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.
821
datasets available to search
ShareScore release 0.9.0
Dataset results
821 results for “Molecular Systematics”
Figure 1 from: Vasiliţa C, Popovici OA, Talamas E, Johnson N, Masner L, Tortorici F, Fusu L (2021) Molecular analysis reveals Latonius planus Kononova to be a derived species of Trissolcus Ashmead. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 267-289. https://doi.org/10.3897/jhr.87.63533
Figure 1 Phylogenetic reconstruction of the non-partitioned data set of Taekul et al. (2014) with a degenerated COI alignment, Bayesian analysis. Felsenstein's bootstrap support and transfer bootstrap expectation from the ML analysis were plotted besides the posterior probability.
Figures 18-23 from: Vasiliţa C, Popovici OA, Talamas E, Johnson N, Masner L, Tortorici F, Fusu L (2021) Molecular analysis reveals Latonius planus Kononova to be a derived species of Trissolcus Ashmead. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 267-289. https://doi.org/10.3897/jhr.87.63533
Figures 18-23 Holotype of Latonius planus (female) 18 habitus, dorsal view 19 head, frontal view 20 habitus, lateral; holotype of Ioseppinella serena (male) 21 mesosoma and metasoma, dorsal view 22 mesosoma, lateral view 23 head, frontal view.
Figures 10-17 from: Vasiliţa C, Popovici OA, Talamas E, Johnson N, Masner L, Tortorici F, Fusu L (2021) Molecular analysis reveals Latonius planus Kononova to be a derived species of Trissolcus Ashmead. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 267-289. https://doi.org/10.3897/jhr.87.63533
Figures 10-17 Trissolcus planus (female) 10 habitus, dorsal view 11 habitus, lateral view 12 fore and hind wings 13 fore wings venation 14, 15 arolium 16 metasoma with exposed tergites, sternites and latero-tergites (composite image) 17 ovipositor assembly (composite image).
FIGURE 7 in Systematic review of Myotis (Chiroptera, Vespertilionidae) from Chile based on molecular, morphological, and bioacoustic data
FIGURE 7. Oscillograms (upper) and spectrograms (below) of echolocation calls from Chilean Myotis.
Fig. 3 in Evolution and systematics of Green Bush-crickets (Orthoptera: Tettigoniidae: Tettigonia) in the Western Palaearctic: testing concordance between molecular, acoustic, and morphological data
Fig. 3 Oscillograms of songs of the Tettigonia armeniaca complex (1–11), T. caudata (12), and T. uvarovi (13) recorded at two or three speeds: 1 T. armeniaca (AM: Djermuk, T = 19 °C), 2 T. armeniaca (TR: Saclidag Pass, T = 21.5 °C), 3 T. armeniaca (TR: Ispir, T = 17 °C) (monosyllabic type), 4 T. armeniaca (TR: Ispir, T = 17 °C) (disyllabic type), 5 T. armeniaca (AM: Saravan, T = 20–25 °C) (outdoor recording), 6 T. armeniaca (AM: Lermontovo vill., T = 20 °C), 7 T. armeniaca (TR: Savsat–Ardahan, T = 26 °C), 8 T. armeniaca (TR: Savsat– Ardahan, T = 26 °C) (variable echeme length), 9 T. armeniaca (TR: Ispir, T = 17 °C) (polysyllabic type of variable length), 10 T. armeniaca (TR: Pulumur, T = 20–22 °C) (shorter echemes), 11 T. armeniaca (TR: Pulumur, T = 20–22 °C) (the same specimen as in 10 longer echemes), 12 T. caudata (GR: Drama; from Massa et al. 2012, T = 25 °C), and 13 T. uvarovi (South Korea; from Kim 2009 as T. dolichoptera; see Rhee 2013). Scale bar for A is 10 s; for B, 2 s; and for C, 200 ms
Supplementary material 5 from: Zhou T, Jin X-H (2018) Molecular systematics and the evolution of mycoheterotrophy of tribe Neottieae (Orchidaceae, Epidendroideae). In: Jin X-H, Shui Y-M, Tan Y-H, Kang M (Eds) Plant diversity in Southeast Asia. PhytoKeys 94: 39-49. https://doi.org/10.3897/phytokeys.94.21346
Alignment of matK : Data type: Fasta file.
