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Fig. 6 in Description of A New Species of the Gudgeon Genus Microphysogobio Mori 1934 (Cypriniformes: Cyprinidae) from Guangdong Province, Southern China
Fig. 6. Molecular phylogenetic tree of Microphysogobio luhensis n. sp. and other comparative materials based on partial COI sequence reconstructed by Bayesian analysis method (values above the branch: posterior probabilities). The sample size of each haplotype is shown behind the OTU.
Fig. 1 in Description of A New Species of the Gudgeon Genus Microphysogobio Mori 1934 (Cypriniformes: Cyprinidae) from Guangdong Province, Southern China
Fig. 1. The Sampling localities of Microphysogobio luhensis n. sp., and comparative materials. ✚, M. luhensis n. sp.; u, M. alticorpus; l, M. brevirostris; N, M. chenhsienensis; △, M. elongatus; ◇, M. exilicauda; ▼, M. fukiensis; ¨, M. kachekensis; ▽, M. kiatingensis; ▲, M. microstomus; ¢, M. pseudoelongatus; ★, M. tafangensis; ◎, M. tungtingensis; ¤, M. xianyouensis; ☆, M. yunnanensis; ✱, M. zhangi.
Fig. 4 in Description of A New Species of the Gudgeon Genus Microphysogobio Mori 1934 (Cypriniformes: Cyprinidae) from Guangdong Province, Southern China
Fig. 4. Lip papillae of a, Microphysogobio luhensis n. sp., holotype; b, Microphysogobio kachekensis, NTOUP 2013-10-117, 64.4 mm SL; c, an illustration for morphometric measurements of lip papillae. Scale bar = 1 mm. © 2018 Academia Sinica, Taiwan
Fig. 3 in Description of A New Species of the Gudgeon Genus Microphysogobio Mori 1934 (Cypriniformes: Cyprinidae) from Guangdong Province, Southern China
Fig. 3. The dorsal view of Microphysogobio luhensis n. sp. (a, b) and Microphysogobio kachekensis (c, d), standard length was measured as 56.2, 57.3, 50.3 and 68.2 mm SL for individual a, b, c and d, respectively.
FIGURE 6 in Hyphomycetes from aquatic habitats in Southern China: Species of Curvularia (Pleosporaceae) and Phragmocephala (Melannomataceae)
FIGURE 6. Phragmocephala garethjonesii (holotype) a. Fungus on substrate; b, c. Squash mount of synnemata in distilled water; d–e. Conidia attached to conidiophore; f–k. Conidia; l. Germinating conidium; m Surface view of cultures on PDA; n. Reverse view of cultures on PDA. Scale bars: b = 70 μm, c = 100 μm, d–e = 20 μm, f–l =15 μm.
FIGURE 3. Curvularia eragrostodis a in Hyphomycetes from aquatic habitats in Southern China: Species of Curvularia (Pleosporaceae) and Phragmocephala (Melannomataceae)
FIGURE 3. Curvularia eragrostodis a. synnemata on wood; b. conidiophore with conidia; c. conidiophore d–e. conidiophore with tretic conidiogenesis. f–m: conidia; n. germinating conidium. Scale bars: b = 60 μm, c = 50 μm, d = 20 μm, e = 15 μm, f–g, i–m = 10 μm, h = 5μm, n = 20 μm.
FIGURE 4. Curvularia verruculosa a in Hyphomycetes from aquatic habitats in Southern China: Species of Curvularia (Pleosporaceae) and Phragmocephala (Melannomataceae)
FIGURE 4. Curvularia verruculosa a. synnemata on wood; b–c. conidia and conidiophores; d. conidiogenous cells; e–l. conidia; m. germinating conidium; n. surface view of cultures on PDA; o. reverse view of cultures on PDA. Scale bars: b = 50 μm, c = 40 μm, d = 20 μm, e–l = 10 μm, m = 20 μm.
FIGURE 5. Phragmocephala atra a–b in Hyphomycetes from aquatic habitats in Southern China: Species of Curvularia (Pleosporaceae) and Phragmocephala (Melannomataceae)
FIGURE 5. Phragmocephala atra a–b. synnemata on the substrate; c–d. Conidia attached to conidiophores; e–g. conidia; h. germinating conidium; i. surface view of cultures on PDA; j. reverse view of culturs son PDA. Scale bars: c = 50 μm, d–e,h = 30 μm, f = 15 μm, g = 20 μm.
FIGURE 1 in Hyphomycetes from aquatic habitats in Southern China: Species of Curvularia (Pleosporaceae) and Phragmocephala (Melannomataceae)
FIGURE 1. Maximum likelihood tree generated from analysis of the LSU in Pleosporales. ML, MP bootstrap values ≥70 % are displayed above or below each branch. Ex-type and ex-epitype cultures are in bold. The limits of the families Pleosporaceae and Melannomataceae are highlighted in blue. The isolates collected and identified in this study are in red. The tree is rooted with Manglicola guatemalensis (BCC20079 and BCC20157).
FIGURE 3. Scleroramularia musae isolate GLZJXJ13B. A in A new species of Scleroramularia associated with sooty blotch and flyspeck in Southern China
FIGURE 3. Scleroramularia musae isolate GLZJXJ13B. A. Colony on synthetic nutrient-poor agar (SNA) after 2 weeks. B. Colony on PDA (note sclerotia). C. Flyspeck signs on banana peel. D, G, H. Chains of conidia. E, F. Conidiogenous cells giving rise to chains of conidia. Scale bars: E, F = 20 μm, D, G, H = 10 μm.
