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Figs 1–6 in Two New Species Of Macrorrhyncha Winnertz (Diptera: Keroplatidae) From Turkey, With Redescription Of Macrorrhyncha Thracica Bechev, Stat. N. And A Key To The Western Palaearctic Species Of The Genus
Figs 1–6. Male terminalia, setae are shown on gonostyles only: 1 = Macrorrhyncha anatolica, form of tergite 9 and cerci, dorsal view; 2 = M. anatolica, ventral view; 3 = M. anatolica, lateral view; 4 = M. muglensis, form of tergite 9 and cerci, dorsal view; 5 = M. muglensis, ventral view; 6 = M. muglensis, lateral view. Abbreviations: lf = lateral fold of tergite 9, ip = inner process of gonocoxite,
Figure 4 in A discussion on the validity of the genus Abalakeus (Acari: Erythraeidae) with a redescription of A. gonabadensis
Figure 4 Abalakeus gonabadensis (larva). A – Scutum circular with striations and cheliceral bases with punctations and faint striations; B – Semi-rectangular scutum; C – Scutum and cheliceral bases with striations; D – Dorsal idiosomal setae.
Figure 1 in A discussion on the validity of the genus Abalakeus (Acari: Erythraeidae) with a redescription of A. gonabadensis
Figure 1 Abalakeus gonabadensis(larva). A – Dorsal view of idiosoma; B – Ventral view of idiosoma; C – Gnathosoma.
Figure 2 in A discussion on the validity of the genus Abalakeus (Acari: Erythraeidae) with a redescription of A. gonabadensis
Figure 2 Abalakeus gonabadensis(larva). A – BFe-Ge I; B – Ti and Ta I; C – BFe-Ge II; D – Ti and Ta II.
Linked collectors and determiners for: A new species of Bomansius Lacroix (Coleoptera: Lucanidae) from Vanuatu, with redescriptions of its genus and its only congener, Bomansius gabrieli Lacroix, 1978.
Natural history specimen data linked to collectors and determiners held within, "A new species of Bomansius Lacroix (Coleoptera: Lucanidae) from Vanuatu, with redescriptions of its genus and its only congener, Bomansius gabrieli Lacroix, 1978". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="http://bionomia.net/dataset/30de3e76-7464-49f8-ba36-15a9cc71b955">https://bionomia.net/dataset/30de3e76-7464-49f8-ba36-15a9cc71b955</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/30de3e76-7464-49f8-ba36-15a9cc71b955">https://gbif.org/dataset/30de3e76-7464-49f8-ba36-15a9cc71b955</a>. Formatted as a Frictionless Data package.
Figs 2A, B in Systematic Analyses of the Genus Architricha and Pleurotricha curdsi (Ciliophora, Oxytrichidae), with Redescriptions of Their Morphology
Figs 2A, B. Line drawings of protagol stained cells of Architricha indica during early stages of reorganization. A, B – ventral views, showing the formation of the oral primordium, I–V anlagen for the frontal-ventral-transverse cirri, and appearance of undulating membranes anlage, arrowheads in (B) indicate anlagen of dorsal kineties. FC – frontal cirri, FVC – frontal ventral cirri, I–V – frontoventraltransverse cirral anlagen I–V, OP – oral primordium, PVC – postoral ventral cirri, UMA – undulating membranes anlage. Scale bar: 50 μm.
Fig. 5 in Morphological and Morphogenetic Redescriptions and SSU rRNA Gene-based Phylogeny of the Poorly-known Species Euplotes amieti Dragesco, 1970 (Ciliophora, Euplotida)
Fig. 5. Phylogenetic tree based on SSU rRNA gene sequences, showing the position of Euplotes amieti (arrow) by Maximum Likelihood (ML) and Bayesian inference (BI). Numbers near branches denote ML bootstrap value/BI posterior probability value. '–' indicates topologies that differ between the ML and BI phylogenies. Fully supported (100%/1.00) branches are marked with solid circles. All branches are drawn to scale. The scale bar corresponds to 5 substitutions per 100 nucleotide positions. GenBank accession numbers are given for each species. Systematic classification is mainly according to Lynn (2008). Euplotid clades I–VI were designated according to Yi et al. (2009).
