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1,918 results for “molecular evidence”
FIGURE 4 in Molecular and morphological evidence of Onobrychis avanakensis, a new species from Iran
FIGURE 4. Distribution map of Onobrychis avanakensis (●) in the Qazvin province (gray color) of Iran.
FIGURE 1 in Transfer of the monospecific genus Nienburgella (Delesseriaceae, Rhodophyta) to Phycodrys, based on morphological and molecular evidence
FIGURE 1. Maximum likelihood phylogenetic tree for the tribe Phycodryeae derived from plastid-encoded rbcL DNA sequence data. Bootstrap values (1,000 replicates) are shown above branches. Scale bar = substitutions per site.
FIGURE 1. Pilumnus vinaceus. CCDB 6194 in Resurrection of Pilumnus vinaceus A. Milne-Edwards, 1880 (Brachyura Pilumnidae) using integrative evidence from molecular and morphology
FIGURE 1. Pilumnus vinaceus. CCDB 6194 – male (CW - 9.9 mm). A. Dorsal view. B. Ventral view. CCDB 6702 – ovigerous female (CW - 13.2 mm). C. Dorsal view. D. Ventral view. Scale bars = 10 mm.
FIGURE 2 in Morphological and molecular evidence for the recognition of Caloglossa fonticola sp. nov. (Delesseriaceae, Rhodophyta) from an underground spring in Guangxi, China
FIGURE 2. Morphological structures of Caloglossa fonticola sp. nov. A. Vegetative thalli of C. fonticola. B. Thallus blades showing hardly or slightly constricted at nodes, and lateral axis (arrows) demonstrating significantly less growth than the main axis (arrowheads). C. Cell arrangement around a node. Nodal axial cell (diamond) and first axial cell (star) of the main axis (MA) both produced one secondorder cell row (arrows) and one third-order cell rows (arrowheads) on the opposite to the lateral branch (LA), all these cell rows reach to the blade margin. D. Nodal region of thallus illustrating the nodal axial cell (diamond) produces one cell row (arrowhead) on the abaxial side not extending to the margin, and the first axial cell of the lateral axis (asterisk) produces one cell row (arrow) on the adaxial side not extending to the margin. E-G Internodal blade. Each axial cell (a) produces one second-order cell row (arrows) that forms 1-3 third-order cell rows (arrowheads). H. Rhizoids at node showing each wing cell produces a single rhizoidal filament (white arrowheads). I. Rhizoids at node displaying the type B arrangement of Kamiya et al. (2003). Rhizoidal filaments (arrowheads) arising from wing cells near the main axis and lateral axis at the nodes. Scale bars: A = 1 cm, B = 1.0 mm, C and E = 200 μm, D, F and G = 20 μm, H and I = 100 μm.
FIGURE 5 in Morphological and molecular evidence for the recognition of Caloglossa fonticola sp. nov. (Delesseriaceae, Rhodophyta) from an underground spring in Guangxi, China
FIGURE 5. Caloglossa (Ceramiales, Rhodophyta) Maximum likelihood tree based on the LSU rRNA sequences data. Bootstrap supports for maximum likelihood, and Bayesian inference (ML/BI) are shown on branches. '*' denotes the branch differed in the BI topology (data not shown).0.
FIGURE 6 in Molecular and morphological evidences confirm the statuses of Ancistroides othonias (Hewitson, 1878) and the subspecies of A. nigrita (Latreille, [1824]), sensu Evans 1949 (Lepidoptera, Hesperiidae)
FIGURE 6. Male genitalia of Ancistroides fumatus (An10). A. ring, lateral view; B. tegumen, dorsal view; C. gnathos, ventral view; D. uncus, dorsal view; E. left valva, inner side; F. left valva, dorsal view; G. aedeagus, dorsal view; H. aedeagus, lateral view; I. juxta.
Direct Molecular Evidence for an Ancient, Conserved Developmental Toolkit Controlling Posttranscriptional Gene Regulation in Land Plants
<p><em>SRA: </em>SRP250506<br> <em>BioProject: </em><a href="https://www.ncbi.nlm.nih.gov/bioproject/PRJNA608441">PRJNA608441</a></p> <p>miRNA-Seq</p>
FIGURE 5 in A revision of the genus Isotomurus (Collembola: Isotomidae) in northern Iran using molecular evidence
FIGURE 5. Isotomurus katule sp. nov.: (a) ocelli and PAO (scale: 20μm); (b) mucro (scale: 20μm); (c) Ant. IV sensilla (shown by asterisks) and pin seta (shown by arrow) (scale: 5μm); (d) Antennal III organ (scale: 10μm); (e) Abd. VI Mac. and Trich. (scale: 100μm).
