the Tribe Trichonychini
Fig. 35. Bootstrap consensus tree (L = 453, CI = 0.34, RI = 0.34). Support values are listed by corresponding branches.
Figs. 3–12. Eutyphlus species, males. 3 in Revision ofEutyphlusLeConte (Coleoptera: Staphylinidae: Pselaphinae), with Description of a New Species and Phylogenetic Placement within the Tribe Trichonychini
Figs. 3–12. Eutyphlus species, males. 3) E. dybasi, dorsal view; 4) E. dybasi, lateral view; 5) E. prominens, dorsal view; 6) E. prominens, lateral view; 7) E. schmitti, dorsal view; 8) E. schmitti, lateral view; 9) E. similis, dorsal view; 10) E. similis, lateral view; 11) E. thoracicus, dorsal view; 12) E. thoracicus, lateral view.
Figs. 1–2. Eutyphlus similis, male. 1 in Revision ofEutyphlusLeConte (Coleoptera: Staphylinidae: Pselaphinae), with Description of a New Species and Phylogenetic Placement within the Tribe Trichonychini
Figs. 1–2. Eutyphlus similis, male. 1) Dorsal features: vs = vertexal sulcus; vf = vertexal foveae; mls = median longitudinal sulcus; laf = lateral antebasal foveae; bps = basal prosternal sulcus; lbps = longitudinal basal pronotal sulcus; shef = subhumeral elytral foveae; bef = basal elytral foveae; ds = discal stria; blf = basolateral foveae; bs = basal sulcus; mbd = median basal depression; I–V = visible tergite number; 2) Ventral features: gc = gular carina; gf = gular foveae; lpcf = lateral procoxal foveae; pslc = prosternal longitudinal carina; apsf = anteroprosternal foveae; mmsf = median mesosternal foveae; lmsf = lateral mesosternal foveae; lmtf = lateral metasternal foveae; lmcf = lateral mesocoxal foveae; blf = basolateral foveae; bls = basolateral sulcus; I–VII = visible abdominal ventrite number.
Figs. 13–18. Eutyphlus species, genitalia. 13 in Revision ofEutyphlusLeConte (Coleoptera: Staphylinidae: Pselaphinae), with Description of a New Species and Phylogenetic Placement within the Tribe Trichonychini
Figs. 13–18. Eutyphlus species, genitalia. 13) E. dybasi; 14) E. prominens; 15) E. schmitti; 16) E. similis;
Figure 105 in The tribe Bryocorini (Insecta: Heteroptera: Miridae: Bryocorinae): phylogeny, description of a new genus, and adaptive radiation on ferns
Figure 105. Cladogram based on the topology of Fig. 104 showing tribes and subfamilies. Numbers above nodes indicate Bremer values.
Figures 79–87 in The tribe Bryocorini (Insecta: Heteroptera: Miridae: Bryocorinae): phylogeny, description of a new genus, and adaptive radiation on ferns
Figures 79–87. Aedeagi: 79, Cylapus citus; 80, 81, Bryocoris pteridis, 80, dorsal, 81, lateral; 82, 83, Diplazicoris lombokianus sp. nov., 82, dorsal, 83, lateral; 84, Sinervus baerensprungi; 85, Eurycipitia clarus; 86, Pycnoderes sp.; 87, Nesidiocoris tenuis. Figs 79–81, 85–87 modified from Kerzhner & Konstantinov (1999).
Figure 104. Most parsimonious tree obtained from the analysis using 68 in The tribe Bryocorini (Insecta: Heteroptera: Miridae: Bryocorinae): phylogeny, description of a new genus, and adaptive radiation on ferns
Figure 104. Most parsimonious tree obtained from the analysis using 68 morphological characters (tree length = 213 steps; consistency index, CI = 0.52; retention index, RI = 0.79). Characters are plotted showing fast optimization. Filled circles, non-homoplastic characters mapped by state (discontinuous characters are mapped as homoplasy); open circles, homoplastic characters. Nodes 1–15 are discussed in the text.
