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1,918 results for “molecular evidence”
Figure 12 from: Liu Y-Q, Chen H-W (2018) The genus Scaptodrosophila Duda part II: the coracina species group from East Asia, with morphological and molecular evidence (Diptera: Drosophilidae). ZooKeys 736: 119-148. https://doi.org/10.3897/zookeys.736.13682
Figure 12 Scaptodrosophila longispinata sp. n. A and B epandrium, surstylus, and cercus (posterior and lateral views) C and D hypandrium, parameres, gonopods, aedeagus, and aedeagal apodeme (ventral and lateral views, respectively). Scale bars: 0.1 mm.
Figure 16 from: Liu Y-Q, Chen H-W (2018) The genus Scaptodrosophila Duda part II: the coracina species group from East Asia, with morphological and molecular evidence (Diptera: Drosophilidae). ZooKeys 736: 119-148. https://doi.org/10.3897/zookeys.736.13682
Figure 16 Scaptodrosophila zebrina sp. n. A and B epandrium, surstylus, and cercus (posterior and lateral views) C and D hypandrium, parameres, gonopods, aedeagus, and aedeagal apodeme (ventral and lateral views, respectively) E oviscapt (lateral view). Scale bars: 0.1 mm.
Figure 10 from: Liu Y-Q, Chen H-W (2018) The genus Scaptodrosophila Duda part II: the coracina species group from East Asia, with morphological and molecular evidence (Diptera: Drosophilidae). ZooKeys 736: 119-148. https://doi.org/10.3897/zookeys.736.13682
Figure 10 Scaptodrosophila fusciventricula sp. n. A and B epandrium, surstylus, and cercus (posterior and lateral views) C and D hypandrium, parameres, gonopods, aedeagus, and aedeagal apodeme (ventral and lateral views, respectively). Scale bars: 0.1 mm.
Figure 15 from: Liu Y-Q, Chen H-W (2018) The genus Scaptodrosophila Duda part II: the coracina species group from East Asia, with morphological and molecular evidence (Diptera: Drosophilidae). ZooKeys 736: 119-148. https://doi.org/10.3897/zookeys.736.13682
Figure 15 Scaptodrosophila ventriobscurata sp. n. A and B epandrium, surstylus, and cercus (posterior and lateral views) C and D hypandrium, parameres, gonopods, aedeagus, and aedeagal apodeme (ventral and lateral views, respectively) E oviscapt (lateral view). Scale bars: 0.1 mm.
Figure 11 from: Liu Y-Q, Chen H-W (2018) The genus Scaptodrosophila Duda part II: the coracina species group from East Asia, with morphological and molecular evidence (Diptera: Drosophilidae). ZooKeys 736: 119-148. https://doi.org/10.3897/zookeys.736.13682
Figure 11 Scaptodrosophila helvpecta sp. n. A and B epandrium, surstylus, and cercus (posterior and lateral views) C and D hypandrium, parameres, gonopods, aedeagus, and aedeagal apodeme (ventral and lateral views, respectively) E oviscapt (lateral view). Scale bars: 0.1 mm.
Figure 2 from: Liu Y-Q, Chen H-W (2018) The genus Scaptodrosophila Duda part II: the coracina species group from East Asia, with morphological and molecular evidence (Diptera: Drosophilidae). ZooKeys 736: 119-148. https://doi.org/10.3897/zookeys.736.13682
Figure 2 Diagnostic nucleotide sites in the alignment of COI sequences (662 bp in length) of the coracina group. Numbers at the top show the positions of the sites in the alignment. Shaded sites are diagnostic for each species. Hyphens (-) indicate missing data.
Figure 2 from: Sakuragui CM, Calazans LSB, de Oliveira LL, de Morais EB, Benko-Iseppon AM, Vasconcelos S, Schrago CEG, Joseph Mayo SJ (2018) Recognition of the genus Thaumatophyllum Schott − formerly Philodendron subg. Meconostigma (Araceae) − based on molecular and morphological evidence. PhytoKeys 98: 51-71. https://doi.org/10.3897/phytokeys.98.25044
Figure 2 Supertree of Philodendron, Thaumatophyllum, Adelonema and Homalomena species. Names in bold are species of P. subg. Pteromischum.
