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440 results for “flatworm”
Fig. 8 in Tracking the diversity of the flatworm genus Imbira (Platyhelminthes) in the Atlantic Forest
Fig. 8 Imbira flavonigra Amaral & Leal-Zanchet, sp. nov., holotype, microphotographs: a detail of prostatic vesicle in sagittal section and b detail of female atrium in sagittal section. Anterior tip to the left
Fig. 7 in Tracking the diversity of the flatworm genus Imbira (Platyhelminthes) in the Atlantic Forest
Fig. 7 Imbira flavonigra Amaral & Leal-Zanchet, sp. nov., microphotographs: a copulatory apparatus of the holotype in sagittal section and b copulatory apparatus of paratype MZU PL.00215 in horizontal section. Anterior tip to the left
Fig. 5 in Tracking the diversity of the flatworm genus Imbira (Platyhelminthes) in the Atlantic Forest
Fig. 5 Imbira flavonigra Amaral & Leal-Zanchet, sp. nov., holotype: microphotograph of pharynx in sagittal section. Anterior tip to the left
Fig. 2 in Tracking the diversity of the flatworm genus Imbira (Platyhelminthes) in the Atlantic Forest
Fig. 2 Distributional range of the genus Imbira, showing the sampling sites (black dots) of the seven lineages studied herein (clades 1–7) and outlines of their sampling areas (green areas). Ma: private area in Maquiné, Rio Grande do Sul, Brazil; FN-SFP: National Forest of São Francisco de Paula (São Francisco de Paula, Rio Grande do Sul, Brazil);
Fig. 3 in Tracking the diversity of the flatworm genus Imbira (Platyhelminthes) in the Atlantic Forest
Fig. 3 Imbira flavonigra Amaral & Leal-Zanchet, sp. nov., holotype: a, b photograph of the live specimen, in dorsal view, and c colour pattern of a fixed specimen in dorsal view. Anterior tip to the left
Figs. 28–33 in Focus on the details: morphological evidence supports new cryptic land flatworm (Platyhelminthes) species revealed with molecules
Figs. 28–33 Obama decidualis Amaral & Leal-Zanchet, sp. nov., holotype: (28) anterior region of the body in transverse section; (29) detail of the anterior region of the body in transverse section; (30) pre-
Fig. 15 in Focus on the details: morphological evidence supports new cryptic land flatworm (Platyhelminthes) species revealed with molecules
Fig. 15 Obama anthropophila Amaral, Leal-Zanchet & Carbayo, sp. nov., holotype. Detail of eye pattern in dorsal view
Fig. 6 Obama ladislavii, specimen ZMH V5270-A in Focus on the details: morphological evidence supports new cryptic land flatworm (Platyhelminthes) species revealed with molecules
Fig. 6 Obama ladislavii, specimen ZMH V5270-A. Consecutive microphotographs of a trilobed eye from horizontal sections; the upper side of the eye is represented in the leftmost picture
Figs. 4–5 in Focus on the details: morphological evidence supports new cryptic land flatworm (Platyhelminthes) species revealed with molecules
Figs. 4–5 Obama ladislavii. (4) Specimen ZMH V5270-A. Fixed specimen in dorsal view on a graph paper. Anterior end to the right. (5) Specimen F1418. Dorsal view of the creeping specimen, approximately 38 mm in length. Anterior end to the left
Fig. 2 Ultrametric tree showing the GMYC delimitation results obtained from the Cox1 in Focus on the details: morphological evidence supports new cryptic land flatworm (Platyhelminthes) species revealed with molecules
Fig. 2 Ultrametric tree showing the GMYC delimitation results obtained from the Cox1Del dataset. Threshold separating speciation and coalescent processes plotted as grey vertical line that delimits 18 entities (including 7 singletons)
Fig. 1 in Focus on the details: morphological evidence supports new cryptic land flatworm (Platyhelminthes) species revealed with molecules
Fig. 1 Bayesian inference phylogenetic tree obtained from the concatenated dataset (18S, 28S, ITS-1, EF and Cox1). Names on branches indicate the species name for the clade and terminal labels indicate codes of individual specimens (Online Resource 1). Filled
Fig. 3 in The molecular phylogenetic position of Mariplanella piscadera sp. nov. reveals a new major group of rhabdocoel flatworms: Mariplanellida status novus (Platyhelminthes: Rhabdocoela)