Supplementary material 4 from: Zhou T, Jin X-H (2018) Molecular systematics and the evolution of mycoheterotrophy of tribe Neottieae (Orchidaceae, Epidendroideae). In: Jin X-H, Shui Y-M, Tan Y-H, Kang M (Eds) Plant diversity in Southeast Asia. PhytoKeys 94: 39-49. https://doi.org/10.3897/phytokeys.94.21346
Alignment of ITS : Data type: Fasta file.
Supplementary material 3 from: Zhou T, Jin X-H (2018) Molecular systematics and the evolution of mycoheterotrophy of tribe Neottieae (Orchidaceae, Epidendroideae). In: Jin X-H, Shui Y-M, Tan Y-H, Kang M (Eds) Plant diversity in Southeast Asia. PhytoKeys 94: 39-49. https://doi.org/10.3897/phytokeys.94.21346
Table 3 : Data type: Word document.
Supplementary material 2 from: Zhou T, Jin X-H (2018) Molecular systematics and the evolution of mycoheterotrophy of tribe Neottieae (Orchidaceae, Epidendroideae). In: Jin X-H, Shui Y-M, Tan Y-H, Kang M (Eds) Plant diversity in Southeast Asia. PhytoKeys 94: 39-49. https://doi.org/10.3897/phytokeys.94.21346
Table 2 : Data type: Word document.
Supplementary material 1 from: Zhou T, Jin X-H (2018) Molecular systematics and the evolution of mycoheterotrophy of tribe Neottieae (Orchidaceae, Epidendroideae). In: Jin X-H, Shui Y-M, Tan Y-H, Kang M (Eds) Plant diversity in Southeast Asia. PhytoKeys 94: 39-49. https://doi.org/10.3897/phytokeys.94.21346
Table 1 : Data type: Word document.
Supplementary material 6 from: Zhou T, Jin X-H (2018) Molecular systematics and the evolution of mycoheterotrophy of tribe Neottieae (Orchidaceae, Epidendroideae). In: Jin X-H, Shui Y-M, Tan Y-H, Kang M (Eds) Plant diversity in Southeast Asia. PhytoKeys 94: 39-49. https://doi.org/10.3897/phytokeys.94.21346
Alignment of rbcL : Data type: Fasta file.
Figure 1 from: Zhou T, Jin X-H (2018) Molecular systematics and the evolution of mycoheterotrophy of tribe Neottieae (Orchidaceae, Epidendroideae). In: Jin X-H, Shui Y-M, Tan Y-H, Kang M (Eds) Plant diversity in Southeast Asia. PhytoKeys 94: 39-49. https://doi.org/10.3897/phytokeys.94.21346
Figure 1 Phylogram obtained from Bayesian Inference analysis of combined nrDNA ITS, matK and rbcL data. Numbers at nodes are Bayesian posterior probabilities and bootstrap percentages (≥ 50%), respectively. ''–'' indicates that the node was not supported in MP analysis, asterisk (*) represent 100% support and red colour denotes species that are mycotrophic herbs.
Supplementary material 3 from: Talamas EJ, Bon M-C, Hoelmer KA, Buffington ML (2019) Molecular phylogeny of Trissolcus wasps (Hymenoptera, Scelionidae) associated with Halyomorpha halys (Hemiptera, Pentatomidae). In: Talamas E (Eds) Advances in the Systematics of Platygastroidea II. Journal of Hymenoptera Research 73: 201-217. https://doi.org/10.3897/jhr.73.39563
: Data type: phylogenetic data
Figures 4-7 from: Tortorici F, Talamas EJ, Moraglio ST, Pansa MG, Asadi-Farfar M, Tavella L, Caleca V (2019) A morphological, biological and molecular approach reveals four cryptic species of Trissolcus Ashmead (Hymenoptera, Scelionidae), egg parasitoids of Pentatomidae (Hemiptera). In: Talamas E (Eds) Advances in the Systematics of Platygastroidea II. Journal of Hymenoptera Research 73: 153-200. https://doi.org/10.3897/jhr.73.39052
Figures 4-7 EPS, metapleural epicoxal sulcus, anterolateral extension of metapleuron: 4Trissolcus belenus [DISAFA-draw1465-HYM-0009] 5T. colemani [DISAFA-draw1466-HYM-0484] 6T. manteroi [DISAFA-draw1465-HYM-0430] 7T. semistriatus [DISAFA-draw1465-HYM-0227].