Figure 3 from: Sakuragui CM, Calazans LSB, de Oliveira LL, de Morais EB, Benko-Iseppon AM, Vasconcelos S, Schrago CEG, Joseph Mayo SJ (2018) Recognition of the genus Thaumatophyllum Schott − formerly Philodendron subg. Meconostigma (Araceae) − based on molecular and morphological evidence. PhytoKeys 98: 51-71. https://doi.org/10.3897/phytokeys.98.25044
Figure 3 Phylogenetic relationships amongst Philodendron, Thaumatophyllum, Homalomena and Adelonema recovered by previous authors. A Barabé et al. (2002) B Tam et al. (2004) C Loss-Oliveira et al. (2014) D Vasconcelos (2015).
Figure 4 from: Sakuragui CM, Calazans LSB, de Oliveira LL, de Morais EB, Benko-Iseppon AM, Vasconcelos S, Schrago CEG, Joseph Mayo SJ (2018) Recognition of the genus Thaumatophyllum Schott − formerly Philodendron subg. Meconostigma (Araceae) − based on molecular and morphological evidence. PhytoKeys 98: 51-71. https://doi.org/10.3897/phytokeys.98.25044
Figure 4 Thaumathophyllum petreum. A Habit B Longitudinal cut of the inflorescence C Staminode D Stamen E Longitudinal cut of a female flower F Transversal cut of a female flower showing the 6-locular ovary G Side view of a female flower H Infructescence. All from Calazans & Morais 28 (RB).
Figure 1 from: Sakuragui CM, Calazans LSB, de Oliveira LL, de Morais EB, Benko-Iseppon AM, Vasconcelos S, Schrago CEG, Joseph Mayo SJ (2018) Recognition of the genus Thaumatophyllum Schott − formerly Philodendron subg. Meconostigma (Araceae) − based on molecular and morphological evidence. PhytoKeys 98: 51-71. https://doi.org/10.3897/phytokeys.98.25044
Figure 1 Philodendron, Homalomena and Adelonema phylogenetic relationships markers by previous publications. A Gauthier et al. (2008), maximum parsimony. B Gauthier et al. (2008), Bayesian analysis; Wong et al. (2013), Wong et al. (2016).
Figure 4 from: Yuan H-S, Lu X, Decock C (2018) Molecular and morphological evidence reveal a new genus and species in Auriculariales from tropical China. MycoKeys 35: 27-39. https://doi.org/10.3897/mycokeys.35.25271
Figure 4 Microscopic structures of Grammatus labyrinthinus (drawn from the holotype). a Basidiospores b Probasidia c Probasidia transection d Epibasidia e Dendrohyphidia f Hyphae from subiculum g Hyphae from trama h Basidiocarp transection.
Figure 1 from: Yuan H-S, Lu X, Decock C (2018) Molecular and morphological evidence reveal a new genus and species in Auriculariales from tropical China. MycoKeys 35: 27-39. https://doi.org/10.3897/mycokeys.35.25271
Figure 1 Maximum likelihood tree illustrating the phylogeny of Grammatus labyrinthinus and related taxa in Auriculariales, based on the combined ITS + nLSU sequence dataset. Branches are labelled with maximum likelihood bootstrap higher than 50%, parsimony bootstrap proportions higher than 50% and Bayesian posterior probabilities more than 0.95.
FIGURE 2 in Two new species of the genus Ishigakia (Hymenoptera: Ichneumonidae, Acaenitinae) from Vietnam based on morphological and molecular evidence
FIGURE 2. Ishigakia babeensis sp. nov., female holotype, habitus
FIGURE 4 in Two new species of the genus Ishigakia (Hymenoptera: Ichneumonidae, Acaenitinae) from Vietnam based on morphological and molecular evidence
FIGURE 4. Ishigakia duongi sp. nov., female holotype, habitus
Figure 1 from: Vargas-Luna MD, Hernández-Ledesma P, Majure LC, Puente-Martínez R, Macías HMH, Luna RTB (2018) Splitting Echinocactus: morphological and molecular evidence support the recognition of Homalocephala as a distinct genus in the Cacteae. PhytoKeys 111: 31-59. https://doi.org/10.3897/phytokeys.111.26856
Figure 1 Echinocactus species. AE.platyacanthus from Querétaro BE.horizonthalonius from Chihuahua CH.texensis from Chihuahua DH.parryi from Chihuahua EH.polycephalasubsp.polycephala from Sonora FK.grusonii from Querétaro. Line bar in fruit photographs is 1 mm.