Fig. 3 ML bootstrap consensus network of Trepaxonemata* inferred from 18S and 28S rDNA sequences. Consensus network of the RAxML bootstrap analysis based on the trimmed concatenated alignment. Pseudo-replicate counts (~ bs) pertaining to the interrelationships of Mariplanellida status novus, Kalyptorhynchia and Dalytyphloplandia are shown with a threshold value of 10. *Exclusive of Neodermata and Bothrioplanida
Fig. 1 in The molecular phylogenetic position of Mariplanella piscadera sp. nov. reveals a new major group of rhabdocoel flatworms: Mariplanellida status novus (Platyhelminthes: Rhabdocoela)
Fig. 1 LM images of the live specimen and stylet drawing of Mariplanella piscadera sp. nov. from Curaçao. (a) Full specimen with the pharynx visible as a lighter round outline in the posterior part of the body. (b–c) Detail of the anterior end showing the brain and two types of adenal rhabdite glands (rh1, red overlay; rh2, blue overlay). (d) Detail of the posterior end behind the pharynx show-
Fig. 4 in Phylogenetic relationships within the flatworm genus Matuxia (Platyhelminthes, Tricladida, Continenticola) inferred from molecular data with the description of a southern lineage of the genus
Fig. 4 Matuxia tymbyra Rossi & Leal-Zanchet, sp. nov., holotype, microphotographs of transverse (a–e, g) and sagittal (f; anterior tip to the left) sections: a anterior region of body; b detail of anterior region of body; c pre-pharyngeal region; d detail of dorsal surface of pre-pharyngeal region; e detail of ventral surface of pre- pharyngeal region; f pharynx; g ovary
Fig. 5 in Phylogenetic relationships within the flatworm genus Matuxia (Platyhelminthes, Tricladida, Continenticola) inferred from molecular data with the description of a southern lineage of the genus
Fig. 5 Matuxia tymbyra Rossi & Leal-Zanchet, sp. nov.: a sagittal composite reconstruction of copulatory apparatus of the holotype; b horizontal composite reconstruction of copulatory apparatus of specimen MZU PL.00166
Fig. 2 in Phylogenetic relationships within the flatworm genus Matuxia (Platyhelminthes, Tricladida, Continenticola) inferred from molecular data with the description of a southern lineage of the genus
Fig. 2 Molecular phylogenetic relationships and species boundaries inferred from the sequences of COI and EF-1a on a Bayesian consensus tree. Node values represent posterior probabilities and likelihood
Fig. 1 in Phylogenetic relationships within the flatworm genus Matuxia (Platyhelminthes, Tricladida, Continenticola) inferred from molecular data with the description of a southern lineage of the genus
Fig. 1 Distributional range of the genus Matuxia in areas of Atlantic Forest from southeastern and southern Brazil
Fig. 3 in Phylogenetic relationships within the flatworm genus Matuxia (Platyhelminthes, Tricladida, Continenticola) inferred from molecular data with the description of a southern lineage of the genus
Fig. 3 Matuxia tymbyra Rossi & Leal-Zanchet, sp. nov.: a–b photograph of live specimens, a MZU PL.00181 and b holotype, in dorsal view; c colour pattern of the holotype after fixation in dorsal view; d eye pattern of a fixed specimen (MZU PL.00183) in dorsal view. Anterior tip to the left. The position of the pharynx and copulatory apparatus is indicated by the light marks on dorsal surface in c
Figure 1 in A new higher classification of planarian flatworms (Platyhelminthes, Tricladida)
Figure 1. Phylogenetic supertree of the major taxa within the Tricladida, as generalized from various published studies, forming the backbone for the classification presented.
Figure 7 in Reproduction, development and parental care in two direct-developing flatworms (Platyhelminthes: Polycladida: Acotylea)
Figure 7. Imogine zebra parental care: (A) covering newly laid eggs, (B) attacking a gastropod near a recently laid egg plate, scale bars, 1 mm. Imogine zebra, ventral views: (C) before oviposition, showing egg-filled uteri (u), filled ventral glands (gl), and gonopore (gp), scale bar 5 mm; (D) immediately after oviposition, showing marked decrease in gland contents, scale bar 2 mm.
ScienceDex guides
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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.