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650 results for “Burmese”
FIGURE 2 in Beautiful wing coloration pattern in a new doratomantispine species (Neuroptera: Mantispidae) from the mid-Cretaceous Burmese amber
FIGURE 2. Detailed view of Doratomantispa pouilloni Jouault, & Nel sp. nov. holotype IGR.BU-058. A, Pronotum and head in dorsal view; B, Left foreleg with black arrows pointing outer tibial spines and white arrows pointing inner tibial spines; C, Left protarsus; D, Lateral view of apical part of left foreleg; E, Detail of forewing venation with a dark arrow pointing 1r-m. Scale bars equal 0.5 mm (A, B, D); 0.25 mm (C, E).
FIGURE 3 in Beautiful wing coloration pattern in a new doratomantispine species (Neuroptera: Mantispidae) from the mid-Cretaceous Burmese amber
FIGURE 3. Doratomantispa pouilloni Jouault, & Nel sp. nov. holotype IGR.BU-058. Interpretative line drawings. A, Wing venations with names of veins labelled; B, Raptorial foreleg; C, Terminalia (e, ectoproct; gst 10, gonostylus 10; gx 10, gonocoxites 10; T9, tergite 9; S9, sternite 9). Scale bars equal 1 mm (A); 0.5 mm (B); 0.25 mm (C).
On following pages: 452. Long-toed Myotis (Myotis secundus); 453. Bornean Whiskered Myotis (Myotis borneoensis); 454. Malaysian Whiskered Myotis (Myotis federatus): 455. Indochinese Myotis (Myotis indochinensis); 456. Peyton's Myotis (Myotis peyton); 457. Burmese Whiskered Myotis (Myotis montivagus); 458. Long-fingered Myotis (Myotis capaccinii); 459. Chinese Water Myotis (Myotis laniger); 460. Csorba's Myotis (Myotis csorbal); 461. Kashmir Cave Myotis (Myotis longipes); 462. Annamit Myotis (Myotis annamiticus); 463. Phan Luong's Myotis (Myotis phanluongi); 464. Himalayan Whiskered Myotis (Myotis siligorensis); 465. Chestnut Myotis (Myotis badius); 466. Ridley's Myotis (Myotis ridley); 467. Thick-thumbed Myotis (Myotis rosseti); 468. Horsfield's Myotis (Myotis horsfieldi); 469. Pallid Large-footed Myotis (Myotis macrotarsus); 470. Stalker's Myotis (Myotis stalkeri); 471. Gray Large-footed Myotis (Myotis adversus); 472. Maluku Myotis (Myotis moluccarum); 473. Southern Myotis (Myotis macropus); 474. Lesser Large-footed Myotis (Myotis hasselti). in Vespertilionidae
On following pages: 452. Long-toed Myotis (Myotis secundus); 453. Bornean Whiskered Myotis (Myotis borneoensis); 454. Malaysian Whiskered Myotis (Myotis federatus): 455. Indochinese Myotis (Myotis indochinensis); 456. Peyton's Myotis (Myotis peyton); 457. Burmese Whiskered Myotis (Myotis montivagus); 458. Long-fingered Myotis (Myotis capaccinii); 459. Chinese Water Myotis (Myotis laniger); 460. Csorba's Myotis (Myotis csorbal); 461. Kashmir Cave Myotis (Myotis longipes); 462. Annamit Myotis (Myotis annamiticus); 463. Phan Luong's Myotis (Myotis phanluongi); 464. Himalayan Whiskered Myotis (Myotis siligorensis); 465. Chestnut Myotis (Myotis badius); 466. Ridley's Myotis (Myotis ridley); 467. Thick-thumbed Myotis (Myotis rosseti); 468. Horsfield's Myotis (Myotis horsfieldi); 469. Pallid Large-footed Myotis (Myotis macrotarsus); 470. Stalker's Myotis (Myotis stalkeri); 471. Gray Large-footed Myotis (Myotis adversus); 472. Maluku Myotis (Myotis moluccarum); 473. Southern Myotis (Myotis macropus); 474. Lesser Large-footed Myotis (Myotis hasselti).