Figure 3 from: Vargas-Luna MD, Hernández-Ledesma P, Majure LC, Puente-Martínez R, Macías HMH, Luna RTB (2018) Splitting Echinocactus: morphological and molecular evidence support the recognition of Homalocephala as a distinct genus in the Cacteae. PhytoKeys 111: 31-59. https://doi.org/10.3897/phytokeys.111.26856
Figure 3 Phylogenetic relationships of Echinocactus inferred with the total evidence matrix. Maximum parsimony strict consensus tree of 2 most parsimonious trees of 863 steps with a consistency index of 0.790 and a retention index of 0.770. Values above/below nodes indicate maximum parsimony bootstrap (mpb) and posterior probabilities (pp), respectively. Black circles indicate synapomorphic characters identified by the character optimisation analyses. Numbers above/below circles indicate characters and character states, respectively (see Appendix 2). The HEA clade is labelled showing the three genera: Astrophytum, Echinocactus and Homalocephala. Line drawings illustrate the morphological synapomorphies for respective clades.
Figure 5 from: Vargas-Luna MD, Hernández-Ledesma P, Majure LC, Puente-Martínez R, Macías HMH, Luna RTB (2018) Splitting Echinocactus: morphological and molecular evidence support the recognition of Homalocephala as a distinct genus in the Cacteae. PhytoKeys 111: 31-59. https://doi.org/10.3897/phytokeys.111.26856
Figure 5 Bayesian 50% majority rule consensus tree showing phylogenetic relationship of Echinocactus inferred with 5GT. Values in tree nodes correspond (left to right) to bootstrap values from maximum parsimony (mpb), maximum likelihood (mlb) and posterior probabilities (pp). The clades highlighted in dark and light grey correspond to the Echinocactus, Homalocephala and K.grusonii-Ferocactus clades.
Figure 4 from: Vargas-Luna MD, Hernández-Ledesma P, Majure LC, Puente-Martínez R, Macías HMH, Luna RTB (2018) Splitting Echinocactus: morphological and molecular evidence support the recognition of Homalocephala as a distinct genus in the Cacteae. PhytoKeys 111: 31-59. https://doi.org/10.3897/phytokeys.111.26856
Figure 4 Phylogenetic relationship of Echinocactus inferred with cpDNA plus morphology. Bayesian 50% majority rule consensus tree. Values in nodes correspond (left to right) to bootstrap values from maximum parsimony (mpb) and posterior probabilities (pp). The black star indicates the HEA clade and its three subclades Astrophytum, Echinocactus and Homalocephala highlighted.
Figure 2 from: Vargas-Luna MD, Hernández-Ledesma P, Majure LC, Puente-Martínez R, Macías HMH, Luna RTB (2018) Splitting Echinocactus: morphological and molecular evidence support the recognition of Homalocephala as a distinct genus in the Cacteae. PhytoKeys 111: 31-59. https://doi.org/10.3897/phytokeys.111.26856
Figure 2 Phylogenetic relationship of Echinocactus inferred with the cpDNA matrix. Maximum parsimony 50% majority rule consensus tree of 4 most parsimonious trees of 347 steps with a consistency index of 0.681 and retention index of 0.848. Values in nodes correspond (from left to right) to maximum parsimony bootstrap (mpb), maximum likelihood bootstrap (mlb) and posterior probabilities (pp). The black star indicates the HEA clade with three subclades: Astrophytum, Echinocactus and Homalocephala highlighted.
Supplementary material 3 from: Short G, Harasti D, Hamilton H (2019) Hippocampus whitei Bleeker, 1855, a senior synonym of the southern Queensland seahorse H. procerus Kuiter, 2001: molecular and morphological evidence (Teleostei, Syngnathidae). ZooKeys 824: 109-133. https://doi.org/10.3897/zookeys.824.30921
: Data type: molecular data
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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)
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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.