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1,918 results for “molecular evidence”
Figure 7 from: Liu Y-Q, Gao Q-S, Chen H-W (2017) The genus Scaptodrosophila Duda part I: the brunnea species group from the Oriental Region, with morphological and molecular evidence (Diptera, Drosophilidae). ZooKeys 671: 87-118. https://doi.org/10.3897/zookeys.671.11275
Figure 7 - Head, mesonotum, scutellum, pleura and abdomen of male. A–D S. protenipenis sp. n. E–H S. rhina sp. n. Scale bars 1 mm.
Figure 9 from: Liu Y-Q, Gao Q-S, Chen H-W (2017) The genus Scaptodrosophila Duda part I: the brunnea species group from the Oriental Region, with morphological and molecular evidence (Diptera, Drosophilidae). ZooKeys 671: 87-118. https://doi.org/10.3897/zookeys.671.11275
Figure 9 - Scaptodrosophila pressobrunnea (Tsacas & Chassagnard, 1976). A, B epandrium, surstylus and cercus (lateral and posterior views) C, D hypandrium, parameres, gonopods, aedeagus and aedeagal apodeme (ventral and lateral views) E oviscapt (lateral view). Scale bars 0.1 mm.
Figure 1 from: Korshunova TA, Sanamyan NP, Martynov AV (2016) Morphological and molecular evidence indicate Dendronotus primorjensis is a valid species that has priority over D. dudkai (Nudibranchia). ZooKeys 634: 15-28. https://doi.org/10.3897/zookeys.634.10231
Figure 1 - Dendronotus primorjensis, type material from Zoological Museum MSU: A holotype ZMMU Op-419, live, 35 mm in length, dorsal view B fixed holotype ZMMU Op-419 C paratype ZMMU Op-420, live, 21 mm in length D fixed paratype ZMMU Op-420 E radula of the holotype ZMMU Op-419, posterior part, SEM; F same, details G reproductive system of the holotype ZMMU Op-419. Abbreviations: am ampulla; bc bursa; fgm female gland mass; pr prostate; ps penial sheath; vd vas deferens; vg vagina. Scale bars E = 100 µm F = 30 µm G = 1 mm. Photos and SEM images by T.A. Korshunova and A.V. Martynov (Figures A, E, and F were published as part of the original description by Martynov et al. 2015a).
Figure 2 from: Korshunova TA, Sanamyan NP, Martynov AV (2016) Morphological and molecular evidence indicate Dendronotus primorjensis is a valid species that has priority over D. dudkai (Nudibranchia). ZooKeys 634: 15-28. https://doi.org/10.3897/zookeys.634.10231
Figure 2 - Phylogenetic tree based on combined molecular data (COI + 16S + 28S) represented by Bayesian Inference. Numbers above branches represent posterior probabilities from BI. Numbers below branches indicate bootstrap values for Maximum Likelihood.
Figure 8 from: Harris AJ, Chen Y, Olsen RT, Lutz S, Wen J (2017) On merging Acer sections Rubra and Hyptiocarpa: Molecular and morphological evidence. PhytoKeys 86: 9-42. https://doi.org/10.3897/phytokeys.86.13532
Figure 8 - Elongate leaf shape in Acer rubrum and A. pycnanthum. A–B A. rubrum C–D A. pycnanthum. Unfortunately, there is no scale for the images of A. pycnanthum, but the leaf size is similar to that illustrated in Figure 1B. Herbarium specimens in A and B deposited at US, and accession information visible in images. Detailed specimen records are available via the US online catalog (http://collections.nmnh.si.edu/search/botany/).
Figure 1 from: Harris AJ, Chen Y, Olsen RT, Lutz S, Wen J (2017) On merging Acer sections Rubra and Hyptiocarpa: Molecular and morphological evidence. PhytoKeys 86: 9-42. https://doi.org/10.3897/phytokeys.86.13532
Figure 1 - Typical specimens of Acer sects. Rubra and Hyptiocarpa, especially exhibiting leaf macromorphology. A A. rubrum B A. pycnanthum C A. saccharinum D A. laurinum. Specimens deposited at US national herbarium, and accession information visible in images. Detailed specimen records are available via the US online catalog (http://collections.nmnh.si.edu/search/botany/).
