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.
676
datasets available to search
ShareScore release 0.9.0
Dataset results
676 results for “Manis”
FIGURE 4 in How many valid Pleurosicya (Teleostei: Gobiidae) species are known from the Red Sea?
FIGURE 4. Lateral and upper view of cephalic sensory pore system of Pleurosicya mossambica. From Goren (1984).
FIGURE 1 in How many valid Pleurosicya (Teleostei: Gobiidae) species are known from the Red Sea?
FIGURE 1. Maximum likelihood estimate of the phylogenetic relationships of Pleurosicya based on the mitochondrial gene cytochrome c oxidase subunit I (COI). Numbers near the branches indicate bootstrap values of SH-aLRT support (%)/ ultrafast bootstrap support (%) based on 1000 replicates. Specimens of Pleurosicya mossambica from the Red Sea and the Western Indian Ocean are colored in red and blue, respectively; asterisk denotes mislabeled sequences. Further information for this dataset is provided in Table 1.
FIGURE 2. Pleurosicya bilobata. A in How many valid Pleurosicya (Teleostei: Gobiidae) species are known from the Red Sea?
FIGURE 2. Pleurosicya bilobata. A: Dahab, Egypt, Red Sea; B: Dahab, Egypt, Red Sea. Photos by T. Malkerova (A), C. von Mach (B).
Accurate Modeling of Bromide and Iodide Hydration with Data-Driven Many-Body Potentials
<p>Ion–water interactions play a central role in determining the properties of aqueous systems in a wide range of environments. However, a quantitative understanding of how the hydration properties of ions evolve from small aqueous clusters to bulk solutions and interfaces remains elusive. Here, we introduce the second generation of data-driven many-body energy (MB-nrg) potential energy functions (PEFs) representing bromide–water and iodide–water interactions. The MB-nrg PEFs use permutationally invariant polynomials to reproduce two-body and three-body energies calculated at the coupled cluster level of theory, and implicitly represent all higher-body energies using classical many-body polarization. A systematic analysis of the hydration structure of small Br<sup>–</sup>(H<sub>2</sub>O)<sub><em>n</em></sub> and I<sup>–</sup>(H<sub>2</sub>O)<sub><em>n</em></sub> clusters demonstrates that the MB-nrg PEFs predict interaction energies in quantitative agreement with “gold standard” coupled cluster reference values. Importantly, when used in molecular dynamics simulations carried out in the isothermal–isobaric ensemble for single bromide and iodide ions in liquid water, the MB-nrg PEFs predict extended X-ray absorption fine structure (EXAFS) spectra that accurately reproduce the experimental spectra, which thus allows for characterizing the hydration structure of the two ions with a high level of confidence.</p>
Figure 4. a in One tree, many colonies: colony structure, breeding system and colonization events of host trees in tunnelling Melissotarsus ants
Figure 4. a, number of matings per queen for each monogyne colony in each population. b, relatedness values among nestmate workers for each colony. Arrows indicate relatedness values between alate queens (rA-A) and the triangle indicates relatedness value between queens in the SL11 polygyne colony.
Figure 3 in One tree, many colonies: colony structure, breeding system and colonization events of host trees in tunnelling Melissotarsus ants
Figure 3. Clustering of nests in the overall sampling using principal component analysis of the microsatellite markers. Clustering analyses were subsequently run for each of the four populations of nests.
Figure 1 in One tree, many colonies: colony structure, breeding system and colonization events of host trees in tunnelling Melissotarsus ants
Figure 1. Geographic positions of the 34 nests of Melissotarsus sampled in four localities in South Africa, and one pooled sample from Mozambique. Insets indicate sampling positions of nests within the localities of uMkhuze (left) and St Lucia (right). Nests located on the same branch or tree are indicated with the same label.
Figure 2 in One tree, many colonies: colony structure, breeding system and colonization events of host trees in tunnelling Melissotarsus ants
Figure 2. Graphical representation of STRUCTURE results determining the number of genetic groups in the overall dataset for different values of K. Each genetic group is characterized by a colour; and each individual is represented by a vertical bar according to its probability of belonging to each group. Distinct simulations were subsequently run for the four populations, separately. In each population, grey bars below the plot indicate different colonies assigned to a single genetic group by STRUCTURE (only the pairs EC1/2 and CEc/ma are not significant using the G-test of differentiation).
Methylene Blue Sentinel Lymph Node Biopsy for Breast Cancer Learning Curve in Covid-19 era: How many cases are enough?
<p>Methylene Blue Sentinel Lymph Node Biopsy for Breast Cancer Learning Curve in Covid-19 era: How many cases are enough?</p>
Holoteleia indica Mani, USNMENT01109813, holotype female
<p><em>Holoteleia indica</em> Mani</p> <p>holotype female</p> <p>USNMENT01109813</p>
FIGURE 8—Phylogenetic tree inferred using Bayesian Inference derived from cytochrome c oxidase subunit I in How many species of genus Lernaeopoda Blainville, 1822 (Siphonostomatoida: Lernaeopodidae) are there in the southwestern Atlantic?
FIGURE 8—Phylogenetic tree inferred using Bayesian Inference derived from cytochrome c oxidase subunit I (COI) gene dataset. Numbers in the nodes represent posterior probability (<0.95 are not shown).
FIGURE 7. SEM micrograph. A in How many species of genus Lernaeopoda Blainville, 1822 (Siphonostomatoida: Lernaeopodidae) are there in the southwestern Atlantic?
