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247 results for “inland water”
Figure 1 in New species of Paratya (Decapoda: Atyidae) from Australian inland waters - linking morphological characters with molecular lineages
Figure 1. Maps: a, distribution of Paratya in Australia. Sources include data from Cook et al. (2006); Baker et al. (2004), Cook (2006), Hurwood et al. (2003), McCluskey (2007) and data from this study; b, distribution of Paratya specimens analysed in this study. Maps created in Cartographica.
Figure 5 in New species of Paratya (Decapoda: Atyidae) from Australian inland waters - linking morphological characters with molecular lineages
Figure 5. Paratya australiensis: a–e, P. australiensis Kemp; f–j, P. australiensis Shoalhaven morphotype; a, rostrum; b, left mandible incisors; c, right mandible incisors; d, first pereiopod; e, second pereiopod; f, rostrum; g, left mandible incisors; h, right mandible incisors; i, first pereiopod; j, second pereiopod. Scale lines 0.2 mm.
Figure 3 in New species of Paratya (Decapoda: Atyidae) from Australian inland waters - linking morphological characters with molecular lineages
Figure 3. Sub-tree of Paratya arrostra Riek, 1953, showing supported subclades. Themajority of material collected across a wide geographical area in this study grouped within a single clade (E), which is equivalent to Lineage 4B in Cook et al. (2006). Previous haplotypes from Cook et al. (2006) form the other sub-clades, but no specific geographical information is known for these sequences. Sub-clades A and B contain some specimens from this study.
Figure 4 in New species of Paratya (Decapoda: Atyidae) from Australian inland waters - linking morphological characters with molecular lineages
Figure 4. Sub-tree of Paratya tasmaniensis Riek, 1953, showing supported sub-clades. Sub-clade A predominantly has material from Tasmania but with a single specimen collected at Hamilton, Victoria. Sub-clade B contains specimens from the Glenelg River catchment, south-west Victoria through to the Hastings River in New South Wales. Sub-clade E contains sequences from Cook (2006) from the Strathbogie area, and sub-clades C and D are from Cook et al. (2006) and McCluskey (2007).
Fig. 2 in Short communication On the occurrence of the invasive Atlantic blue crab Callinectes sapidus Rathbun 1896 (Decapoda: Brachyura: Portunidae) in Sicilian inland waters
Fig. 2 - Neighbor-Joining tree based on a 659-bp long fragment of the mtDNA COI gene of Callinectes sapidus using Kimura-2- parameter distance model. The different clades are coloured according to their lineage as described by Windsor et al., 2019: clear blue, Lineage 1 (northwestern Atlantic and Gulf of Mexico); pink, Lineage 2 (Caribbean region); orange, Lineage 3 (Brazil). Novel sequences are reported in bold. The analysed specimens are reported using the GenBank® Accession numbers listed also in Table S1. / Albero Neighbor-Joining basato su un frammento lungo 659-pb del gene mtDNA COI di Callinectes sapidus, utilizzando il modello di distanza "Kimura-2-parameter". I diversi cladi sono colorati secondo il loro lignaggio come descritto da Windsor et al., 2019: blu chiaro, "Lineage 1" (Atlantico nord-occidentale e Golfo del Messico); rosa, "Lineage 2" (regione caraibica); arancione, "Lineage 3" (Brasile). Le sequenze nuove sono riportate in grassetto. Gli esemplari analizzati sono riportati utilizzando i numeri di accesso Gen- Bank® elencati anche nella Tabella S1.
Fig. 1 in Short communication On the occurrence of the invasive Atlantic blue crab Callinectes sapidus Rathbun 1896 (Decapoda: Brachyura: Portunidae) in Sicilian inland waters
Fig. 1 - Location of the sampling sites. Red circles indicate the new Sicilian sites where Callinectes sapidus (inbox) was sampled; 1) Imera Meridionale river. 2) Irminio river. White circles indicate previous records of the species (see Mancinelli et al., 2021 for further information). / Localizzazione dei siti campionati. I cerchi rossi indicano i nuovi siti siciliani dove è stato campionato Callinectes sapidus (nel riquadro); 1) fiume Imera Meridionale. 2) fiume Irminio. I cerchi bianchi indicano precedenti record della specie (vedi Mancinelli et al., 2021 per ulteriori informazioni).
Fig. 18 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 18. Pseudovorticella vestita from life (A), after protargol impregnation (B, C). A. Body shape in vivo to show pellicular vesicles. B. Two kinds of macronuclear pattern (globular type and longitudinal J-shaped type). C. Infundibular polykineties 1-3. MA, macronuclear nodules; P1-3, infundibular polykineties. Scale bar = 30 μm.
Fig. 17 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 17. Epistylis pygmaeum from life (A-C) and after protargol impregnation (D, E). A. Epibiotic habitat of E. pygmaeum. B. Body shape and contractile vacuole in vivo. C. Dichotomously branched stalk. D. Infundibular polykinety 1-3. E. Macronucleus and silverline systems. Scale bars = 200 μm (A); 50 μm (B); 20 μm (D); 10 μm (E).
