Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
1,751
datasets available to search
ShareScore release 0.7.1
Dataset results
1,751 results for “molecular phylogenetics”
Fig. 1 in Phylogenetic relationships within the flatworm genus Matuxia (Platyhelminthes, Tricladida, Continenticola) inferred from molecular data with the description of a southern lineage of the genus
Fig. 1 Distributional range of the genus Matuxia in areas of Atlantic Forest from southeastern and southern Brazil
Fig. 3 in Phylogenetic relationships within the flatworm genus Matuxia (Platyhelminthes, Tricladida, Continenticola) inferred from molecular data with the description of a southern lineage of the genus
Fig. 3 Matuxia tymbyra Rossi & Leal-Zanchet, sp. nov.: a–b photograph of live specimens, a MZU PL.00181 and b holotype, in dorsal view; c colour pattern of the holotype after fixation in dorsal view; d eye pattern of a fixed specimen (MZU PL.00183) in dorsal view. Anterior tip to the left. The position of the pharynx and copulatory apparatus is indicated by the light marks on dorsal surface in c
FIGURE 2 in Molecular phylogenetic analyses of Cucurbitaceae tribe Benincaseae urge for merging of Pilogyne with Zehneria
FIGURE 2. Bayesian consensus tree with Bayesian posterior probabilities (>0.80) and maximum likelihood bootstrap values (>60%) shown at the nodes.
FIGURE 9 in Molecular phylogenetic and morphological analyses of the traditional tribe Coriandreae (Umbelliferae-Apioideae)
FIGURE 9. Schematic transverse sections of mericarp of Schrenkia alaica Pimenov (Pimenov et al. 503, MW), drawn from Pimenov, Vasilieva et Lavrova 503.1 = exocarp; 2 = outer layer of mesocarp; 3 = middle (sclerenchymatous) layer of mesocarp; 4 = inner layer of mesocarp; 5 = endocarp; 6 = endosperm; 7 = vascular bundle of funicle; scale bar = 1mm.
FIGURE 7 in Molecular phylogenetic and morphological analyses of the traditional tribe Coriandreae (Umbelliferae-Apioideae)
FIGURE 7. Known geographical distribution of Schrenkia vaginata. Dots represent localities where herbarium specimens were collected. Details of accession codes are indicated in the Appendix.
FIGURE 4 in Molecular phylogenetic and morphological analyses of the traditional tribe Coriandreae (Umbelliferae-Apioideae)
FIGURE 4. Schematic transverse sections of mericarps. A. Schtschurowskia meifolia (Pimenov et al. 113, MW); B. Sclerotiaria pentaceros (Sovetkina, TAK). Fruits are not divided into two mericarps at maturity. A-B: redrawn from Politova (Politova, unpublished). 1 = exocarp; 2 = mesocarp: sclerenchymatous layer; 3 = secretory ducts; 4 = endosperm; scale bar= 1mm.
FIGURE 3 in Molecular phylogenetic and morphological analyses of the traditional tribe Coriandreae (Umbelliferae-Apioideae)
FIGURE 3. SEM micrographs of mericarp surfaces, (scale bar = 1000 μm) and schematic transverse sections of mericarps: A. smooth and glabrous in Schrenkia golickeana (Pimenov et al.135, MW); B. smooth with tubercles in Schrenkia papillaris (Pimenov et al.216, MW); C. ribbed with big hardened teeth in Lipskya insignis (Pimenov et al.380, MW).
FIGURE 1 in Molecular phylogenetic and morphological analyses of the traditional tribe Coriandreae (Umbelliferae-Apioideae)
FIGURE 1. Majority rule consensus tree (50%) of the Bayesian analysis of the ITS data. Numbers are posterior probabilities and maximum parsimony bootstrap support values. Scale bar corresponds to 0.1 substitutions per site. Members of the tribe Coriandreae are indicated by shading.
FIGURE 2 in Molecular phylogenetic and morphological analyses of the traditional tribe Coriandreae (Umbelliferae-Apioideae)
FIGURE 2. Majority rule consensus trees (50%) of the Bayesian analysis of the 45 accessions datasets. Numbers are posterior probabilities and maximum parsimony bootstrap support values. Scale bar corresponds to 0.1 substitutions per site.
FIGURE 6 in Molecular phylogenetic and morphological analyses of the traditional tribe Coriandreae (Umbelliferae-Apioideae)
FIGURE 6. Diversity of petals in the tribe Coriandreae: A. Bifora testiculata (Davis 28034, ANK); B. Coriandrum sativum (Grizi and Leinkram s.n., MHA) C. Schrenkia congesta (Pimenov et al.157, MW). A-C: redrawn from Politova (Politova, unpublished).
FIGURE 5 in Molecular phylogenetic and morphological analyses of the traditional tribe Coriandreae (Umbelliferae-Apioideae)
FIGURE 5. Schematic transverse sections of mericarps.A. Schrenkia golickeana (Pimenov et al.135, MW); B. Kosopoljanskya turkestanica (Pimenov et al. 891, MW). A-B: redrawn from Politova (Politova, unpublished). 1 = exocarp; 2 = mesocarp: sclerenchymatous layer; 3 = secterory ducts; 4 = endosperm; scale bar = 1mm.