Figure 2 from: Harris AJ, Chen Y, Olsen RT, Lutz S, Wen J (2017) On merging Acer sections Rubra and Hyptiocarpa: Molecular and morphological evidence. PhytoKeys 86: 9-42. https://doi.org/10.3897/phytokeys.86.13532
Figure 2 - Maximum likelihood tree. Composite individuals represent sections except in the case of sects. Rubra and Hyptiocarpa, where composite individuals represent species. See Table 1 for GenBank accession numbers. Boostrap values for nodes are shown in white circles. Purple circles to the right of species in sects. Rubra and Hyptiocarpa represent one set each of 26 chromosomes (i.e., 2n=26) and show ploidy levels in sects. Rubra and Hyptiocarpa (e.g., A. saccharinum is tetraploid). Color coding of red and blue among branches shows relative support, respectively, from high (=100%BS) to low (~0%BS). Branches are scaled according to the bar below the tree.
Figure 9 from: Harris AJ, Chen Y, Olsen RT, Lutz S, Wen J (2017) On merging Acer sections Rubra and Hyptiocarpa: Molecular and morphological evidence. PhytoKeys 86: 9-42. https://doi.org/10.3897/phytokeys.86.13532
Figure 9 - Inflorescences of Acer sects. Rubra and Hyptiocarpa. A Acer rubrum with umbels of pistilate flowers B Acer rubrum with umbels of staminate flowers C A. pycnanthum with umbels of pistilate flowers C A. saccharinum with umbels of pistilate flowers. Note flowers with two, divided persistent styles D A. pinnatinervium with racemose thyrse. Specimens in A–D deposited at US, and specimen in D deposited at the British National Museum (BM). Accession information visible in images, and detailed specimen records are available via the US online catalog (http://collections.nmnh.si.edu/search/botany/) and at the data portal of BM (http://data.nhm.ac.uk/).
Figure 5 from: Harris AJ, Chen Y, Olsen RT, Lutz S, Wen J (2017) On merging Acer sections Rubra and Hyptiocarpa: Molecular and morphological evidence. PhytoKeys 86: 9-42. https://doi.org/10.3897/phytokeys.86.13532
Figure 5 - Micrographs of the leaf surfaces of Acer pycnanthum. A Adaxial surface showing cell shape and organization (Wilson 6882) B Adaxial surface showing cuticle (Collector unknown, s.n.) C Abaxial surface showing cell shape and organization of cells and stomata (Wilson 7729) D Abaxial surface showing cuticular wax (Wilson 6882). All leaf materials are from specimens deposited at US, and parenthetical information in this legend refers to the collector name and number..
Figure 4 from: Harris AJ, Chen Y, Olsen RT, Lutz S, Wen J (2017) On merging Acer sections Rubra and Hyptiocarpa: Molecular and morphological evidence. PhytoKeys 86: 9-42. https://doi.org/10.3897/phytokeys.86.13532
Figure 4 - Micrographs of the leaf surfaces of Acer saccharinum. A Adaxial surface showing cell shape and organization (Norton 69) B Adaxial surface showing cuticle (Richardson & Robertson 915) C Abaxial surface showing cell shape and organization of cells and stomata (Brown 8023) D Abaxial surface showing cuticular wax (Coville s.n.). All leaf materials are from specimens deposited at US, and parenthetical information in this legend refers to the collector name and number.
Figure 7 from: Harris AJ, Chen Y, Olsen RT, Lutz S, Wen J (2017) On merging Acer sections Rubra and Hyptiocarpa: Molecular and morphological evidence. PhytoKeys 86: 9-42. https://doi.org/10.3897/phytokeys.86.13532
Figure 7 - Late-season specimens of Acer sect. Rubrum approaching leaf senescence. A A. pycnanthum with black arrow indicating silvery abaxial surface and green arrow indicating non- silvery surface. The inset in the upper left shows an SEM micrograph of a portion of an abaxial leaf surface from this specimen that lacks the silvery color such as the area referred to by the green arrow. Blue scale bar = 50μm. For an SEM micrograph showing a silvery portion of leaf surface from this specimen, see Figure 5C B A. rubrum exhibiting exclusively silvery abaxial leaf surface (upper, right leaf). The inset in the upper left shows an SEM micrograph of a portion of an abaxial leaf surface from this specimen bearing the characteristic silvery surface, and we did not observe late season leaves of A. rubrum lacking the silvery surface. Herbarium specimens deposited at US, and accession information visible in images. Detailed specimen records are available via the US online catalog (http://collections.nmnh.si.edu/search/botany/).
