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1,918 results for “molecular evidence”
FIGURE 12 in A revision of the genus Isotomurus (Collembola: Isotomidae) in northern Iran using molecular evidence
FIGURE 12. Maximum Likelihood consensus tree generated from the COI gene dataset with the GTR+I+G model. Bootstrap values more than 60% are given for appropriate clades; newly obtained sequences are in bold letters, others are from GenBank (NCBI).
FIGURE 13.Maximum Likelihood consensus tree generated from the 28S in A revision of the genus Isotomurus (Collembola: Isotomidae) in northern Iran using molecular evidence
FIGURE 13.Maximum Likelihood consensus tree generated from the 28S gene dataset with the GTR+I+G model. Bootstrap values more than 60% are given for appropriate clades; newly obtained sequences are in bold letters, others are from GenBank (NCBI).
FIGURE 11 in A revision of the genus Isotomurus (Collembola: Isotomidae) in northern Iran using molecular evidence
FIGURE 11. (a) dens, lateral view in Isotomurus hyrcanicus sp. nov. (scale: 50μm); (b) mucro in Isotomurus katule sp. nov. (scale: 10μm); (c) basomedian and proximal setae of labium in Isotomurus potapovi sp. nov. (scale: 10μm).
FIGURE 3 in A revision of the genus Isotomurus (Collembola: Isotomidae) in northern Iran using molecular evidence
FIGURE 3. Isotomurus potapovi sp. nov.: (a) Antennal III organ (scale: 20μm); (b) mouthparts (scale: 50μm).
FIGURE 1 in Apostasia fujianica (Apostasioideae, Orchidaceae), a new Chinese species: evidence from morphological, genome size and molecular analyses
FIGURE 1. Phylogenetic tree of Apostasioideae reconstructed from combined nuclear (ITS, Xdh, naD1) and plastsid data (matK, rbcL, psbA-trnH, trnL-trnF and trnS-trnG). The numbers near the nodes are the bootstrap percentages and Bayesian posterior probabilities (BS , BS and PP). The parts of Apostasia based on (A) plastid DNA and (B) nrITS are shown in the top left corner.
FIGURE 2. Apostasia fujianica. A in Apostasia fujianica (Apostasioideae, Orchidaceae), a new Chinese species: evidence from morphological, genome size and molecular analyses
FIGURE 2. Apostasia fujianica. A. Plant habit in the wild. B. Flowering and fruiting plant of A. shenzhenica. C. Flowering plant. D. Inflorescence. E. Flower opened by hand. F. Floral organs.
FIGURE 1 in Leucoagaricus purpurascens, a new species from eastern China based on morphological characteristics and molecular evidence
FIGURE 1. Maximum likelihood phylogenetic tree of Leucoagaricus inferred from the combined ITS-LSU data set. Bootstrap values>50% for ML and PP>0.95 for BI are shown along the branches. The new species is shown in boldface. The species that change colour on drying or brushing are denoted by the gray boxes.
FIGURE 3 in Leucoagaricus purpurascens, a new species from eastern China based on morphological characteristics and molecular evidence
FIGURE 3. Microscopic characteristics of Leucaoagricus purpurascens (HKAS 123023, holotype). a. Basidia; b. Basidiospores; c. Pileipellis.
FIGURE 3 in Curculigo konkanensis (Hypoxidaceae), a new species from the lateritic plateaus of Konkan region of Western Ghats based on morphological and molecular evidence
FIGURE 3. Curculigo konkanensis Chandore, Mane & Borude, sp. nov., A. Habit; B. Metaphase (Scale bar =10 µm); C. Karyogram (Scale bar =5 µm).
FIGURE 1 in Curculigo konkanensis (Hypoxidaceae), a new species from the lateritic plateaus of Konkan region of Western Ghats based on morphological and molecular evidence
FIGURE 1. Curculigo konkanensis Chandore, Mane & Borude, sp. nov., A. Habitat; B. Plant with rhizome; C & D. Leaves with flowers.
FIGURE 4. 50 in Curculigo konkanensis (Hypoxidaceae), a new species from the lateritic plateaus of Konkan region of Western Ghats based on morphological and molecular evidence
FIGURE 4. 50 % majority rule consensus bayesian tree based on the combined (rbcL+trnL-F+trnS-G) dataset. Bayesian posterior probability values and Maximum likelihood bootstrap values (BI PP/ML BS) are provided above branches. Names of subclades within Curculigo clade were given as mentioned in Kocyan and Wiland-Szymanska (2016).
FIGURE 2 in Curculigo konkanensis (Hypoxidaceae), a new species from the lateritic plateaus of Konkan region of Western Ghats based on morphological and molecular evidence
FIGURE 2. Curculigo konkanensis Chandore, Mane & Borude, sp. nov., A. Inflorescence; B. Floral bract; C. Inflorescence with flower and fruit; D. Flower bud; E & F. Flowers; G. Stamens; H. Pistil; I. Capsule; J. Dehisced capsule; K. Seeds.