FIGURE 2 in Molecular phylogenetic analysis reveals two new species of Discosia from Italy
FIGURE 2. Discosia italica (MFLU 14–0298, holotype). A. Specimen. B, C. Black conidiomata on host surface. D. Vertical section of conidioma. E. Section of peridium. F–I. Conidiogenous cells and developing conidia. J–N. Conidia. Scale bars: B = 500 μm. C = 200 μm. D = 100 μm. E, F = 5 μm. G = 10 μm. H–N = 5 μm.
FIGURE 1 in Molecular phylogenetic analysis reveals two new species of Discosia from Italy
FIGURE 1. Best scoring RAxML tree of Discosia strains obtained from combined dataset of LSU and ITS sequence alignment. Bootstrap support (BS) values of maximum parsimony (MP) and maximum likelihood (ML) (equal to or greater than 50% based on 1.000 replicates) and Bayesian posterior probabilities (PP) (equal to or above 0.95) are shown at the nodes. New species strains are in blue and bold the ex-types (type). The tree is rooted to Pestalotiopsis versicolor (BRIP 14534).
FIGURE 3 in Molecular phylogenetic analysis reveals two new species of Discosia from Italy
FIGURE 3. Discosia fagi (MFLU 14–0299, holotype). A. Specimen. B, C. Black conidiomata on the host surface. D, E. Vertical section of conidioma. F. Section of peridium. G–H. Conidiogenous cells and developing conidia. I–L. Conidia. Scale bars: B = 500 μm. C = 200 μm. D, E = 100 μm. F–L = 5 μm.
FIGURE 3 in Evolution of species diversity in the genus Chamaecostus (Costaceae): molecular phylogenetics and morphometric approaches
FIGURE 3. Box and whisker plots of three significantly different morphometric variables between Chamaecostus cuspidatus (n=14), Chamaecostus subsessilis s.str. (n=51) and Chamaecostus acaulis comb. nov. (n=83), showing means, quartiles and ranges. A—Leaf length (cm); B—Leaf Maximum Width (cm); C—Leaf Area (cm2).
FIGURE 4. Chamaecostus acaulis comb. nov. and Chamaecostus subsessilis s in Evolution of species diversity in the genus Chamaecostus (Costaceae): molecular phylogenetics and morphometric approaches
FIGURE 4. Chamaecostus acaulis comb. nov. and Chamaecostus subsessilis s.str.. (B) photo by W.W.Thomas. (D) photo by D.Skinner.
FIGURE 1 in Evolution of species diversity in the genus Chamaecostus (Costaceae): molecular phylogenetics and morphometric approaches
FIGURE 1. Schematic representation of measured morphometric variables; LL—Leaf Length, LW—Leaf Maximum Width, AA—Apex Angle, BA—Base Angle.
FIGURE 4. Bulbophyllum cambodianum. Two Bulbophyllum cambodianum specimens with different flower morphology. B. cambodianum I in Molecular phylogenetics of species of Bulbophyllum sect. Trias (Orchidaceae; Epidendroideae; Malaxidae) based on nrITS and plastid rbcL and matK
FIGURE 4. Bulbophyllum cambodianum. Two Bulbophyllum cambodianum specimens with different flower morphology. B. cambodianum I (A) has pale yellow flower with purple dots on the sepals, both edges of petals and proximal half of the lip, with the top sepal and the lateral sepals shapes being slightly different and the top being slightly slender than the lateral. B. cambodianum II (B), on the other hand, has equally shaped sepals, with purple dots on its flower that are slightly darker and more densely distributed in the proximal end of sepals than in the apex and having darker purple dots that cover the petals including the lip very densely with its dorsal sepal bent forward at almost a 90–degree angle.
FIGURE 1 in Molecular phylogenetics of species of Bulbophyllum sect. Trias (Orchidaceae; Epidendroideae; Malaxidae) based on nrITS and plastid rbcL and matK
FIGURE 1. Phylogenetic tree of Trias and Bulbophyllum based on nuclear ITS sequence. The Bayesian tree of Trias species, Drymoda and 32 Bulbophyllum species with five outgroup species. Numbers above branches are maximum likelihood bootstrap percentage (BP), numbers below branches are Bayesian posterior probabilities (PP). A dash (-) above branches are values below 50 BP. Clades of Trias and Bulbophyllum are indicated. Trias photographs represent vegetative morphological characters unique to each Trias clade.
FIGURE 3 in Molecular phylogenetics of species of Bulbophyllum sect. Trias (Orchidaceae; Epidendroideae; Malaxidae) based on nrITS and plastid rbcL and matK
FIGURE 3. The species tree of Trias and Bulbophyllum based on ITS and plastid matK–rbcL sequences. The species tree constructed by StatBEAST utilizing ITS, matK, and rbcL for eight Trias species, Drymoda and 18 Bulbophyllum species with four outgroup species: Dendrobium pullchellum, D. parciflorum, D. rosellum and D. mariae. Numbers above branches are posterior probabilities (PP). Clades of Trias and Bulbophyllum are indicated.
ScienceDex guides
Understand access before you commit
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.