Figs 3A–F in Systematic Analyses of the Genus Architricha and Pleurotricha curdsi (Ciliophora, Oxytrichidae), with Redescriptions of Their Morphology
Figs 3A–F. Photomicrographs of protagol stained cells of Architricha indica during regenerative (A–C) and morphogenetic stages (D–F). A, B – ventral (A) and detailed dorsal (B) view of cell during early stage of reorganization, showing the formation of oral primordium (OP), the frontoventral-transverse cirral (FVT) anlagen and dorsal kineties anlagen (arrowheads); C – anterior part of ventral side of another regenerating cell, showing the anlage V arose from the cirrus IV/2 (arrowhead); D – ventral view, showing the six streaks of FVT anlagen; E, F – ventral (E) and dorsal (F) detailed view, showing the FVT anlagen dividing into fragments, the dedifferentiation of parental undulating membranes and the origin of multiple marginal rows in (E) and showing the anlagen for dorsal kineties in (F), arrowheads showing the new frontal cirri that came from the undulating membranes anlage. DKA – dorsal kinety anlagen, FVTA – frontoventral-transverse cirral anlagen, I–V – FVT I to V, LMA – left marginal row anlagen, OP – oral primordium, RMA – right marginal anlagen, UMA – undulating membranes anlage. Scale bars: 50 μm.
Fig. 1. Euplotes amieti Dragesco, 1970 in Morphological and Morphogenetic Redescriptions and SSU rRNA Gene-based Phylogeny of the Poorly-known Species Euplotes amieti Dragesco, 1970 (Ciliophora, Euplotida)
Fig. 1. Euplotes amieti Dragesco, 1970 in vivo (A), after protargol (B–D) and silver nitrate (E, F) impregnation. (A) Ventral view of a representative cell. Arrows indicate caudal cirri. (B) Different shapes of macronucleus. (C, D) Ventral (C) and dorsal (D) view, showing the infraciliature and nuclear apparatus. Arrow shows the sigmoidal adoral zone. (E, F) Silverline system on ventral (E) and dorsal side (F). Arrow shows the sigmoidal adoral zone. AZM, adoral zone of membranelles; CC, caudal cirri; CVP, contractile vacuole pore; FVC, frontoventral cirri; MC, marginal cirri; PM, paroral membrane; TC, transverse cirri. Scale bars: 100 μm.
Fig. 6 in Systematic Analyses of the Genus Architricha and Pleurotricha curdsi (Ciliophora, Oxytrichidae), with Redescriptions of Their Morphology
Fig. 6. Maximum likelihood tree inferred from SSU rRNA gene sequences, showing the position of Architricha indica and Pleurotricha curdsi (bold). Newly sequenced species are marked by arrows. Nodal support for branches in the ML and BI trees are marked in order. "*" indicates bootstrap value disagreement between the ML tree and the reference BI tree at a given node. Black circles indicate full support in all analyses. Bar, 2 substitutions per 100 nucleotide positions. Parabirojimia similis and Parabirojimia multinucleata are the out group taxa.
Fig. 4 in Morphological and Morphogenetic Redescriptions and SSU rRNA Gene-based Phylogeny of the Poorly-known Species Euplotes amieti Dragesco, 1970 (Ciliophora, Euplotida)
Fig. 4. Photomicrographs of Euplotes amieti during morphogenesis after protargol impregnation. (A) Ventral view of a middle divider showing the migration of cirri and the division of the macronucleus. (B, C) Ventral view of an early divider demonstrating two sets of frontal-ventral-transverse cirral streaks (arrowheads) and the oral primordium in opisthe (arrow). (D) To show new cirri derived from the frontal-ventral-transverse cirral anlagen. (E) Ventral view, arrows point to the paroral membrane (PM) in the proter and the development of the PM-anlage in the opisthe; arrowhead indicates the frontal cirrus I/1 in the opisthe formed de novo. (F) Ventral view, indicating the marginal anlagen of the proter (arrow) and the opisthe (arrowhead). (G) Arrowheads showing the dorsal kinety anlage of an early divider. (H) Portion of the ventral view, showing the marginal cirri in the proter (arrow) and the opisthe (arrowhead). (I) Dorsal view, arrowheads indicating the development of the dorsal kinety anlage. (J) Portion of the dorsal view, to show the newly formed caudal cirri in the proter (arrowheads). Scale bars: 100 μm.