On following pages: 97. Savi's Pipistrelle (Hypsugo savii); 98. Alashanian Pipistrelle (Hypsugo alaschanicus); 99. Cadorna's Pipistrelle (Hypsugo cadornae); 100. Joffre's Pipistrelle (Hypsugo joffrel); 101. Chinese Pipistrelle (Hypsugo pulveratus); 102. Chocolate Pipistrelle (Hypsugo affinis); 103. Pungent Pipistrelle (Hypsugo mordax); 104. Peters's Pipistrelle (Hypsugo peters); 105. Long-toothed Pipistrelle (Hypsugo dolichodon); 106. Burmese Pipistrelle (Hypsugo lophurus); 107. Red-brown Pipistrelle (Hypsugo kitcheneri); 108. Brown Pipistrelle (Hypsugo imbricatus); 109. Big-eared Pipistrelle (Hypsugo macrotis); 110. Vordermann's Pipistrelle (Hypsugo vordermanni), 111. Anchieta's Pipistrelle (Hypsugo anchieta); 112. Kirindy Pipistrelle (Hypsugo bemainty); 113. Mouse-like Pipistrelle (Hypsugo musciculus); 114. Broad-headed Pipistrelle (Hypsugo crassulus); 115. Eisentraut's Pipistrelle (Hypsugo eisentrautl); 116. Schlieffen's Bat (Nycticeinops schlieffenii); 117. Moloney's Mimic Bat (Mimetillus moloney)). in Vespertilionidae
On following pages: 97. Savi's Pipistrelle (Hypsugo savii); 98. Alashanian Pipistrelle (Hypsugo alaschanicus); 99. Cadorna's Pipistrelle (Hypsugo cadornae); 100. Joffre's Pipistrelle (Hypsugo joffrel); 101. Chinese Pipistrelle (Hypsugo pulveratus); 102. Chocolate Pipistrelle (Hypsugo affinis); 103. Pungent Pipistrelle (Hypsugo mordax); 104. Peters's Pipistrelle (Hypsugo peters); 105. Long-toothed Pipistrelle (Hypsugo dolichodon); 106. Burmese Pipistrelle (Hypsugo lophurus); 107. Red-brown Pipistrelle (Hypsugo kitcheneri); 108. Brown Pipistrelle (Hypsugo imbricatus); 109. Big-eared Pipistrelle (Hypsugo macrotis); 110. Vordermann's Pipistrelle (Hypsugo vordermanni), 111. Anchieta's Pipistrelle (Hypsugo anchieta); 112. Kirindy Pipistrelle (Hypsugo bemainty); 113. Mouse-like Pipistrelle (Hypsugo musciculus); 114. Broad-headed Pipistrelle (Hypsugo crassulus); 115. Eisentraut's Pipistrelle (Hypsugo eisentrautl); 116. Schlieffen's Bat (Nycticeinops schlieffenii); 117. Moloney's Mimic Bat (Mimetillus moloney)).
