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.
47
datasets available to search
ShareScore release 0.9.0
Dataset results
47 results for “cytochrome oxidase gene I”
Figure 7 in Molecular characterisation of leeches (Clitellata, Annelida) based on the mitochondrial cytochrome oxidase I (COI) gene region for Turkish fauna
Figure 7. Bayesian tree analysis of the COI (629 positions) data set of Hirudo species, with MrBayes v. 3.2.7.
Figure 8 in Molecular characterisation of leeches (Clitellata, Annelida) based on the mitochondrial cytochrome oxidase I (COI) gene region for Turkish fauna
Figure 8. Maximum likelihood phylogeny for Limnatis species based on COI sequences. Bootstrap values are shown for 1000 replicates.
Figure 3 in Molecular characterisation of leeches (Clitellata, Annelida) based on the mitochondrial cytochrome oxidase I (COI) gene region for Turkish fauna
Figure 3. Bayesian tree analysis of the COI (648 positions) data set of Glossiphonia species, with MrBayes v. 3.2.7.
Figure 9 in Molecular characterisation of leeches (Clitellata, Annelida) based on the mitochondrial cytochrome oxidase I (COI) gene region for Turkish fauna
Figure 9. Bayesian tree analysis of the COI (671 positions) data set of Limnatis species, with MrBayes v. 3.2.7.
Figure 5 in Molecular characterisation of leeches (Clitellata, Annelida) based on the mitochondrial cytochrome oxidase I (COI) gene region for Turkish fauna
Figure 5. Bayesian tree analysis of the COI (640 positions) data set of Helobdella species, with MrBayes v. 3.2.7.
Figure 1 in Molecular characterisation of leeches (Clitellata, Annelida) based on the mitochondrial cytochrome oxidase I (COI) gene region for Turkish fauna
Figure 1. Map of showing the areas surveyed for the occurrence of leeches. Wetlands where the species was found are indicated with dots.
Figure 6 in Molecular characterisation of leeches (Clitellata, Annelida) based on the mitochondrial cytochrome oxidase I (COI) gene region for Turkish fauna
Figure 6. Maximum likelihood phylogeny for Hirudo species based on COI sequences. Bootstrap values are shown for 1000 replicates.
Figure 4 in Molecular characterisation of leeches (Clitellata, Annelida) based on the mitochondrial cytochrome oxidase I (COI) gene region for Turkish fauna
Figure 4. Maximum likelihood phylogeny for Helobdella species based on COI sequences. Bootstrap values are shown for 1000 replicates.
Figure 2 in Molecular characterisation of leeches (Clitellata, Annelida) based on the mitochondrial cytochrome oxidase I (COI) gene region for Turkish fauna
Figure 2. Maximum likelihood phylogeny for Glossiponia species based on COI sequences. Bootstrap values are shown for 1000 replicates.
FIG. 6. A majority-rule consensus gene tree reconstructed from mtDNA cytochrome oxidase 1 in Redescription and Recognition of Etheostoma cyanorum from Blue River, Oklahoma
FIG. 6. A majority-rule consensus gene tree reconstructed from mtDNA cytochrome oxidase 1 (CO1) sequence data obtained from the Barcode of Life Database (BOLD). Maximum-likelihood (ML) and Bayesian trees had identical topologies. Branch lengths are proportional to inferred mutations. Shading of lineages represents samples from E. whipplei (outgroup) in black, E. cyanorum in gray, and E. radiosum in white. ML bootstrap proportions/ Bayesian posterior probabilities are reported. See Data Accessibility for tree file.
FIGURE 6 in Phylogenetic analysis of the Prionini (Coleoptera: Cerambycidae: Prioninae) from China based on mitochondrial ribosomal RNA genes and Cytochrome oxidase I gene
FIGURE 6. Phylogeny of the Chinese Prionini based on combined sequences of 12S rRNA and 16S rRNA. A: Bootstrap 50% majority-rule consensus tree of distance method by PAUP* with bootstrap values (%), Wtd. S.S. = 0.0496, APSD = 3.764, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; B: Bootstrap 50% majority-rule consensus tree of maximum likelihood method by PAUP* with bootstrap values (%), -Ln likelihood = 4527.5195, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; C: Bootstrap 50% majority-rule consensus tree of parsimony method by PAUP* with bootstrap values (%), tree length = 792, CI = 0.7109, RI = 0.3639, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; D: Bayesian tree by MrBayes with Bayesian posterior probabilities (%), the scale bar in the bottom left corner of the tree meaning 0.1 nucleotide substitutions per site.
FIGURE 4 in Phylogenetic analysis of the Prionini (Coleoptera: Cerambycidae: Prioninae) from China based on mitochondrial ribosomal RNA genes and Cytochrome oxidase I gene
FIGURE 4. Phylogeny of the Chinese Prionini based on partial sequences of 16S rRNA (excluding Priotyrannus closteroides)
FIGURE 3 in Phylogenetic analysis of the Prionini (Coleoptera: Cerambycidae: Prioninae) from China based on mitochondrial ribosomal RNA genes and Cytochrome oxidase I gene
FIGURE 3. Phylogeny of the Chinese Prionini based on partial sequences of 16S rRNA. A: Bootstrap 50% majority-rule consensus tree of distance method by PAUP* with bootstrap values (%), Wtd. S.S. = 0.1041, APSD = 5.454, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; B: Bootstrap 50% majority-rule consensus tree of maximum likelihood method by PAUP* with bootstrap values (%), -Ln likelihood = 1754.1334, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; C: Bootstrap 50% majority-rule consensus tree of parsimony method by PAUP* with bootstrap values (%), tree length = 280, CI = 0.7429, RI = 0.4586, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; D: Bayesian tree by MrBayes with Bayesian posterior probabilities (%), the scale bar in the bottom left corner of the tree meaning 0.1 nucleotide substitutions per site.