FIGURE 2 in Leucoagaricus purpurascens, a new species from eastern China based on morphological characteristics and molecular evidence
FIGURE 2. Basidiomata of Leucoagaricus purpurascens. a. Basidiomata (HKAS 123023, holotype!). b. Dried specimens (HKAS 123023). Bars = 1 cm.
FIGURE 2 in Ligusticopsis miyiensis (Apioideae, Apiaceae), a new combination from China revealed by morphological and molecular evidence
FIGURE 2. Morphological characteristics of Ligusticum glaucescens. A. habitat; B. living plant; C. root; D. basal leaf; E. inflorescence; F. bract and bracteole; G. calyx teeth and fruit. H. dorsal side of mericarp; I. commissural side of mericarp; J. transverse section of mericarp. Abbreviations: co = commissure; cv = commissural vittae; en = endosperm; lr = lateral ribs; mar = marginal ribs; mer = median rib; vv = vallecular vittae. Scale bar = 0.5 mm in H, I and J.
FIGUERE 4 in Thyrocarpus fujianensis (Boraginaceae; Cynoglosseae), a new species from China: evidence from morphological and molecular analyses
FIGUERE 4. Thyrocarpus fujianensis (A) Habitat; (B) A flowering plant with fruits; (C) Fruit and calyx; (D, E) Flower (front side); (F) Basal leaves and stem leaves; (G) Floral anatomy; (H–I) Fruit; (J) Fruit longitudinal section; (K) Side view of fruit.
FIGURE 2. Polystichum sunhangii.—A. Habit.—B in Three new species of Polystichum (Dryopteridaceae) from Xizang, China based on morphological and molecular evidence
FIGURE 2. Polystichum sunhangii.—A. Habit.—B. Adaxial view of middle portion of lamina.—C. Fiddlehead (young leaf).—D. Distal rachis, showing a bulbil.—E. Abaxial view of portion of pinna, showing sori.—F. Abaxial view of pinnae, with blue arrows indicating bulbils on costae.
FIGURE. Habitats of Strobilanthes glandulata. in Strobilanthes glandulata (Acanthaceae), a new species from Sri Lanka based on the morphological and molecular evidences
FIGURE. Habitats of Strobilanthes glandulata.
FIGURE 1 in A revision of the genus Isotomurus (Collembola: Isotomidae) in northern Iran using molecular evidence
FIGURE 1. Isotomurus hyrcanicus sp. nov.: Color pattern variation
Molecular Evidence for a Dimensional Basis of Depression
GEO Series GSE44593. Homo sapiens. 28 samples. Type: Expression profiling by array.
Molecular Evidence of Chronic Cellular Rejection in C4d and Microvascular Inflammation Negative Transplant Glomerulopathy
GEO Series GSE93659. Homo sapiens. 44 samples. Type: Expression profiling by array.
Evidence for conflict at the molecular level, and a possible solution to it - gene regulation
GEO Series GSE74051. Gasterosteus aculeatus. 24 samples. Type: Expression profiling by array.
Structural distortion of β-cyclodextrin plays a key role for the pH-dependent host-guest chemistry with doxorubicin, evident by electrochemical and molecular dynamics approach
<p>β-cyclodextrin (β-CD) is the potential drug carrier to deliver antitumor drugs like doxorubicin<br> (DOX). However, the mechanism for the inclusion complex formation is still unclear and<br> needs to be explored. This study investigated the effect of pH on the inclusion of DOX into<br> thiolated β-CD (β-CD-SH) by electrochemical and molecular dynamics (MD) simulation.<br> The electrochemical study shows a clear difference at different pH. The redox peak due to the<br> DOX is strongly influenced by pH. At neutral pH, the peak intensity decreases with time,<br> while slight variation is observed at acidic and basic pH. Depicting the association of DOX to<br> the β-CD-SH cavity at neutral pH. Also, due to the association, the charge transfer resistance<br> variation increased with time at neutral pH, decreased at basic and acidic pH. The<br> electrochemical study was further supported by MD simulation, suggesting that the<br> cyclodextrins ring gets slightly elongated due to the flipping of glucose units,<br> specifically at neutral pH leads to a strong association. Also, another significant result<br> observed that the DOX forms an inclusion complex with β-CD-SH in quinol conformation,<br> not in quinone. Briefly, the study provides the necessary molecular binding information for<br> designing an effective β-CD based targeted drug delivery system.</p>
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.