DNA-based assessment of environmental degradation in an unknown fauna: the freshwater macroinvertebrates of the Indo-Burmese hotspot
<p>New methods are required for biomonitoring of poorly known tropical ecosystems, but biological assessments of environmental status are limited by insufficient information on taxonomy, composition, and ecology of local communities. The current work applies DNA-based assessment to establish the impact of various types of anthropogenic disturbances on the freshwater macroinvertebrates in an understudied biodiversity hotspot in South Asia, an area that attracts increasing attention for the loss of aquatic ecosystems.</p> <p>We sampled 16 river systems in the Chittagong Hill Tracts region of Bangladesh and characterised habitat intactness based on a set of 14 environmental parameters associated with habitat quality and human activities. Whole-community metabarcoding was used to investigate the distribution of hypothetical species-level clusters (Operational Taxonomic Units, OTUs) across sites of different impacts.</p> <p>We found >900 DNA clusters of insects, decapods and molluscs, dominated by Diptera, which revealed significant variation (p<0.001) in richness across sites. The presumed sensitive Ephemeroptera-Plecoptera-Trichoptera (EPT) represented 15.6% of total OTU richness. The type and strength of anthropogenic stressors varied greatly across streams but did not affect total OTU diversity. In contrast, EPT richness decreased by ~50% in response to habitat degradation. Partial-network analysis revealed 26 OTUs that may serve as potential indicators for either good or poor ecological status. Overall, our results document high diversity, local endemicity and pronounced responses to disturbance in these largely unexplored but threatened habitats.</p> <p><em>Synthesis and applications</em>: The proposed methodology combines local habitat surveys across sites of various degrees of disturbance with species-level metabarcoding, as a model for biological evaluation of water bodies in poorly known and inaccessible places across the world. Implemented here for the Indo-Burmese hotspot, the approach will have great value for applied conservation management as a step towards building a biomonitoring system in this region where currently little is known about the taxonomy, diversity and endemicity in both intact and disturbed ecosystems.</p>
On following pages: 224. Burmese Red Serow (Capricornis rubidus); 225. Japanese Serow (Capricornis crispus); 226. Formosan Serow (Capricornis swinhoei); 227. Muskox (Ovibos moschatus). in Bovidae
On following pages: 224. Burmese Red Serow (Capricornis rubidus); 225. Japanese Serow (Capricornis crispus); 226. Formosan Serow (Capricornis swinhoei); 227. Muskox (Ovibos moschatus).
On following pages: 211. Alpine Chamois (Rupicapra rupicapra); 212. Carpathian Chamois (Rupicapra carpatica); 213 Gray Goral (Nemorhaedus bedford); 216. Chinese Goral (Nemorhaedus griseus); 217. Burmese Goral (Nemorhaedus. Asia Minor Chamois (Rupicapra asiatica); 214. Himalayan Brown Goral (Nemorhaedus goral); 215. Himalayan evansi); 218. Long-tailed Goral (Nemorhaedus caudatus); 219. Red Goral (Nemorhaedus baileyi). in Bovidae
On following pages: 211. Alpine Chamois (Rupicapra rupicapra); 212. Carpathian Chamois (Rupicapra carpatica); 213 Gray Goral (Nemorhaedus bedford); 216. Chinese Goral (Nemorhaedus griseus); 217. Burmese Goral (Nemorhaedus. Asia Minor Chamois (Rupicapra asiatica); 214. Himalayan Brown Goral (Nemorhaedus goral); 215. Himalayan evansi); 218. Long-tailed Goral (Nemorhaedus caudatus); 219. Red Goral (Nemorhaedus baileyi).
FIGURE 4 in Rhomeocalpsua torosa gen. et sp. nov., a unique lineage of Endomychidae from mid-Cretaceous Burmese amber (Coleoptera: Coccinelloidea)
FIGURE 4. Details of Rhomeocalpsua torosa Li, Tomaszewska & Cai, gen. et sp. nov., holotype, NIGP180054, under confocal microscopy. A, Head, dorsal view. B, Head, ventral view. C, Antenna, dorsal view. D, Antenna, ventral view. E, Mesothorax, ventral view. F, Abdominal base, ventral view. G, Abdominal apex, ventral view. H, Mesotarsus, ventral view. I, Metatarsus, dorsal view. Abbreviations: a1–9, antennomeres 1–9; cl, clypeus; lbp, labial palp; msc, mesocoxa; msf, mesofemur; mst1–3, mesotarsomeres 1–3; msv, mesoventrite; mtf, metafemur; mtt1–3, metatarsomeres 1–3; mtv, metaventrite; mxp, maxillary palp; v1–6, ventrites 1–6. Scale bars = 100 μm.
