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FIGURE 3. Phylogenetic tree inferred from a in A new species of Hystrignathus (Nematoda: Thelastomatoidea: Hystrignathidae) associated with the Bess Beetle Passalus Interruptus Linnaeus (Coleoptera: Passalidae) from The Peruvian Amazonia
FIGURE 3. Phylogenetic tree inferred from a Bayesian inference analysis of concatenated dataset of SSU and LSU partial sequences of Hystrignathidae and other Oxyuridomorpha. Values of posterior probability and bootstrap are shown at the nodes. New species in bold fonts. Clade of species found in Passalidae indicated in bold lines. The scale bar represents the number of nucleotide substitutions per site.
FIGURE 2. Hystrignathus nunashae n in A new species of Hystrignathus (Nematoda: Thelastomatoidea: Hystrignathidae) associated with the Bess Beetle Passalus Interruptus Linnaeus (Coleoptera: Passalidae) from The Peruvian Amazonia
FIGURE 2. Hystrignathus nunashae n. sp. SEM images. Female. A. Oral region, apical view. B. Anal region showing lateral alae ending (LAE), lateral view. C. Anterior region, lateral view showing lateral alae beginning (LAB). D. Tail, ventral view. Scale bars: A, 20 µm; B, 50 µm; C, D 100 µm.
FIGURE 1. Hystrignathus nunashae n in A new species of Hystrignathus (Nematoda: Thelastomatoidea: Hystrignathidae) associated with the Bess Beetle Passalus Interruptus Linnaeus (Coleoptera: Passalidae) from The Peruvian Amazonia
FIGURE 1. Hystrignathus nunashae n. sp. Female. A. Entire nematode, lateral view. B. Oral region, lateral view. C. Oral region, apical view. D. Pharynx region, lateral view. E. Egg. Scale bars: A, D, 100 µm; B, 20 µm; C, 10 µm; E, 50 µm.
FIGURES 20–38. Associated diatom flora. Figs 20–21, 33 in A new diatom (Bacillariophyta) species from Indonesian urban areas, description of Microcostatus labrisicus sp. nov.
FIGURES 20–38. Associated diatom flora. Figs 20–21, 33. Eunotia isabelensis Lange-Bertalot, Bąk & Kociolek. Fig. 22. Microcostatus stapputana Lange-Bertalot & Wydrzycka. Figs 22–23, 35–36. Placoneis geitleri (Hustedt) Vishnjakov. Figs 25–27, 34. Humidophila contenta (Grunow) Lowe et al. Figs 29–31, 37, 38. Luticola muticoides (Hustedt) D.G. Mann. Fig. 32. Luticola sp. Scale bar represents 10 µm (Figs 1–13), 5 µm (Figs 16, 17, 19), 3 µm (Fig. 15), 2 µm (Fig. 18).
FIGURE 5 in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE 5. Cladosporium brigadeirensis (VIC 44238, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–K. Macronematous conidiophores. E. Mult-branched conidiophore. I. Conidiogenous cell details. J. Terminal and intercalary conidiogenous cells. K. Secondary ramoconidia prolongation. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE 7 in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE 7. Cladosporium pseudotenuissimum (VIC 44422, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–J. Macronematous conidiophores and conidia. E, F. Micronematous conidiophores at arrows. K. Conidiogenous cel with conidia. L. Bubble-like swelling details. M. Microcyclic conidiogenesis (black arrow) and Ramoconidia (red arrow). Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE 6 in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE 6. Cladosporium chusqueae (VIC 44239, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–K. Macronematous conidiophores and conidia. G. Terminal conidiophore. H. Short peg-like prolongation. I. Bent conidiophore; J–K. Conidiophore branched near the base at a 90º angle. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE. Cladosporium benschii (VIC 44412, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–J. Non-geniculate macronematous conidiophores and conidia. K. Conidiogenous cells with slightly protuberant loci. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E–M = 20 µM. in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Cladosporium benschii (VIC 44412, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–J. Non-geniculate macronematous conidiophores and conidia. K. Conidiogenous cells with slightly protuberant loci. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E–M = 20 µM.