FIGURE 7. SEM micrograph. A—armature on the antennule endopod of specimen X6, B—armature on the antennule endopod of specimen X9, C—other view of the antennule of specimen X9. D—partial view of maxillule of specimen X5, E—Maxilliped of specimen X9, F—claw of the specimen X9 showing the annexed barb, denticle and row of denticles, G—myxal area with spine in specimen X9. H—myxal area in specimen X5, Abbreviations: Ab = Annexed barb, Cl = Claw, D = Denticles, E = Endite, Rd = Rod denticles, s = Spine, Se = Spinules, in Sp = Spines on maxilliped, 1, 2, 3, 4, 5, 6, Armature.
FIGURE 5 in How many species of genus Lernaeopoda Blainville, 1822 (Siphonostomatoida: Lernaeopodidae) are there in the southwestern Atlantic?
FIGURE 5—Appendages of the female Lernaeopoda sp. (X3) from Schroederichthys bivius cloaca with "short" maxilla. A—Antennule. B—Antenna and detail of endopod armature. C—Mandible. D—Maxilulle. E—Maxilliped and details of claw, myxal area and pad of spinules. Abbreviations: Ab = Annexed barb, Cl = Claw, Co = Corpus, D = denticle, En = endopod, Ex = Exopodo, E = endite, P = palp, Rd = Rod denticles, S = Spine, So = Solus, Sp = spines on maxilliped, w = Whip, 1, 2, 3, 4, 5, 6 = Armature. Scale Bars: A = 50 µm, B= 200 µm, C = 25 µm, D = 25 µm, E = 25 µm.
FIGURE 6 in How many species of genus Lernaeopoda Blainville, 1822 (Siphonostomatoida: Lernaeopodidae) are there in the southwestern Atlantic?
FIGURE 6—Appendages of the female Lernaeopoda sp. (X4) from Schroederichthys bivius palate with "long" maxilla. A— Antennule and detail of distal armature. B—Antenna and detail of endopod and its armature C—Mandible. D—Maxilulle. E—Maxilliped and details of claw, myxal area and pad of spinules. Abbreviations: Ab = Annexed barb, Cl= Claw, Co = Corpus, Dp = Denticle pad, E = Endite, En = Endopod, Ex = Exopod, P = Palp, Rd = Rod denticles, s = Spine, Sp = Spines on maxilliped, w =whip, 1, 2, 3, 4, 5, 6 = Armature. Scale Bars: A=50 µm, B=100 µm, C=100 µm, D= 50 µm, E =50 µm.
FIGURE 3 in How many species of genus Lernaeopoda Blainville, 1822 (Siphonostomatoida: Lernaeopodidae) are there in the southwestern Atlantic?
FIGURE 3—Appendages of the Lernaeopoda sp. (X1) female on fins of Galeorhinus galeus. A—Antennule. B—Antenna and detail of endopod C—Mandible. D—Maxillule. E—Maxilliped and detail of claw, myxal area and pad of spinules. Abbreviations: Ab = Annexed barb, Cl = claw, Co = corpus, Dp = Denticles Pad, E = endite, En = endopod, Ex = exopod, P = palp, Rd = Rod denticles, sp = spines on maxilliped, w = Whip, 1, 2, 3, 4, 5, 6 = Armature. Scale Bars A = 50 µm. B = 100 µm. C = 25 µm, D = 25 µm, E = 200 µm.
FIGURE 4 in How many species of genus Lernaeopoda Blainville, 1822 (Siphonostomatoida: Lernaeopodidae) are there in the southwestern Atlantic?
FIGURE 4—Appendages of the Lernaeopoda sp. (X2) female with "short" maxilla, on palate of Schroederichthys bivius A—Antennule. B—Antenna. Detail of endopod and armature. B1—Other view of the endopod. C—Mandible. D—Maxillule. E—Maxilliped and detail of claw, myxal area and pad of spinules. Abbreviations: Ab = Annexed barb, Cl= Claw, Co = Corpus, Dp = Denticle pad, E= Endite, En = Endopod, Ex = Exopod, P= Palp, Rd = Rod denticles, s = Spine, So = Solus, Sp = Spines on maxilliped, w=Whip, 1, 2, 3, 4, 5, 6 = Armature. Scale bars A and B =100um, C = 50, D = 25, E = 100.
FIGURE 2 in How many species of genus Lernaeopoda Blainville, 1822 (Siphonostomatoida: Lernaeopodidae) are there in the southwestern Atlantic?
FIGURE 2—Females of Lernaeopoda sp. A—with "short" maxilla (X1), from fins of Galeorhinus galeus. B—from palate of Schroederichthys bivius (X2). C—with "short" maxilla, from cloaca of Schroederichthys bivius (X3). D—with "long" maxilla, from palate of Schroederichthys bivius (X4). Scale Bars: A, B, D= 2 mm, C=1 mm.
Code and representative data for Three is a Crowd: Dynamical Order and Many-Body Correlations in Zebrafish
<p>Code and representative data for Three is a Crowd: Dynamical Order and Many-Body Correlations in Zebrafish</p>
MANI Real-life Perspective Observatory
ClinicalTrials.gov study NCT04796844. IPD Sharing: Not stated. Countries: 1. Publications: 2.
How Many Patients Suffering Major Trauma Would be Eligible for a Pre-hospital Transfusion
ClinicalTrials.gov study NCT06494293. IPD Sharing: Not stated. Countries: 1. Publications: 5.
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.