FIGURE 4 in Revalidation of Phalangomyia Dyar & Knab as a subgenus of Culex L. (Diptera: Culicidae) based on morphological and molecular evidence
FIGURE 4. Bayesian and Maximum Likelihood tree of combined CAD, HB and COI sequences from specimens of Cx. apicinus and specimens from species of the subgenera Aedinus, Culex and Melanoconion. Numbers at branches indicate Bayesian posterior probabilities (≥ 0.7) and Bootstrap support values (≥ 70).
FIGURE 2 in Revalidation of Phalangomyia Dyar & Knab as a subgenus of Culex L. (Diptera: Culicidae) based on morphological and molecular evidence
FIGURE 2. Male genitalia of Culex apicinus. A, Gonocoxopodite; B: subapical lobe of gonocoxite (setae); C, median lobe of gonocoxite (setae); D, gonostylus; E, phallosome and proctiger. BLA, basolateral arm; DA, dorsal arm; DP, dorsal process; dML, distal medial lobe; Gc, gonocoxite; GC, gonostylar claw; Gs, gonostylus; LA, lateral arm; ML, median lobe; pML, proximal median lobe; Pr, proctiger; SL, subapical lobe; VA, ventral arm.
FIGURE 1 in Revalidation of Phalangomyia Dyar & Knab as a subgenus of Culex L. (Diptera: Culicidae) based on morphological and molecular evidence
FIGURE 1. Female of Culex apicinus. A, Head, antenna and maxillary palpus (lateral view); B, clypeus and maxillary palpus (frontal view); C, scutum; D, wing (distal portion); E, terga (pale banding). AcS, acrostichal setae; CE, compound eye; Clp, clypeus; DS, dorsocentral setae; Flm1, flagellomere 1; IV–VIII-Te, terga IV–VIII; MPlp, maxillary palpus; Occ, occiput; V, vertex. Scale bar = 0.1 mm.
FIGURE 3 in Revalidation of Phalangomyia Dyar & Knab as a subgenus of Culex L. (Diptera: Culicidae) based on morphological and molecular evidence
FIGURE 3. Pupa (A, B) and fourth-instar larva (C) of Culex apicinus. A, trumpet; B, paddle; C, larva in dorsal view, and details. 1,2,3-C, setae of head; 1,2a, setae of siphon; 2-S, seta of siphon; CS, comb scales; PS, pecten spines.
Fig. 5 in Cryptic species in Glossophaga soricina (Chiroptera: Phyllostomidae): do morphological data support molecular evidence?
Fig. 5.—Ordination plots for the first two canonical axes from the ventral region of the skull and the mandible, with deformation grids derived from each canonical axis.
Fig. 1 in Cryptic species in Glossophaga soricina (Chiroptera: Phyllostomidae): do morphological data support molecular evidence?
Fig. 1.—Map showing sites sampled for morphometric data within the distribution of the five subspecies of Glossophaga soricina: 1. G. s. antillarum; 2. G. s. handleyi; 3. G. s. mutica; 4. G. s. soricina; 5. G. s. valens. The dots indicate the sampling localities from which morphological data were obtained.
Fig. 3 in Cryptic species in Glossophaga soricina (Chiroptera: Phyllostomidae): do morphological data support molecular evidence?
Fig. 3.—Deformation grid showing vector displacements of the landmarks of the configuration of the mandible from the male mean shape to the female mean shape in the subspecies with the largest distance between mean shapes: Glossophaga soricina mutica. Deformation grids were exaggerated by a factor of 2 to improve visualization.
Fig. 4 in Taxonomic status of the nominal forms assigned to Necromys lactens (Rodentia, Cricetidae) as revealed by molecular and morphometric evidence
Fig. 4.—Individual specimen scores based on log-transformed values of 20 cranial measurements (Mosimann shape variables), projected onto the first and second principal components of the "size-free" Principal Component Analysis (PCA) extracted from A) analysis of specimens (all age classes, n = 49) of the three nominal forms assigned to Necromys lactens: Akodon lactens (black circles, n = 24), A. orbus (dark gray triangles, n = 14), and Bolomys negrito (light gray squares, n = 11); B) analysis of specimens (all age classes, n = 88) of the two main clades recovered for N. lactens: northern clade (NC, black circles, n = 20) and southern clade (SC, light gray triangles, n = 68); C) analysis of specimens (all age classes, n = 88) of the four subclades recovered for N. lactens: northernmost clade (NNC, closed black circles, n = 4), southernmost clade (SSC, open light gray squared, n = 25), central-northern clade (CNC, open black circles, n = 16), and centralsouthern clade (CSC, open dark gray triangles, n = 43). Character loadings and the variance explained by each of the first two principal components appear in Table 3 and Supplementary Data SD1.
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.