FIGURE. Cladosporium bambusicola (VIC 44237, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–F. Conidiophore and bigger conidia. G–H. Conidiophores and smaller conidia. I. Stromatic hyphal aggregation. J–K. Micronematous conidiophores. L. Ramoconidia and conidia. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM. in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Cladosporium bambusicola (VIC 44237, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–F. Conidiophore and bigger conidia. G–H. Conidiophores and smaller conidia. I. Stromatic hyphal aggregation. J–K. Micronematous conidiophores. L. Ramoconidia and conidia. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE. Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, ex-neotype, or reference strain). in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, ex-neotype, or reference strain).
FIGURE. (Continued) Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, exneotype, or reference strain). in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. (Continued) Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, exneotype, or reference strain).
FIGURE. Cladosporium aulonemiae (VIC 44413, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–G. Macronematous conidiophores and numerous conidia; H–I. Formation of loci in close succession; I. Spread polysaccharide-like material; J. Micronematous conidiophores; K. Ramoconidia and conidia; L. Microcyclic conidiogenesis; M. Stromatic hyphal aggregation. Scale bars: E–M = 20 µM. in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Cladosporium aulonemiae (VIC 44413, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–G. Macronematous conidiophores and numerous conidia; H–I. Formation of loci in close succession; I. Spread polysaccharide-like material; J. Micronematous conidiophores; K. Ramoconidia and conidia; L. Microcyclic conidiogenesis; M. Stromatic hyphal aggregation. Scale bars: E–M = 20 µM.
FIGURE 7 in Discovery of a new species of Caloptilia (Lepidoptera: Gracillariidae) from east and central Africa with its suggested associated host (Gentianales: Rubiaceae) and natural enemies (Hymenoptera: Eulophidae)
FIGURE 7. Caloptilia mwamba sp. nov., basal part of tegumen and vinculum, holotype, gen. prep. De Prins 3835♂.
FIGURE 21. Male genitalia, paratype RMCA ENT 000002497 in Discovery of a new species of Caloptilia (Lepidoptera: Gracillariidae) from east and central Africa with its suggested associated host (Gentianales: Rubiaceae) and natural enemies (Hymenoptera: Eulophidae)
FIGURE 21. Male genitalia, paratype RMCA ENT 000002497, gen. prep. De Prins 3838♂ (RMCA 00709), aedoeagus. Scale bar 100 µm.
FIGURE 4 in Vallissiana universitaria (Lepidoptera: Gracillariidae): a new genus and species of leaf-mining moth associated with Erythroxylum (Erythroxylaceae) in the Atlantic Forest of Brazil
FIGURE 4. Schematic representation of V. universitaria larva and pupa: sap-feeding larva of the second instar, (A) dorsal, (B) ventral; tissue-feeding larva of the fourth instar, (C) dorsal, (D) ventral; pupa, (E) dorsal, (F) ventral; (G) chaetotaxy of last larval instar. Scale bars: (A–B) 100, (C–F) 500 µm, (G) 1 mm.
FIGURE 3 in Vallissiana universitaria (Lepidoptera: Gracillariidae): a new genus and species of leaf-mining moth associated with Erythroxylum (Erythroxylaceae) in the Atlantic Forest of Brazil
FIGURE 3. Wing venation, abdomen and genitalia morphology of V. universitaria: (A) forewing and hindwing venation; (B) male last, dorsal; (C) male genitalia, ventral (phallus omitted); (D) valva, region of cucullus (indicated by rectangular area marked in C), ventral; (E) valva, detail of process at basal third (indicated by area marked in C), ventral; (F) phallus, lateroventral; (G) spines of cornuti in detail (indicated by rectangular area marked in F), latero-ventral; (H) female genitalia, ventral; (I) signum (indicated by square area marked in H), ventral; (J) sterigma in detail, (indicated by rectangular area marked in H) ventral. Scale bars: (A) 1mm; (B) 200, (C) 100, (D) 15; (E) 10; (F) 50; (G) 20; (H) 200; (I)10; (J) 50 µm.
