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13,397 results for “sp. nov.”
FIGURE 1 in Hydnotrya qinghaiensis sp. nov. (Discinaceae, Pezizales) from Tibetan Plateau, China
FIGURE 1. Phylogenetic relationships of Hydnotrya species inferred from nrDNA-ITS sequences using maximum likelihood (ML) analysis. Bootstrap values ≥70% (left) and Bayesian posterior probabilities ≥0.95 (right) were provided above branches. Sequences generated in this study were shown in bold. Sequences of Hydnotrya qinghaiensis ind. 1 and Hydnotrya qinghaiensis ind. 2 were from two different ascocarps of the holotype (HMAS 350656).
FIGURE 3 in Hydnotrya qinghaiensis sp. nov. (Discinaceae, Pezizales) from Tibetan Plateau, China
FIGURE 3. Scanning electron micrographs of Hydnotrya qinghaiensis (HMAS 350656, Holotype). A: Asci and extended paraphyses (indicated by arrow). B, C: Coated ascospores in asci. D, E: Exposed ascospores. F: Broken ascospores showing exosporium. Bars: A–B 50 μm; C 20 μm; D–F 10 μm.
FIG. 5 in Sibling species in the marine pollution indicator genus Pontonema (Nematoda: Oncholaimidae), with a description of mediterranea sp. nov.
FIG. 5. Pontonema mediterranea sp. nov. (a) Lateral view of male head-end; (b) lateral view of male tail-end; (c) lateral view of female tail.
FIG. 2 in Sibling species in the marine pollution indicator genus Pontonema (Nematoda: Oncholaimidae), with a description of mediterranea sp. nov.
FIG. 2. Multidimensional scaling (MDS) ordination for Pontonema males (upper) and females (lower) based on the complete character set. Dissimilarity measure for data is normalized Euclidean distance. Stress in both cases = 0.13. Sites K, C, T, S, G and B correspond to Kiel fjord, Cornelian Bay, Tyne Estuary, SeÁte, Garroch Head (Firth of Clyde) and Bay of Blanes, respectively.
FIG. 3 in Sibling species in the marine pollution indicator genus Pontonema (Nematoda: Oncholaimidae), with a description of mediterranea sp. nov.
FIG. 3. Multidimensional scaling (MDS) ordinations for Pontonema males based on character subsets. Dissimilarity measure for data is normalized Euclidean distance. Sites K, C, T, S, G and B correspond to Kiel fjord, Cornelian Bay, Tyne Estuary, SeÁte, Garroch Head (Firth of Clyde) and Bay of Blanes, respectively. (a) Ordination of character 15, stress= 0.17; (b) ordination of characters 7 and 15, stress = 0.02; (c) ordination of characters 3, 7 and 15, stress = 0.07; (d) ordination of characters 1, 7, 12 and 15, stress= 0.10.
FIG. 1 in Sibling species in the marine pollution indicator genus Pontonema (Nematoda: Oncholaimidae), with a description of mediterranea sp. nov.
FIG. 1. Diagrammatic representation of the characters quanti®ed. Based on P. alaeospicula as drawn by Bett and Moore (1988). The broken lines indicate the character measurements, and the numbers correspond to the character names as given in table 1. (a) Anterior oesophageal region, to extent of nerve ring. (b) Anterior region. Second subventral tooth is obscured by ®rst. The obvious characters of body length, maximum body diameter and length from vulva to anterior are not represented. (c) Posterior end male. (d) Posterior end female.
FIG. 4 in Sibling species in the marine pollution indicator genus Pontonema (Nematoda: Oncholaimidae), with a description of mediterranea sp. nov.
FIG. 4. Multidimensional scaling (MDS) ordinations for Pontonema females based on character subsets. Dissimilarity measure for data is normalized Euclidean distance. Sites K, C, T, S, G and B correspond to Kiel fjord, Cornelian Bay, Tyne Estuary, SeÁte, Garroch Head (Firth of Clyde) and Bay of Blanes, respectively. (a) Ordination of character 6, stress= 0.23; (b) ordination of characters 1 and 6, stress = 0.00; (c) ordination of characters 1, 8 and 9, stress = 0.09; (d) ordination of characters 1, 8, 9 and 10, stress= 0.17.
FIGURE 2 in Greeneria saprophytica sp. nov. on dead leaves of Syzygium cumini from Chiang Rai, Thailand
FIGURE 2. Greeneria saprophytica (MFLUCC 12-0298, holotype). A. Specimen on dead leaf of Syzygium cumini. B. Conidiomata on the host surface. C. L.S. of a conidioma. D–H. Phialidic conidiogenous cells with developing conidia; in G. note proliferating conidiogenous cell. I–L. Conidia. M. Germinating conidium. N–O. Colonies on PDA; N. From top, O. From reverse. Scale bars: C = 50 μm, D–M = 10 μm.
FIGURE 1 in Greeneria saprophytica sp. nov. on dead leaves of Syzygium cumini from Chiang Rai, Thailand
FIGURE 1. Maximum likelihood (ML) majority rule 28S nuclear large subunit (nuLSU) consensus tree for Greeneria saprophytica, G. uvicola and other representatives in order Diaporthales and genera incertae sedis. RAxML bootstrap support values are given at the nodes. The tree is rooted to Coniochaeta velutina (Coniochaetales).
FIGURE 2 in Phylogenetic analysis of the bee genus Capicola with the description of Capicola hantamensis sp. nov. (Hymenoptera: Dasypodaidae)
FIGURE 2. Capicola hantamensis, male (scale=100µm); a. Apicolateral view of sternum 6; b. Ventral view of sternum 6; c. Ventral view of sternum 7; d. Ventral view of sternum 8; e. Dorsal view of genitalia; f. Lateral view of genitalia; g. Ventral view of genitalia.