Figs 5A–N in Systematic Analyses of the Genus Architricha and Pleurotricha curdsi (Ciliophora, Oxytrichidae), with Redescriptions of Their Morphology
Figs 5A–N. Photomicrographs of Pleurotricha curdsi from life (A–G) and after protargol staining (H–N). A – a typical individual showing body shape and color; B, C – ventral (B) and dorsal (C) view, showing the food granules (arrowheads), arrow in (B) indicates the cytostome, arrow in (C) marks the collar part of adoral zone of membranelles (AZM) on the dorsal side; D – anterior part, to show the AZM; E – anterior part of dorsal side, to show the AZM in the back collar (arrowhead); F – posterior portion, to show the tapered posterior end (arrow); G – showing the contractile vacuole (arrow) and cilia of dorsal kinety (arrowhead); H – ventral view to show the single left marginal and two right marginal cirri rows; I – to show the cirri in frontal area, noting this specimen owning five frontal ventral cirri and three frontal cirri; J – postoral ventral cirri and pretransverse and cirri; K – transverse cirri; L – caudal cirri (arrowheads); M – anterior part of dorsal kineties; N – macronuclei and micronuclei (arrowheads). BC – buccal cirrus, FC – frontal cirri, FVC – frontal ventral cirri, LMR – left marginal row, Ma – macronucleus, PTVC – pretransverse ventral cirri, PVC – postoral ventral cirri, RMR 1, 2 – right marginal row 1 and 2, TC – transverse cirri. Scale bars: 50 μm.
Fig. 3 in Morphological and Morphogenetic Redescriptions and SSU rRNA Gene-based Phylogeny of the Poorly-known Species Euplotes amieti Dragesco, 1970 (Ciliophora, Euplotida)
Fig. 3. Morphogenesis of Euplotes amieti after protargol impregnation. (A, B) Ventral (A) and dorsal (B) view of the same specimen at an early stage to show the five frontal-ventral-transverse cirral streaks and oral primordium within which membranelles are forming (arrow). (C, D) Ventral (C) and dorsal (D) view of the same specimen at a middle stage to show the completion of the cirral formation, the differen- tiation of caudal cirri at posterior ends of the two rightmost dorsal anlagen (arrowheads), the de novo formation of the new marginal cirri and the frontal cirrus I/1 in both proter and opisthe (arrows). (E, F) Ventral (E) and dorsal (F) view, showing the migration of newly formed cirri and the development of dorsal kineties, arrowheads show the marginal cirri. (G, H) Ventral (G) and dorsal (H) side of the same divider at a late stage showing infraciliature and nuclear apparatus. Scale bars: A–D = 100 μm; E–H = 150 μm.
Fig. 5 in Redescription of Dexiotricha colpidiopsis (Kahl, 1926) Jankowski, 1964 (Ciliophora, Oligohymenophorea) from a Hot Spring in Iceland with Identification Key for Dexiotricha species
Fig. 5. Dexiotricha species from live (A, D, F, G) and silver-stained specimens (B, C, E, H–L). (A–C) D. elliptica (from Fan et al. 2014). (D, E) D. tranquilla (from Augustin and Foissner 1992). (F) D. polystyla (from Foissner 1987). (G, H) D. granulosa (G from Behrend 1916; H from Fan et al. 2014). (I) D. media (from Peck 1974). (J, K) D. colpidiopsis (J from Fauré-Fremiet 1968; H from Jankowski 1964). (L) D. raikovi (from Jankowski 1964). Scale bars: 20 µm.
