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275 results for “Morpho”
FIGURE 4 in Species diversity deflation: Insight into taxonomic validity of Garra species (Teleostei: Cyprinidae) from Dhofar Region in the Arabian Peninsula using an integrated morpho-molecular approach
FIGURE 4. Garra sindhae; a, ZM-CBSU O.17Gi102, 69 mm SL; b, ZM-CBSU O.17Gi107, 56 mm SL; c, ZM-CBSU O.17Gi113, 50 mm SL; Oman: Wadi Andhur.
FIGURE 2 in Species diversity deflation: Insight into taxonomic validity of Garra species (Teleostei: Cyprinidae) from Dhofar Region in the Arabian Peninsula using an integrated morpho-molecular approach
FIGURE 2. Maximum Likelihood and Bayesian phylogeny reconstructed based on 629 bp of COI 5' end. The values besides the branches before and after a slash are BI posterior and ML bootstrap probability values, respectively. Black bars right to the specimen labels indicates species delimitation results from PTP followed by the results of the mPTP approach as dashed bars.
FIGURE 11 in Species diversity deflation: Insight into taxonomic validity of Garra species (Teleostei: Cyprinidae) from Dhofar Region in the Arabian Peninsula using an integrated morpho-molecular approach
FIGURE 11. Garra smartae; a, ZM-CBSU O.12Ga101, 70 mm SL; b, ZM-CBSU O.12Ga106, 58 mm SL; c, ZM-CBSU O.12Ga104, 41 mm SL; Oman: Dhofar, Laggashalyon.
FIGURE 12 in Species diversity deflation: Insight into taxonomic validity of Garra species (Teleostei: Cyprinidae) from Dhofar Region in the Arabian Peninsula using an integrated morpho-molecular approach
FIGURE 12. Garra smartae; a, ZM-CBSU O.12Ga101, 70 mm SL; b, ZM-CBSU O.12Ga106, 58 mm SL; c, ZM-CBSU O.12Ga104, 41 mm SL; Oman: Dhofar, Laggashalyon.
FIGURE 7 in Species diversity deflation: Insight into taxonomic validity of Garra species (Teleostei: Cyprinidae) from Dhofar Region in the Arabian Peninsula using an integrated morpho-molecular approach
FIGURE 7. Garra smartae; a, ZM-CBSU O.16Ga183, 65 mm SL; b, ZM-CBSU O.16Ga186, 55 mm SL; c, ZM-CBSU O.16Ga192, 46 mm SL; Oman: Hasik, Wadi Hadhabram.
FIGURE 3 in Species diversity deflation: Insight into taxonomic validity of Garra species (Teleostei: Cyprinidae) from Dhofar Region in the Arabian Peninsula using an integrated morpho-molecular approach
FIGURE 3. Garra sindhae; a, ZM-CBSU O.17Gi102, 69 mm SL; b, ZM-CBSU O.17Gi107, 56 mm SL; c, ZM-CBSU O.17Gi113, 50 mm SL; Oman: Wadi Andhur.
FIGURE 2 in Morpho-phylogeny characterization of Linocarpon bambusina sp. nov. (Linocarpaceae, Chaetosphaeriales) associated with bamboo in Yunnan Province, China
FIGURE 2. Linocarpon bambusina (GMB1360, holotype) a–c. Appearance of ascomata on host substrate. d. Section of an ostiole. e. Section of an ascoma. f. Peridium. g–j. Asci (i, j stained by Cotton blue reagent). k. Club-shaped pedicel stained by lactophenol cotton blue reagent. l. Ascus apical tip stained by Melzer's reagent. m. Paraphyses. n–s. Ascospores (o, r, s stained by lactophenol cotton blue reagent). t. A germinating ascospore. u, v. Colonies on PDA from above and below after one month. Scale bars: d, e = 200 μm; f, k = 20 μm; g–j = 50 μm; l, m = 20 μm; n–s = 50 μm.
FIGURE 1 in Morpho-phylogeny characterization of Linocarpon bambusina sp. nov. (Linocarpaceae, Chaetosphaeriales) associated with bamboo in Yunnan Province, China
FIGURE 1. RAxML tree based on a combined dataset of LSU, SSU, and tef1-α gene sequences. Bootstrap support values for maximum likelihood (ML) equal to or higher than 50% and bayesian posterior probability (BYPP) equal to or higher than 0.90 are indicated above the branches. Newly generated sequences are shown in red, while the ex-type species are shown in bold black.
FIGURE 4 in Elucidating taxonomic status of Goodyera medogensis (Orchidaceae) based on morpho-molecular data
FIGURE 4. The phylogenetic tree of the genus Goodyera obtained from Maximum Likelihood (ML) and Bayesian Inference (BI) analysis of nr+cpDNA (ITS+trnL-F+matK) dataset. The samples of G. alveolata and G. medogensis were highlighted with red colour. Both red and blue coloured samples denote the sect. Reticulum. The bootstrap (BS) value in percentage from the ML and the Posterior Probability (PP) value from the BI analysis are represented at corresponding branches. The BS value <70% and the PP value <0.70 were omitted and denoted with '-' indicating a low node support.
