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Fig. 4 in Fig. 12 in Identification and Distribution of Wedge Clams (Donacidae: Bivalvia) in Thailand by Geometric Morphometric and Molecular Analysis.
Fig. 4. Niche comparison based on the first two principal components between summer (orange) and winter (blue) seasons. The colored cells indicate the niche area with the highest density presence records, the overlap between the two environments is shown in blue. The polygon represents the availability of the environment for each season. Histograms show the observed overlap between the two environments (red line) and the overlap of simulated niches (gray bars). In both cases, the p-value was significant; that is, the null hypothesis that the niches are different in both directions (summer to winter and vice versa) cannot be rejected.
Fig. 1 in Fig. 12 in Identification and Distribution of Wedge Clams (Donacidae: Bivalvia) in Thailand by Geometric Morphometric and Molecular Analysis.
Fig. 1. Geographical space of the records of Selasphorus platycercus, showing the 11 segments with letters from A to K. The graphs represent the records by segment along the months of the year.
Fig. 14 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 14. Phyllosoma larva of?Chelarctus sp-1, stage VII. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 11 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 11. Phyllosoma larva of Chelarctus crosnieri sub sp., stage V. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E, ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 5 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 5. Phyllosoma larva of Chelarctus virgosus, stage VI. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E, ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 4 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 4. Phyllosoma larva of Chelarctus virgosus, stage V. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 2 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 2. Neighbor-joining phylogenetic tree drawn using the Kimura-2-parameter distances for each of the partial COI sequences between the subfamily Scyllarinae species. Scyllarides brasiliensis was used as the outgroup. Closed squares indicate the phyllosoma specimens analyzed in this study. Bootstrap values of> 50% (from 1000 replicates) are shown at each node.
Fig. 1 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 1. Survey area and collection locations for the phyllosoma larvae sampled by the three research vessels: RV Shunyo-maru (SHU), Koyo-maru (KY), and RV Hakuho-maru (KH). Closed red circles indicate the sampling stations where Scyllarinae phyllosomas were collected. The specimens analyzed in this study were collected from the large circle stations. See table 1 for specimen ID.
Fig. 13 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 13. Phyllosoma larva of?Chelarctus sp-1, stage VI. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E, ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 3 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 3. Neighbor-joining phylogenetic tree drawn using the Kimura-2-parameter distances for each of the partial 16S rDNA sequences for species belonging to the subfamily Scyllarinae. Scyllarides brasiliensis was used as the outgroup. Closed squares indicate the phyllosoma specimens analyzed in this study. Bootstrap values of> 50% (from 1000 replicates) are shown at each node.
Fig. 7 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 7. Phyllosoma larva of Chelarctus virgosus, stage VIII. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 12 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 12. Phyllosoma larva of?Chelarctus sp-1, stage V. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E, ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 10 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 10. Phyllosoma larva of Chelarctus aureus, stage VIII. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 15 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 15. Phyllosoma larva of?Chelarctus sp-1, stage VIII. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 9 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 9. Phyllosoma larva of Chelarctus aureus, stageVII. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 6 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 6. Phyllosoma larva of Chelarctus virgosus, stage VII. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E, ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 8 in Molecular Identification of Mid to Final Stage Slipper Lobster Phyllosoma Larvae of the Genus (Crustacea: Decapoda: Scyllaridae) Collected in the Pacific with Descriptions of Their Larval Morphology.
Fig. 8. Phyllosoma larva of Chelarctus aureus, stage VI. A, ventral view; B, ventral view of eye, antennule and antenna; C, 2nd maxillule, 1st and 2nd maxilliped; D, distal end of 2nd maxilliped; E ventral view of 1st maxillule; F, ventral view of 5th pereiopod and abdomen; G, dorsal view of 5th pereiopod and abdomen.
Fig. 4 in Molecular identification of a new myxozoan, Myxobolus dermiscalis n. sp. (Myxosporea) infecting scales of Labeo rohita Hamilton in Harike Wetland, Punjab (India)
Fig. 4. Neighbour-Joining analysis of small subunit ribosomal DNA sequence of M. dermiscalis n.sp.in relation to 23 other sequenced members of the genus.
Fig. 1 in Molecular identification of a new myxozoan, Myxobolus dermiscalis n. sp. (Myxosporea) infecting scales of Labeo rohita Hamilton in Harike Wetland, Punjab (India)
Fig. 1. Agarose gel (1.8%) showing amplified 18S rDNA gene of M. dermiscalis n. sp. infecting scales of Labeo rohita. Lane 1: 1kb DNA Ladder Lane 2, 3: M. dermiscalis n. sp. (1597bp)
Fig. 3 in Molecular identification of a new myxozoan, Myxobolus dermiscalis n. sp. (Myxosporea) infecting scales of Labeo rohita Hamilton in Harike Wetland, Punjab (India)
Fig. 3. Photomicrographs of myxospores of M. dermiscalis n. sp. a) fresh under phase contrast microscope b) stained with Ziehl‾Neelson c) Line drawing d) stained with Ironhaematoxylin Scale bar = 10 Mm.
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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)
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.