Fig. 2 in Redescription of Dexiotricha colpidiopsis (Kahl, 1926) Jankowski, 1964 (Ciliophora, Oligohymenophorea) from a Hot Spring in Iceland with Identification Key for Dexiotricha species
Fig. 2. Dexiotricha colpidiopsis from live (A–C) and after protargol-staining (D–F). (A) Ventrolateral view of a typical specimen showing the subterminal contractile vacuole (arrow). (B) Ventral view (from Kahl 1926). (C) Right lateral view showing the transverse row of cilia (arrows). (D) Ciliature of oral region. (E, F) Ventral and dorsal views of type specimen. CC, caudal cilium; M1–3, membranelles 1–3; Ma, macronucleus; Mi, micronucleus; PK, postoral kineties; PM, paroral membrane; Sc, scutica; SK, somatic kineties; SK1, first somatic kinety on right margin of buccal cavity; SKn, first somatic kinety on left margin of buccal cavity. Scale bars: 25 µm.
Fig. 4 in Redescription of Dexiotricha colpidiopsis (Kahl, 1926) Jankowski, 1964 (Ciliophora, Oligohymenophorea) from a Hot Spring in Iceland with Identification Key for Dexiotricha species
Fig. 4. Phylogenetic tree inferred by Maximum-likelihood (ML) analyses of the small SSU rRNA gene sequences. The new sequence is highlighted in bold. Numbers at the nodes are the bootstrap values of the ML and BI analyses, respectively. The mark "-" indicates discrepancies in the topologies of the ML and BI trees; thus, only the values of ML are shown in these cases. The scale bar corresponds to 5 substitutions per 100 nucleotide positions.
Fig. 3 in Redescription of Dexiotricha colpidiopsis (Kahl, 1926) Jankowski, 1964 (Ciliophora, Oligohymenophorea) from a Hot Spring in Iceland with Identification Key for Dexiotricha species
Fig. 3. Photomicrographs of Dexiotricha colpidiopsis from live (A–D; A with bright field illumination, C–D with differential interference contrast microscopy), after dry silver nitrate staining (E), and after protargol-impregnation (F–I). (A, B) Ventrolateral views showing the subterminal contractile vacuole (arrows) and the caudal cilium (arrowhead). (C) Right lateral view showing the transverse row of cilia (arrows). (D) Slightly compressed specimens showing the subterminal contractile vacuole (arrows). (E) Showing the position of the contractile vacuole pore (arrow). (F, G) Ventral and dorsal views of the type specimen. (H, I) Right and left lateral views. M1–3, membranelles 1–3; Ma, macronucleus; Mi, micronucleus; PK, postoral kinety, PM, paroral membrane. Scale bars: 25 µm.
Fig. 4 in New species of Eugerres from the Usumacinta Province, México and Guatemala with a redescription of E. mexicanus (Steindachner, 1863) (Teleostei: Gerreidae)
Fig. 4. Distribution of freshwater species of Eugerres in drainages along southeastern Mexico and northern Guatemala: E. castroaguirrei new species (black dots) and E. mexicanus (white dots), type locality (star).
Fig. 1 in New species of Eugerres from the Usumacinta Province, México and Guatemala with a redescription of E. mexicanus (Steindachner, 1863) (Teleostei: Gerreidae)
Fig. 1. Body measurements of external morphology used in morphometrics and principal component analysis: anal fin length (AFL); base of dorsal fin length (DFL); body depth (BD); caudal peduncle height (CPH); caudal peduncle length (CPL); head height (HH); head length (HL); maxillary length (ML); orbit diameter (OD); pectoral fin length (PFL); postorbital length (POL); predorsal length (PDL); standard length (SL); second anal spine length (2ASL); second dorsal spine length (2DSL); snout length (SNL); ventral fin length (VFL). Measurements based on González-Acosta (2005). Drawing modified from Bussing (1995). Not included in the illustration: inter-orbital length, third anal spine length, third dorsal spine length and distance between the tips of the second dorsal and second anal spines (SL).
Fig. 6 in New species of Eugerres from the Usumacinta Province, México and Guatemala with a redescription of E. mexicanus (Steindachner, 1863) (Teleostei: Gerreidae)
Fig. 6. Premaxillary bone, dorsal view, in (a) Eugerres castroaguirrei ECOSC 5511-1, and (b) E. mexicanus UABC 2666. ap = ascending process, arp = articular process, cp = caudal process, sp = symphysial process. Pharyngeal plates in (c) E. castroaguirrei and (d) E. mexicanus: dorsal view (d.v.) and lateral view (l.v.). pt = pharyngeal dentition.
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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.