FIGURE 7 in Vallissiana universitaria (Lepidoptera: Gracillariidae): a new genus and species of leaf-mining moth associated with Erythroxylum (Erythroxylaceae) in the Atlantic Forest of Brazil
FIGURE 7. Pupal characters of V. universitaria. Head (A) dorsal, (B) ventral, (C) lateral; (D) left prothoracic depression in detail (indicated by rectangular area marked in A), dorsal; (E) spiracle on A3, latero-dorsal; (F) sixth and seventh abdominal segments, dorsal (right spiracles are indicated by arrows); last abdominal segment, (G) lateral, (H) dorsal; (I) lateral spine of last abdominal segment in detail (indicated by square area marked in H). Scale bars: (A–C) 100, (D) 20, (E) 10, (F) 100, (G–H) 50, (I) 10 µm.
FIGURE 6 in Vallissiana universitaria (Lepidoptera: Gracillariidae): a new genus and species of leaf-mining moth associated with Erythroxylum (Erythroxylaceae) in the Atlantic Forest of Brazil
FIGURE 6. Morphology of V. universitaria tissue-feeding larva (fourth instar): head, (A) dorsal, (B) antero-ventral, (C) lateral; (D) labrum, dorsal; (E) spinneret, lateral; (F) maxilla, lateral; (G) antenna, lateral; (H) mesothoracic leg, lateral; (I) detail of tarsal claw (indicated by rectangular area marked in H), latero-posterior; (J) pseudopodium on A3, ventral; (K) spiracle on A4, lateral; (L) anal plate, postero-dorsal; (M) pseudopodia on A10, ventral. Scale bars: (A–C) 100, (D) 20, (E–G) 10, (H) 25, (I) 5, (J) 10, (K) 25, (L) 5, (M) 50 µm.
FIGURE 9 in Vallissiana universitaria (Lepidoptera: Gracillariidae): a new genus and species of leaf-mining moth associated with Erythroxylum (Erythroxylaceae) in the Atlantic Forest of Brazil
FIGURE 9. Transverse histological sections of V. universitaria mine on Erythroxylum argentinum leaf, showing changes in damage throughout larval ontogeny. (A) sap-feeding instar uses the adaxial epidermis (closed arrows point to cut cell walls of adaxial epidermis); (B) first tissue-feeding instar starts using the upper cell layers of palisade parenchyma (open arrows point to cell fragments of parenchyma left attached to damaged epidermis); (C) last tissue-feeding instar causes general damage, consuming all parenchyma cells. Ad, adaxial surface of epidermis; Ab, abaxial surface of epidermis; Lm, leaf mine; Pp, palisade parenchyma; Sp, spongy parenchyma. Scale bars = (A-C) 100µm.
FIGURE 5 in Vallissiana universitaria (Lepidoptera: Gracillariidae): a new genus and species of leaf-mining moth associated with Erythroxylum (Erythroxylaceae) in the Atlantic Forest of Brazil
FIGURE 5. Morphology of V. universitaria sap-feeding larva (second instar): head, (A) dorsal (B) ventral, (C) lateral; (D) antenna in detail (indicated by rectangular area marked in A), dorsal; (E) mouthparts in detail (indicated by rectangular area marked in B), (asterisks indicate labial palpi and arrow points to spinneret), ventral; (F) spiracle on T1, lateral; prothoracic and mesothoracic segments, (G) dorsal, (H) ventral; (I) callus on T1 (indicated by square area marked in H), ventral. Scale bars: (A–C) 50, (D) 5, (E) 10, (F) 5, (G–H) 50 (I) 5 µm.
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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.