FIGURE 5. X in Rhomeocalpsua torosa gen. et sp. nov., a unique lineage of Endomychidae from mid-Cretaceous Burmese amber (Coleoptera: Coccinelloidea)
FIGURE 5. X-ray microtomographic reconstruction of Rhomeocalpsua torosa Li, Tomaszewska & Cai, gen. et sp. nov., holotype, NIGP180054. A, Dorsal view. B, Ventral view. C, Anterodorsal view. D, Lateral view. E, Posterior view. F, Antenna, rendered under "Sum along Ray" mode. Scale bars = 500 μm in A–E, 200 μm in F.
FIGURE 2 in Rhomeocalpsua torosa gen. et sp. nov., a unique lineage of Endomychidae from mid-Cretaceous Burmese amber (Coleoptera: Coccinelloidea)
FIGURE 2. General habitus of Rhomeocalpsua torosa Li, Tomaszewska & Cai, gen. et sp. nov., holotype, NIGP180054, under widefield fluorescence. A, Dorsal view. B, Ventral view. Scale bars = 500 μm.
FIGURE 3 in Rhomeocalpsua torosa gen. et sp. nov., a unique lineage of Endomychidae from mid-Cretaceous Burmese amber (Coleoptera: Coccinelloidea)
FIGURE 3. General habitus of Rhomeocalpsua torosa Li, Tomaszewska & Cai, gen. et sp. nov., holotype, NIGP180054, under confocal microscopy. A, Dorsal view. B, Ventral view. Scale bars = 500 μm.
On following pages: 34. Burmese Hare (Lepus peguensis); 35. Ethiopian Hare (Lepus fagani); 36. Scrub Hare (Lepus Highland Hare (Lepus starcki); 40. Cape Hare (Lepus capensis); 41. Abyssinian Hare (Lepus habessinicus); 42. Tolai oiostolus); 46. Snowshoe Hare (Lepus americanus); 47. Black-tailed Jackrabbit (Lepus californicus); 48. Black Jackrabbit saxatilis); 37. African Savanna Hare (Lepus victoriae); 38. Yarkand Hare (Lepus yarkandensis); 39. Ethiopian Hare (Lepus tolai); 43. Desert Hare (Lepus tibetanus); 44. Yunnan Hare (Lepus comus); 45. Woolly Hare (Lepus (Lepus insularis). in Leporidae
On following pages: 34. Burmese Hare (Lepus peguensis); 35. Ethiopian Hare (Lepus fagani); 36. Scrub Hare (Lepus Highland Hare (Lepus starcki); 40. Cape Hare (Lepus capensis); 41. Abyssinian Hare (Lepus habessinicus); 42. Tolai oiostolus); 46. Snowshoe Hare (Lepus americanus); 47. Black-tailed Jackrabbit (Lepus californicus); 48. Black Jackrabbit saxatilis); 37. African Savanna Hare (Lepus victoriae); 38. Yarkand Hare (Lepus yarkandensis); 39. Ethiopian Hare (Lepus tolai); 43. Desert Hare (Lepus tibetanus); 44. Yunnan Hare (Lepus comus); 45. Woolly Hare (Lepus (Lepus insularis).
FIGURES 30–34 in New genera and species of Rohrthripidae (Thysanoptera: Tubulifera) from Burmese Cretaceous amber
FIGURES 30–34. Abdomen of Tubulifera. Tergites (P: pelta, T: tube, II–IX: abdominal segments number) 30–31: (30) Rohrthrips c.f. burmiticus male (MU-Fos-114/1), wings broken off (remains indicated white), indicated black: dorsolateral grooves on tergum II; (31) Gynaikothrips uzeli (Zimmermann) female, indicated: wing retaining sigmoid setae. Distal sternites of males, indicated white: edge of pointed emargination at base of tube 32–34: (32) Alavathrips moralesi reinterpreted from Peñalver et al. (2022, p. 5 Figs 3c), indicated black and dashed redrawn: phallus (designated "ovipositor" in Peñalver et al. 2022); (33) Holothrips schaubergeri (Priesner); (34) Rohrthrips breviceps holotype male (T: tube; IX: hypandrium, sternite IX).