FIGURE 2 in Phylogenetic analysis of the Prionini (Coleoptera: Cerambycidae: Prioninae) from China based on mitochondrial ribosomal RNA genes and Cytochrome oxidase I gene
FIGURE 2. Phylogeny of the Chinese Prionini based on partial sequences of 12S rRNA (excluding Priotyrannus closteroides). A: Bootstrap 50% majority-rule consensus tree of distance method by PAUP* with bootstrap values, Wtd. S.S. = 0.0266, APSD = 3.139, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; B: Bootstrap 50% majority-rule consensus tree of maximum likelihood method by PAUP* with bootstrap values, -Ln likelihood = 2474.8359, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; C: Bootstrap 50% majority-rule consensus tree of parsimony method by PAUP* with bootstrap values, tree length =431, CI = 0.7425, RI = 0.4158, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; D: Bayesian tree by MrBayes with Bayesian posterior probabilities, the scale bar in the bottom left corner of the tree meaning 0.1 nucleotide substitutions per site.
FIGURE 1 in Phylogenetic analysis of the Prionini (Coleoptera: Cerambycidae: Prioninae) from China based on mitochondrial ribosomal RNA genes and Cytochrome oxidase I gene
FIGURE 1. Phylogeny of the Chinese Prionini based on partial sequences of 12S rRNA. A: Bootstrap 50% majority-rule consensus tree of distance method by PAUP* with bootstrap values, Wtd. S.S. = 0.0787, APSD = 4.741, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; B: Bootstrap 50% majority-rule consensus tree of maximum likelihood method by PAUP* with bootstrap values, -Ln likelihood = 2748.8839, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; C: Bootstrap 50% majority-rule consensus tree of parsimony method by PAUP* with bootstrap values, tree length = 499, CI = 0.7054, RI = 0.3849, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; D: Bayesian tree by MrBayes with Bayesian posterior probabilities, the scale bar in the bottom left corner of the tree meaning 0.1 nucleotide substitutions per site.
FIGURE 7 in Phylogenetic analysis of the Prionini (Coleoptera: Cerambycidae: Prioninae) from China based on mitochondrial ribosomal RNA genes and Cytochrome oxidase I gene
FIGURE 7. Phylogeny of the Chinese Prionini based on combined sequences of 12S rRNA and 16S rRNA (excluding Priotyrannus closteroides). A: Bootstrap 50% majority-rule consensus tree of distance method by PAUP* with bootstrap values (%), Wtd. S.S. = 0.0251, APSD = 3.047, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; B: Bootstrap 50% majority-rule consensus tree of maximum likelihood method by PAUP* with bootstrap values (%), -Ln likelihood = 4077.7392, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; C: Bootstrap 50% majority-rule consensus tree of parsimony method by PAUP* with bootstrap values (%), tree length =682, CI = 0.7405, RI = 0.3723, the scale bar in the bottom left corner of the tree being in units appropriate to the tree; D: Bayesian tree by MrBayes with Bayesian posterior probabilities (%), the scale bar in the bottom left corner of the tree meaning 0.1 nucleotide substitutions per site.
Figure 2 from: Grzywacz B, Tatsuta H (2017) Phylogenetic relationship of Japanese Podismini species (Orthoptera: Acrididae: Melanoplinae) inferred from a partial sequence of cytochrome c oxidase subunit I gene. Journal of Orthoptera Research 26: 11-19. https://doi.org/10.3897/jor.26.14547
Figure 2 - Phylogenetic tree of Podismini based on the Bayesian analysis (BI) of concatenated COI sequences. BI posterior probability (PP) and maximum likelihood bootstrap values (BV) are shown near resolved branches (only support values above 50% are shown) as PP/BV. The respective clades are marked with a square and Roman numeral. We examined Ognevia longipennis from China because of the availability and thus did not treat this specimen as Japanese Podismini (see also text). Light green frames denote the Japanese Podismini analyzed in the present study.
Figure 2 from: Grzywacz B, Tatsuta H (2017) Phylogenetic relationship of Japanese Podismini species (Orthoptera: Acrididae: Melanoplinae) inferred from a partial sequence of cytochrome c oxidase subunit I gene. Journal of Orthoptera Research 26: 11-19. https://doi.org/10.3897/jor.26.14547
Figure 2 - Phylogenetic tree of Podismini based on the Bayesian analysis (BI) of concatenated COI sequences. BI posterior probability (PP) and maximum likelihood bootstrap values (BV) are shown near resolved branches (only support values above 50% are shown) as PP/BV. The respective clades are marked with a square and Roman numeral. We examined Ognevia longipennis from China because of the availability and thus did not treat this specimen as Japanese Podismini (see also text). Light green frames denote the Japanese Podismini analyzed in the present study.
Figure 3 in A comprehensive phylogenetic analysis of Grapsoidea crabs (Decapoda: Brachyura) based on mitochondrial cytochrome oxidase subunit 1 (CO1) genes
Figure 3. Inferred phylogenetic relationships based on nucleotide sequence of mitochondrial CO1 genes using BI (A) and ML (B) analyses. A. distinguendus was used as the outgroup.
Figure 1 from: Grzywacz B, Tatsuta H (2017) Phylogenetic relationship of Japanese Podismini species (Orthoptera: Acrididae: Melanoplinae) inferred from a partial sequence of cytochrome c oxidase subunit I gene. Journal of Orthoptera Research 26: 11-19. https://doi.org/10.3897/jor.26.14547
Figure 1 - A map of Japan with the distribution of nine genera of Japanese Podismini.
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.