Supplementary material 6 from: Tortorici F, Talamas EJ, Moraglio ST, Pansa MG, Asadi-Farfar M, Tavella L, Caleca V (2019) A morphological, biological and molecular approach reveals four cryptic species of Trissolcus Ashmead (Hymenoptera, Scelionidae), egg parasitoids of Pentatomidae (Hemiptera). In: Talamas E (Eds) Advances in the Systematics of Platygastroidea II. Journal of Hymenoptera Research 73: 153-200. https://doi.org/10.3897/jhr.73.39052
: Data type: species data
Figures 26-29 from: Tortorici F, Talamas EJ, Moraglio ST, Pansa MG, Asadi-Farfar M, Tavella L, Caleca V (2019) A morphological, biological and molecular approach reveals four cryptic species of Trissolcus Ashmead (Hymenoptera, Scelionidae), egg parasitoids of Pentatomidae (Hemiptera). In: Talamas E (Eds) Advances in the Systematics of Platygastroidea II. Journal of Hymenoptera Research 73: 153-200. https://doi.org/10.3897/jhr.73.39052
Figures 26-29 Hind femur: 26Trissolcus belenus [DISAFA-draw1465-HYM-0009] 27T. colemani [DISAFA-draw1466-HYM-0484] 28T. manteroi [DISAFA-draw1465-HYM-0430] 29T. semistriatus [DISAFA-draw1465-HYM-0227].
Figures 20-25 from: Tortorici F, Talamas EJ, Moraglio ST, Pansa MG, Asadi-Farfar M, Tavella L, Caleca V (2019) A morphological, biological and molecular approach reveals four cryptic species of Trissolcus Ashmead (Hymenoptera, Scelionidae), egg parasitoids of Pentatomidae (Hemiptera). In: Talamas E (Eds) Advances in the Systematics of Platygastroidea II. Journal of Hymenoptera Research 73: 153-200. https://doi.org/10.3897/jhr.73.39052
Figures 20-25 Mesonotum; mshs and traces of notauli: 20Trissolcus belenus [DISAFA-draw1465-HYM-0009] 21T. belenus [DISAFA…] after treatment in potassa solution to remove setae 22T. colemani [DISAFA-draw1466-HYM-0484] 23T. colemani [DISAFA-draw1466-HYM-0483] after treatment in potassa solution to remove setae 24T. manteroi [DISAFA-draw1465-HYM-0430] 25T. semistriatus [DISAFA-draw1465-HYM-0227].
Figure 1 from: Tortorici F, Talamas EJ, Moraglio ST, Pansa MG, Asadi-Farfar M, Tavella L, Caleca V (2019) A morphological, biological and molecular approach reveals four cryptic species of Trissolcus Ashmead (Hymenoptera, Scelionidae), egg parasitoids of Pentatomidae (Hemiptera). In: Talamas E (Eds) Advances in the Systematics of Platygastroidea II. Journal of Hymenoptera Research 73: 153-200. https://doi.org/10.3897/jhr.73.39052
Figure 1 Illustrations published by Delucchi (1961) where differences in the bare area of the external side of hind femora of Asolcus semistriatus (Fig. III, I) and A. grandis (Fig. III, H) are shown.
Supplementary material 2 from: Tortorici F, Talamas EJ, Moraglio ST, Pansa MG, Asadi-Farfar M, Tavella L, Caleca V (2019) A morphological, biological and molecular approach reveals four cryptic species of Trissolcus Ashmead (Hymenoptera, Scelionidae), egg parasitoids of Pentatomidae (Hemiptera). In: Talamas E (Eds) Advances in the Systematics of Platygastroidea II. Journal of Hymenoptera Research 73: 153-200. https://doi.org/10.3897/jhr.73.39052
: Data type: species data
Supplementary material 2 from: Talamas EJ, Bon M-C, Hoelmer KA, Buffington ML (2019) Molecular phylogeny of Trissolcus wasps (Hymenoptera, Scelionidae) associated with Halyomorpha halys (Hemiptera, Pentatomidae). In: Talamas E (Eds) Advances in the Systematics of Platygastroidea II. Journal of Hymenoptera Research 73: 201-217. https://doi.org/10.3897/jhr.73.39563
: Data type: molecular data
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.