Figures 88–103 in The tribe Bryocorini (Insecta: Heteroptera: Miridae: Bryocorinae): phylogeny, description of a new genus, and adaptive radiation on ferns
Figures 88–103. Female genitalia: 88, 89, Diplazicoris lombokianus sp. nov., 88, posterior wall, 89, vulvar area; 90, 91, Hekista laudator, 90, vulvar area, 91, dorsal labiate plate; 92, Sixeonotus sp., vulvar area; 93, Helopeltis clavifer, dorsal labiate plate; 94–103, valvulae – 94, 95, D. lombokianus sp. nov., 94, first, 95, second; 96, 97, Bryocoris pteridis, 96, first, 97, second; 98, 99, Monalocoris filicis, 98, first, 99, second; 100, 101, Hekista laudator, 100, first, 101, second; 102, 103, Pycnoderes sp., 102, first, 103, second.
Figures 1–9 in The tribe Bryocorini (Insecta: Heteroptera: Miridae: Bryocorinae): phylogeny, description of a new genus, and adaptive radiation on ferns
Figures 1–9. Dorsal habitus of Bryocorini: 1, Coballorhynchus convexicollis; 2, Coballorhynchus concavus; 3, Hekista laudator; 4, 5, Bryocoris pteridis – 4, macropterous male, 5, brachypterous female; 6, Diplazicoris lombokianus sp. nov.; 7, Bryocorella emboliata HT; 8, 9, Monalocoris filicis, females – 8, pale form, 9, dark form.
Figures 34–45 in The tribe Bryocorini (Insecta: Heteroptera: Miridae: Bryocorinae): phylogeny, description of a new genus, and adaptive radiation on ferns
Figures 34–45. Scanning electron micrographs of particular characters: 34–41, evaporatory area – 34, 35, Hekista laudator, 36, Bryocoris pteridis, 37, Punctifulvius kerzhneri, 38, Pycnoderes sp., 39, Helopeltis clavifer, 40, Dicyphus testaceus, 41, Cylapus citus; 42–45, femoral trichobotria – 42, Diplazicoris lombokianus sp. nov., 43, Punctifulvius kerzhneri, 44, Pycnoderes sp., 45, Stenotus binotatus.
Figures 46–58 in The tribe Bryocorini (Insecta: Heteroptera: Miridae: Bryocorinae): phylogeny, description of a new genus, and adaptive radiation on ferns
Figures 46–58. Scanning electron micrographs of particular characters: 46, 47, tarsi in lateral view – 46, Diplazicoris lombokianus sp. nov., 47, Stenotus binotatus; 48–56, pretarsus – 48, 52, D. lombokianus sp. nov., 49, 54, Punctifulvius kerzhneri, 50, Monalocoris filicis, 51, Helopeltis clavifer, 53, Nesidiocoris tenuis, 55, Pycnoderes sp., 56, Stenotus binotatus; 57, 58, genital capsule in caudal view – 57, Bryocoris pteridis, 58, Monalocoris filicis.
Figures 22–33 in The tribe Bryocorini (Insecta: Heteroptera: Miridae: Bryocorinae): phylogeny, description of a new genus, and adaptive radiation on ferns
Figures 22–33. Scanning electron micrographs of particular characters: 22–26, head and thorax in ventral view – 22, Diplazicoris lombokianus sp. nov., 23, Bryocoris pteridis, 24, Monalocoris filicis, 25, Nesidiocoris tenuis, 26, Hekista laudator; 27–30, scutellum and hemelytra – 27, D. lombokianus sp. nov., 28, Hekista laudator, 29, Bryocoris pteridis, 30, Nesidiocoris tenuis; 31–33, evaporatory area – 31, 32, D. lombokianus sp. nov., 33, Monalocoris filicis.
Figures 10–21 in The tribe Bryocorini (Insecta: Heteroptera: Miridae: Bryocorinae): phylogeny, description of a new genus, and adaptive radiation on ferns
Figures 10–21. Scanning electron micrographs of particular characters: 10–14, head and pronotum in lateral view – 10, Diplazicoris lombokianus sp. nov., 11, Dicyphus testaceus, 12, Punctifulvius kerzhneri, 13, Monalocoris filicis, 14, Bryocoris pteridis; 15–21, head and pronotum in dorsal view – 15, D. lombokianus sp. nov., 16, Nesidiocoris tenuis, 17, Punctifulvius kerzhneri, 18, Cylapus citus, 19, Monalocoris filicis, 20, Bryocoris pteridis, 21, Sinervus baerensprungi.