FIGURE 5 in Phylogenetic analysis of the bee genus Capicola with the description of Capicola hantamensis sp. nov. (Hymenoptera: Dasypodaidae)
FIGURE 5. Cladogram of Capicola from heuristic search (length=54, CI=0.5370 and RI=0.6835). Characters are shown above circles, character states below.
FIGURE 4 in Phylogenetic analysis of the bee genus Capicola with the description of Capicola hantamensis sp. nov. (Hymenoptera: Dasypodaidae)
FIGURE 4. Global distribution of the genus Capicola. black squares = collecting localities of Capicola hantamensis.
FIGURE 4 in Acronema crassifolium sp. nov. (Apiaceae), a distinct new species from Yunnan, southwest China
FIGURE 4. Pollen morphology of Acronema crassifolium Huan C.Wang, X.M. Zhou & Y.H. Wang. Voucher specimen: Wang et al. 1344 (HYU).
FIGURE 5 in Acronema crassifolium sp. nov. (Apiaceae), a distinct new species from Yunnan, southwest China
FIGURE 5. Geographical distribution of Acronema crassifolium Huan C.Wang, X.M. Zhou & Y.H. Wang (solid stars).
FIGURE 2 in Acronema crassifolium sp. nov. (Apiaceae), a distinct new species from Yunnan, southwest China
FIGURE 2. Type specimens (Zhu & Wu 2802) of Acronema crassifolium Huan C.Wang, X.M. Zhou & Y.H. Wang. A. Holotype. B. Isotype.
FIGURE 5. Protargolimpregnated specimens. a in Pseudourostyla pelotensis sp. nov. (Ciliophora, Stichotrichia, Urostylida): a new psammophilic ciliate from the southern Brazil
FIGURE 5. Protargolimpregnated specimens. a. Ventral side; b. Dorsal side; c. Extrusomes (arrows); d. Oral apparatus and macronuclear nodules. Arrow points to bowshaped structure associated to the undulating membranes; e. Formation of the new adoral membranelles during reoganizational morphogenesis (arrow); f. Ventral side of specimen with a shortened left marginal row (arrows). aC—anterior corona; AZM—adoral zone of membranelles; BC—buccal cirrus; DK —dorsal kineties; eM—endoral membrane; FTC—frontoterminal cirri; LMR—left marginal cirral row; Ma — macronuclear nodules; MVR—midventral cirral row; pC—posterior corona; pM— paroral membrane; RMR— right marginal cirral rows; TC— transverse cirri. Scale bars: 10 µm.
FIGURE 1. Acronema crassifolium Huan C.Wang, X.M. Zhou & Y.H. Wang. A. Habit. B. Infrutescence. C. Flower. D. Fruit. A and C in Acronema crassifolium sp. nov. (Apiaceae), a distinct new species from Yunnan, southwest China
FIGURE 1. Acronema crassifolium Huan C.Wang, X.M. Zhou & Y.H. Wang. A. Habit. B. Infrutescence. C. Flower. D. Fruit. A and C drawn from Wang et al. 1344 (HYU), B and D drawn from Zhu & Wu 2802 (HYU).
FIGURE 2 in Pseudourostyla pelotensis sp. nov. (Ciliophora, Stichotrichia, Urostylida): a new psammophilic ciliate from the southern Brazil
FIGURE 2. Schematic drawings of protargolimpregnated specimens. a. Ventral region. Arrow shows a variation of the virtual intersection of the undulating membranes; b. Dorsal region showing macronuclear nodules. Chromatin granulations are depicted in the two macronuclear nodules pointed by arrows. Asterisk marks the bowshaped structure, which is visible at the macronucleus focal plane; c. Dorsal region showing dorsal kineties (arrow) and marginal cirral rows. LMR — left marginal cirral rows; Ma — macronuclear nodule; RMR — right marginal cirral rows. Scale bars: 10 µm.
FIGURE 1 in Pseudourostyla pelotensis sp. nov. (Ciliophora, Stichotrichia, Urostylida): a new psammophilic ciliate from the southern Brazil
FIGURE 1. Schematic drawings of Pseudourostyla pelotensis sp. nov. a. Living specimen in ventral view; b. Scheme of living specimen showing the contractile vacuoles and their aspect during pulsation; c. Extrusomes aligned close to the pelicle, as seen in specimens from protargol slides; d. Ventral region of protargolimpregnated specimen; e. Bowshaped structure associated with the undulating membranes. Arrow marks new adoral membranelles in formation. aC — anterior corona; aCV — anterior contractile vacuole; AZM — adoral zone of membranelles; BC — buccal cirrus; BS — bowlike structure; eM — endoral membrane; FTC — frontotermial cirri; LMR — left marginal cirral rows; MVR — midventral cirral row; pC — posterior corona; pCV — posterior contractile vacuole; pM — paroral membrane; RMR — right marginal cirral rows; TC — transverse cirri. Scale bars: 10 µm.
FIGURE 3. Rhysotoechia welzeniana W.N.Takeuchi. A in Modern sequels to the Kaiserin-Augusta-Fluss itinerary of Carl Ledermann: Rhysotoechia welzeniana sp. nov. (Sapindaceae), a remarkable species from the upper Sepik of Papua New Guinea
FIGURE 3. Rhysotoechia welzeniana W.N.Takeuchi. A, pistillate plant with anthetic inflorescence; B, infructescence (fruit rotting); C, pistillate flowers, style exserted; D, staminate flowers (after drying), stamens exserted. A–C from Takeuchi et al. 26240 (paratype), D from Takeuchi et al. 26239 (type).
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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)
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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.