Figure 3 from: Harris AJ, Chen Y, Olsen RT, Lutz S, Wen J (2017) On merging Acer sections Rubra and Hyptiocarpa: Molecular and morphological evidence. PhytoKeys 86: 9-42. https://doi.org/10.3897/phytokeys.86.13532
Figure 3 - Micrographs of the leaf surfaces of Acer rubrum. A Adaxial surface showing cell shape and organization (Thieret 22942) B Adaxial surface showing cuticle (Harris 2016-63) C, Abaxial surface showing cell shape and organization of cells and stomata (Stevens 2617) D Abaxial surface showing cuticular wax (Thieret 22942). All leaf materials are from specimens deposited at US, and parenthetical information in this legend refers to the collector name and number for the source specimen.
Figure 6 from: Harris AJ, Chen Y, Olsen RT, Lutz S, Wen J (2017) On merging Acer sections Rubra and Hyptiocarpa: Molecular and morphological evidence. PhytoKeys 86: 9-42. https://doi.org/10.3897/phytokeys.86.13532
Figure 6 - Micrographs of the leaf surfaces of Acer laurinum. A Adaxial surface showing cell shape and organization (Cult., in Hort. Bog. III,K,37) B Adaxial surface showing cuticle (Sandkuhl 21296) C Abaxial surface showing cell shape and organization of cells and stomata (Sandkuhl 21296) D Abaxial surface showing cuticular wax (Wen 13386). All leaf materials are from specimens deposited at US, parenetical information in this legend refers to the collector name and number.
Figure 10 from: Harris AJ, Chen Y, Olsen RT, Lutz S, Wen J (2017) On merging Acer sections Rubra and Hyptiocarpa: Molecular and morphological evidence. PhytoKeys 86: 9-42. https://doi.org/10.3897/phytokeys.86.13532
Figure 10 - Fruits of species of Acer section Rubra. A A. rubrum. Specimen on left deposited at US National herbarium (US) with collection name and number: Lilian 62. Specimen on right deposited at Kew (K) as Acer drummondii Nutt. (= A. rubrum) with collection name and number: Drummond 53. Image of fruits obtained from image of specimen deposited in JSTOR Plants (http://plants.jstor.org/) B A. pycnanthum, used with attribution to Chinese Virtual Herbarium(http://www.cvh.ac.cn/); Miyoshi Furuse 54050, PE C A. saccharinum showing fruit with two fertilized ovules (upper) compared with one fertilized ovules and one partially developed, unfertilized ovule (lower). Specimens deposited at US with collection name and number: Wolf s.n. and Pringle s.n., respectively D A. laurinum Specimen deposited at K with collection name and number: Lindley, 418. Image of fruits obtained from image of specimen deposited in JSTOR Plants. Scale bar of 1cm applies to all images.
Fig. 25 in Morphological and molecular evidence refute a broad circumscription for Pultenaea glabra (Fabaceae: Mirbelieae), with implications for taxonomy, biogeography, and conservation
Fig. 25. Pultenaea aculeata (= P. sp. Olinda (R. Coveny 6166)) shoots developing post-fire.
Figure 1 in Morphological and molecular evidences of Ascaridia galli in migratory quail Coturnix coturnix japonica from Baluchistan Pakistan
Figure 1. (A) Male mouth parts of A. galli (arrow showing the two lips) one lip is behind; (B) Mid portion of male; (C) Preanal sucker in tail region.
FIGURE 2 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 2. Distribution of species of the Tropidurus spinulosus group in Paraguay.
FIGURE 1 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 1. Distribution of species of the Tropidurus torquatus group in Paraguay.
Figure 9 from: Wi J, Jeong M, Kang C (2018) A new species of the genus Hexapleomera Dudich, 1931 from the South Korea, with molecular evidence (Crustacea, Tanaidacea, Tanaididae). ZooKeys 739: 1-28. https://doi.org/10.3897/zookeys.739.21580
Figure 9 Hexapleomera ulsana sp. n., Jeju population, female, A cheliped B cheliped chela, inner surface C pereopod 1 D pleopod 1 E pleopod 3. Scale bars in mm.
Figure 8 from: Wi J, Jeong M, Kang C (2018) A new species of the genus Hexapleomera Dudich, 1931 from the South Korea, with molecular evidence (Crustacea, Tanaidacea, Tanaididae). ZooKeys 739: 1-28. https://doi.org/10.3897/zookeys.739.21580
Figure 8 Hexapleomera ulsana sp. n., Jeju population, female, A labium B maxillule C maxilla D maxilliped E epignath F uropod. Scale bars in mm.
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.