FIGURE 2 in Hyphomycetes from aquatic habitats in Southern China: Species of Curvularia (Pleosporaceae) and Phragmocephala (Melannomataceae)
FIGURE 2. Maximum likelihood tree generated from analysis of ITS in the genus Curvularia. ML, MP bootstrap values ≥70 % are displayed above or below each branch. Ex-type and ex-epitype cultures are in bold. The two Curvularia species identified in this study with similar isolates obtained from GenBank are highlighted in blue. Reference strains used for the identifications are marked with an asterisk. The isolates collected and identified in this study are in red. The tree is rooted with NR111243, Pleospora herbarum (CBS 191.86).
FIGURE 1 in A new species of Scleroramularia associated with sooty blotch and flyspeck in Southern China
FIGURE 1. Phylogram of the Maximum Parsimony tree revealed by PAUP v.4.0b10. Bayesian tress showed similar topology as revealed by MP tree. Bayesian posterior probabilities (before the /)>0.5 and parsimony bootstrap proportions (after the /)>50 % were indicated along branches determined from ITS sequences. The tree is rooted to Beauveria bassiana.
FIGURE 2. The single most parsimonious trees obtained from a in A new species of Scleroramularia associated with sooty blotch and flyspeck in Southern China
FIGURE 2. The single most parsimonious trees obtained from a heuristic search combined ITS and TEF sequence alignment. Numbers at branching nodes represent bootstrap values>50 % (1000 replicates). The tree was rooted to Beauveria bassiana (GenBank AY532027 and AY531936 for ITS and TEF, respectively).
FIGURE 4 in Lactarius vividus sp. nov. (Russulaceae, Russulales), a widely distributed edible mushroom in central and southern China
FIGURE 4. Lactarius vividus (all from holotype except for C from KUN-HKAS 73591). A: basidiospores, B. hymenium, C: pleuromacrocystidia, D: pleuropseudocystidia; E. lamellar edge, F. pileipellis. (A: scale bar = 5 μm, B–F: scale bars = 20 μm).
FIGURE 3 in Lactarius vividus sp. nov. (Russulaceae, Russulales), a widely distributed edible mushroom in central and southern China
FIGURE 3. Basidiocarps of Lactarius vividus, L. akahatsu and L. deliciosus, showing the subdistant to distant lamellae in L. vividus in contrast with the crowded lamellae in the other two species. A: L. vividus (KUN-HKAS 73591, holotype); B: L. vividus, in dry habitat (KUN-HKAS 61742); C: L. vividus, old basidiocarps (KUN-HKAS 61725); D: L. vividus, undiscoloring basidiocarps (KUN-HKAS 61965); E: L. vividus, undiscoloring basidiocarp (KUN-HKAS 61325); F: L. vividus, with rich-colored subdistant lamellae and evenly colored stipe (KUN-HKAS 73576); G: L. akahatsu, with crowded lamellae (KUN-HKAS 61764); H: L. deliciosus, with crowded lamellae (KUN-HKAS 61910).
FIGURE 2 in Lactarius vividus sp. nov. (Russulaceae, Russulales), a widely distributed edible mushroom in central and southern China
FIGURE 2. Maximum Likelihood (ML) phylograms of Lactarius vividus and its relatives based on the ITS region and the gpd gene, rooted with L. rufus. Bootstrap proportions higher than 70% in the ML analysis and Posterior probabilities higher than 95% in the Bayesian Inference analysis are indicated above and below the branches respectively. Initials of the sample numbers correspond to the collectors or herbaria in Table 1. Samples of L. vividus are in bold.
FIGURE 2. Primulina porphyrea X. L in Primulina porphyrea (Gesneriaceae), a new species from southern Hunan, China
FIGURE 2. Primulina porphyrea X. L. Yu & Ming Li, sp. nov. (a) Habitat. (b) Mature plant. (c) Adaxial leaf blade surface. (d) Abaxial leaf blade surface. (e) Rhizomes. (f) Front view of flower. (g) Inflorescence. (h) Pistil and disc. (i) Opened corolla showing stamens and staminodes. (j) Capsule.
FIGURE 1. Primulina porphyrea X. L in Primulina porphyrea (Gesneriaceae), a new species from southern Hunan, China
FIGURE 1. Primulina porphyrea X. L. Yu & Ming Li, sp. nov. (drawn by Jing Tian): (A) Plant with flowers. (B) Calyx. (C) Pistil. (D) Opened corolla showing stamens and staminodes.
FIGURE 3 in Morphological and molecular evidence for a new species of Russula (Russulaceae) from southern China
FIGURE 3 Basidiospores of Russula subrutilans (Holotype). Photo by a Scanning electron microscope (SEM, JSM-6510LV).
FIGURE 3. Briggsia longipes. A in Briggsia leiophylla, a new species of Gesneriaceae from southern Guizhou, China
FIGURE 3. Briggsia longipes. A) Habit. B) Cymes and flowers. C) Top view of corolla. D) Frontal view of corolla. E) Lateral view of corolla. F) Pedicel. G) Calyx lobes. H) Pistil. I) Stigma.
ScienceDex guides
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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.