FIGURES 5–7 in New genera and species of Rohrthripidae (Thysanoptera: Tubulifera) from Burmese Cretaceous amber
FIGURES 5–7. Rohrthripidae species. (5) Gemineurothrips microcephalus gen. et sp. n. syntype female (MU-Fos-148/1): dorsolateral view. Gemineurothrips peculiaris gen. et sp. n. holotype 6–7: (6) dorsal view; (7) left fore wing.
FIGURES 19–20 in New genera and species of Rohrthripidae (Thysanoptera: Tubulifera) from Burmese Cretaceous amber
FIGURES 19–20. Sesquithrips markpankowskii gen. et sp. n. (19) holotype female, dorsal view, mouth cone outlined white; (20) paratype male, dorsal view, mouth cone outlined white. (Note: The wings of the male are bent upwards and, therefore, longer than visible on the photo).
FIGURES 16–18 in New genera and species of Rohrthripidae (Thysanoptera: Tubulifera) from Burmese Cretaceous amber
FIGURES 16–18. Rohrthrips spp. (16) Rohrthrips pandemicus sp. n. holotype female aptera, dorsal view; (17) Rohrthrips rhamphorhynchus sp. n. holotype, dorsal view, indicated: second vein at base of fore wing; mouth cone outlined white; (18) Rohrthrips setiger sp. n. holotype female, right fore wing, indicated: second wing vein at base.
FIGURES 12–15 in New genera and species of Rohrthripidae (Thysanoptera: Tubulifera) from Burmese Cretaceous amber
FIGURES 12–15. Rohrthrips spp. (12) Rohrthrips brachyvenis sp. n. holotype female, dorsal view; (13) Rohrthrips breviceps male, dorsal view (Note: the median shading makes the tube appear narrow, but the lighter edges are part of the tube, which actually is broad at base); (14) Rohrthrips jiewenae male, dorsal view; (15) Rohrthrips multihamuli sp. n. holotype female, head and pronotum, antennal segments III–IV indicated with roman numerals.
FIGURES 1–4 in New genera and species of Rohrthripidae (Thysanoptera: Tubulifera) from Burmese Cretaceous amber
FIGURES 1–4. Rohrthripidae species. Adstrictubothrips mirapterus gen. et sp. n. 1–2: (1) holotype female dorsal view, indicated: constriction at the tube; (2) right wings, indicated: duplicated cilium on fore wing margin. Gemineurothrips microcephalus gen. et sp. n. syntype female (MU-Fos-145/1) 3–4: (3) dorsal view; (4) left antenna.
FIGURES 24–29 in New genera and species of Rohrthripidae (Thysanoptera: Tubulifera) from Burmese Cretaceous amber
FIGURES 24–29. Thysanoptera wings. Wing coupling (f: frenulum, h: hamuli, r: retinaculum, smr: submarginal ridge, indicat- ed: microtrichia) 24–27: (24) Taeniothrips inconsequens Uzel (Terebrantia: Thripidae); (25) Elaphrothrips cf. costalimai Hood (Tubulifera: Phlaeothripidae: Idolothripinae); (26) Gemineurothrips microcephalus gen. et sp. n. (Tubulifera: Rohrthripidae); (27) Rohrthrips multihamuli sp. n. (Tubulifera: Rohrthripidae). Tubulifera fore wing duplicated cilia (green to red arrow: area with duplicated cilia) 28–29: (28) Haplothrips setiger Priesner (Phlaeothripidae); (29) Gemineurothrips microcephalus gen. et sp. n. (Rohrthripidae).
FIGURES 21–23 in New genera and species of Rohrthripidae (Thysanoptera: Tubulifera) from Burmese Cretaceous amber
FIGURES 21–23. Sesquithrips rostratus gen. et sp. n. holotype female. (21) dorsal view, mouth cone outlined white; (22) left wings, indicated: distinct seta at distal end of second wing vein; (23) serrate hind margin of left hind wing.
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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.