FIGURE 2 in Elucidating taxonomic status of Goodyera medogensis (Orchidaceae) based on morpho-molecular data
FIGURE 2. The phylogenetic tree of the genus Goodyera obtained from Maximum Likelihood (ML) and Bayesian Inference (BI) analysis of nuclear (ITS) dataset. The samples of G. alveolata and G. medogensis were highlighted with red colour. Both red and blue coloured samples denote the sect. Reticulum. The bootstrap (BS) value in percentage from the ML and the Posterior Probability (PP) value from the BI analysis are represented at corresponding branches. The BS value <70% and the PP value <0.70 were omitted and denoted with '-' indicating a low node support.
FIGURE 1. Goodyera alveolata Pradhan. A1 in Elucidating taxonomic status of Goodyera medogensis (Orchidaceae) based on morpho-molecular data
FIGURE 1. Goodyera alveolata Pradhan. A1. Leaves; B1. Portion of rachis; C1–D1. Flower; E1. Dorsal sepal; F1. Lateral sepal; G1. Petal; H1. Side view of column with anther, labellum and pedicel plus ovary; I1. Top view of labellum. Goodyera medogensis H.Z. Tian, Y.H. Tong & B.M. Wang. A2. Leaves; B2. Portion of rachis; C2–D2. Flower; E2. Dorsal sepal; F2. Lateral sepal; G2. Petal; H2. Side view of column with anther, labellum and pedicel plus ovary; I2. Top view of labellum. [A2–I2 after Tong et al. 2022]
FIGURE 3 in Elucidating taxonomic status of Goodyera medogensis (Orchidaceae) based on morpho-molecular data
FIGURE 3. The phylogenetic tree of the genus Goodyera obtained from Maximum Likelihood (ML) and Bayesian Inference (BI) analysis of cpDNA (matK and trnL-F) dataset. The samples of G. alveolata and G. medogensis were highlighted with red colour. Both red and blue coloured samples denote the sect. Reticulum. The bootstrap (BS) value in percentage from the ML and the Posterior Probability (PP) value from the BI analysis are represented at corresponding branches. The BS value <70% and the PP value <0.70 were omitted and denoted with '-' indicating a low node support.
FIGURE 4. Sargassum feldmannii Pham-hoang. A in Morpho-anatomical study of Sargassum (Fucales, Phaeophyceae) diversity reveals noteworthy collections and range extensions from southwestern Vietnam
FIGURE 4. Sargassum feldmannii Pham-hoang. A. Habit of a voucher specimen (NVT2561). B. Holdfast. C. Leaves. D. Vesicles. E. Receptacles. F. Section of receptacle.
FIGURE 3. Sargassum confusum C.Agardh. A in Morpho-anatomical study of Sargassum (Fucales, Phaeophyceae) diversity reveals noteworthy collections and range extensions from southwestern Vietnam
FIGURE 3. Sargassum confusum C.Agardh. A. Habit of a voucher specimen (NVT2039). B. Holdfast. C. Leaves. D. Vesicles. E. Receptacle. F. Section of male receptacle.
FIGURE 2. A. Sargassum cinereum J.Agardh. A in Morpho-anatomical study of Sargassum (Fucales, Phaeophyceae) diversity reveals noteworthy collections and range extensions from southwestern Vietnam
FIGURE 2. A. Sargassum cinereum J.Agardh. A. Habit of a voucher specimen (NVT2497). B. Holdfast. C. Leaves. D. Vesicle. E. Receptacle. F. Section of male receptacle.
FIGURE 5. Sargassum microcystum J.Agardh. A in Morpho-anatomical study of Sargassum (Fucales, Phaeophyceae) diversity reveals noteworthy collections and range extensions from southwestern Vietnam
FIGURE 5. Sargassum microcystum J.Agardh. A. Habit of a voucher specimen (NVT2468). B. Holdfast. C. Leaves. D. Vesicles. E. Receptacles. F. Section of female receptacle.
FIGURE 1 in Morpho-anatomical study of Sargassum (Fucales, Phaeophyceae) diversity reveals noteworthy collections and range extensions from southwestern Vietnam
FIGURE 1. Collection sites of Sargassum from the Phu Quoc Island and nearby localities, southwestern Vietnam.
FIGURE 1 in Implications of stipe and midrib morpho-anatomy on the taxonomy of Polypodiaceous ferns
FIGURE 1. Anatomical details of studied Polypodiaceae. A: T.S. of stipe of A. wallichiana B: Enlarged view in cross section C: Portion of midrib in P. heteractis showing prominent cuticle D – F: VB of stipe in A. wallichiana, L. involuta, P. heteractis G – I: Enlarged view of midrib section in A. wallichiana, L. involuta. P. heteractis, with indications of xylem (x), phloem (f), endodermis (en), pericycle (p), cortex (c), hypodermis (h), epidermis (ep), circumendodermal band (cb), vascular bundle (vb), cuticle (cu). Bar = 200 µm.
Morpho-functional Cardiac Modifications in Treated Mutated Transthyretin Cardiac Amyloidosis
ClinicalTrials.gov study NCT04387344. IPD Sharing: Not stated. Countries: 1. Publications: 6.
Multimodal Morpho-functional Study in Glaucoma Patients-Citicoline Oral Solution
ClinicalTrials.gov study NCT05315206. IPD Sharing: YES. Countries: 1. Publications: 22.
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
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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.