Fig. 14 in Finding Unexpected Beetles in Odd Places:Archicorynus kuscheliAnderson and Marvaldi, a New Genus and Species Representing a New Tribe, Archicorynini, of Oxycoryninae (Coleoptera: Belidae) from Nicaragua
Fig. 14. Most parsimonious tree for Belidae obtained from analysis of the matrix in Table 1. Only unambiguous character changes are mapped on the cladogram, unique and homoplastic changes are in black and white, respectively.
Figs. 8–13. Archicorynus kuscheli. 8 in Finding Unexpected Beetles in Odd Places:Archicorynus kuscheliAnderson and Marvaldi, a New Genus and Species Representing a New Tribe, Archicorynini, of Oxycoryninae (Coleoptera: Belidae) from Nicaragua
Figs. 8–13. Archicorynus kuscheli. 8) Male, ventral view; 9) Ventral surface of elytra, male (PLR = pocket-like cavity); 10) Female genitalia (BC = bursa copulatrix; HLE = hook-like extensions of T VIII; HS = gonocoxites; S = spermatheca; SD = spermathecal duct; SG = spermathecal gland; S VIII = sternite VIII; T VIII = tergite VIII); 11) Aedeagus, lateral view (PN = penis; PE = pedon; TC = tectum; TG = tegmen); 12) Penis (a) and tegmen (b), separated; 13) Hindwing, male.
Figs. 5–7. Archicorynus kuscheli, genitalia. 5 in Finding Unexpected Beetles in Odd Places:Archicorynus kuscheliAnderson and Marvaldi, a New Genus and Species Representing a New Tribe, Archicorynini, of Oxycoryninae (Coleoptera: Belidae) from Nicaragua
Figs. 5–7. Archicorynus kuscheli, genitalia. 5) Female; 6) Aedeagus and tegmen, dorsal view; 7) Aedeagus and tegmen, lateral view.
Fig. 22 in Molecular and morphological systematics of soil-inhabiting Cryptorhynchinae of the genus Acallorneuma and the tribe Torneumatini (Coleoptera: Curculionidae), with description of two new species
Fig. 22: Type locality of Torneuma cadizensis spec. nov. near La Línea de la Concepción (Spain: Cadiz) under Quercus coccifera (i.l. Torres, photo: Torres).
Fig. 7 in Molecular and morphological systematics of soil-inhabiting Cryptorhynchinae of the genus Acallorneuma and the tribe Torneumatini (Coleoptera: Curculionidae), with description of two new species
Fig. 7: Distribution of the Torneuma (s. str.)-species and p-distances of the mitochondrial COI gene between Torneuma isambertoi and the related species from the Madeira Archipelago (see also dendrogram Fig. 3); below rigth: habitat of T. isambertoi, Madeira: Paul do Mar.
Fig. 4 in Molecular and morphological systematics of soil-inhabiting Cryptorhynchinae of the genus Acallorneuma and the tribe Torneumatini (Coleoptera: Curculionidae), with description of two new species
Fig. 4: Heuristic subdivision of Torneumatini by form of the pectoral canal (according to STÜBEN 2007) for fast species assignment to groups and species, based on the simplest hypothesis of a continuous transformation series.
Fig. 12 in Phylogenomic and Morphological Reevaluation of the Bee Tribes Biastini, Neolarrini, and Townsendiellini (Hymenoptera: Apidae) With Description of Three New Species of Schwarzia
Fig. 12. Present-day distributional records of Biastes projected on a global map with reconstructed continental boundaries of the mid Miocene. Shown is a polar projection centered on the Geographic North Pole. During this time peri od, large parts of the present-day Bering and Chukchi seas were likely above sea level, forming a continuous land bridge between the Nearctic and the Palearctic. Locality records are taken from the Discover Life database (Ascher and Pickering 2020) and own databasing efforts. Selected entries were further taken from GBIF (2019). Note that certain Far Eastern records are regional centroids and do not represent exact collection localities.
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.