Fig. 15. Bryometopus triquetrus after protargol impregnation. A in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 15. Bryometopus triquetrus after protargol impregnation. A. Somatic ciliature and contractile vacuole pore (arrow). B. Triangular oral cavity. C. Single macronucleus. LF, left oral ciliary field; MA, macronucleus; RF, right oral ciliary field. Scale bars = 20 μm.
Fig. 16 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 16. Cyclidium glaucoma from life (A) and after protargol impregnation (B, C). A. Body shape in vivo. B. Details of oral ciliatures. C. Somatic ciliature on dorsal side. M1-3, membranelles; MA, macronucleus; PM, paroral membrane; SC, scutica. Scale bars = 10 μm.
Fig. 12 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 12. Paraenchelys wenzeli from life (A-C) and after protargol impregnation (D-F). A. Typical body shape in vivo. B. Details of cytoplasmic structures including macronucleus, extrusomes and contractile vacuoles. C. Peculiar large, teardrop shape extrusomes. D. Macronucleus with micronucleus and weakly impregnated large extrusomes. E. Somatic and oral ciliature (arrow indicates micronucleus). F. Details of fragmented dorsal brush rows. B, brush rows; E, extrusomes; MA, macrnucleus; MI, micronucleus. Scale bars = 30 μm (A, B, D, E); 10 μm (C).
Fig. 14 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 14. Drepanomonas revoluta from life (A-C) and after protargol impregnation (D). A. Body outline in vivo. B. Note the deep wide furrow on the left side. C. Left side in vivo. D. Somatic and oral ciliature on right side. CV, contractile vacuole; CY, cytopyge; F, furrow; K1- 9, somatic kineties; MA, macronucleus; MI, micronucleus; PC, postoral complex; PO, preoral kineties. Scale bars = 10 μm.
Fig. 13 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 13. Rimaleptus similis from life (A, B, E) and after protargol impregnation (C, D). A. Typical body shape in vivo. B. Distribution of contractile vacuoles. C. Somatic and oral ciliature. D. Details of oral ciliature. E. Single spherical micronucleus between two macronuclear nodules and two kinds of oral extrusomes. CK, circumoral kinety; CV, contractile vacuoles; MA, macronuclear nodule; MI, micronucleus; PR, preoral kinety. Scale bars = 100 μm (A); 50 μm (C, E).
Fig. 11 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 11. Phialinides australis from life (A, B) and after protargol impregnation (C, D). A. Cortical granulation. B. Oral and cytoplasmic extrusomes. C, D. Details of oral and somatic ciliature and the phialinid ciliary wreath (arrowheads). Scale bars = 30 μm (A, B); 20 μm (C, D).
Fig. 10 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 10. Protospathidium muscicola from life (A, B) and after protargol impregnation (C-E). A. Typical body shape to show oral and cytoplasmic extrusomes with one terminal contractile vacuole. B. Cortical granules and apparatus of dorsal brush rows. C, D. Somatic and circumoral kineties with macronuclear nodules. E. Details of dorsal brush rows. B, brush rows; CV; contractile vacuole; E, extrusomes; MA, macronuclear nodule; OF, oral kinetofragment. Scale bars = 30 μm.
Fig. 6 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 6. Anteholosticha brachysticha from life (A, B) and after protargol impregnation (C, D). A. Cortical granulation on ventral side (arrowheads). B. Cortical granulation on dorsal side (arrowheads) and contractile vacuole. C. Somatic and oral ciliature on ventral side with distribution of macronuclear nodules. Arrow marks last midventral cirrus. D. Dorsal kineties. 1-3 dorsal kineties; BC, buccal cirrus; CV, contractile vacuole; FC, frontal cirri; FT, frontoterminal cirri; LMR, left marginal row; MA, macronucleus nodule; RMR, right marginal row; TC, transverse cirri. Scale bars = 30 μm (A, B); 20 μm (C).
Fig. 3 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 3. Lamtostyla decorata from life (A, B) and after protargol impregnation (C-E). A. Typical body shape in vivo. B. Dorsal bristles and cortical granules (arrowheads). C, D. Somatic and oral ciliature of ventral sides. E. Dorsal kineties. 1-3, dorsal kineties; ACR, amphisiellid median cirral row; BC, buccal cirrus; CV, contractile vacuole; DB, dorsal bristles; FC, frontal cirri; FT, frontoterminal cirri; MA, macronucleus; MI, micronucleus; PTC, pretransverse cirri; TC, transverse cirri. Scale bars = 30 μm.
Fig. 9. Epispathidium amphoriforme after protargol impregnation. A in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 9. Epispathidium amphoriforme after protargol impregnation. A. Right side view to show circumoral kinety and somatic kineties. B, C. Left side views to show dorsal brush rows, ribbon-like macronucleus and spherical inclusions. B, brush rows; CK, circumoral kinety; MA, macronucleus. Scale bars = 30 μm.
Fig. 2 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 2. Quadristicha setigera from life (A) and after protargol impregnation (B, C). A. Body outline in vivo and the long dorsal bristles (arrowheads). B. Somatic and oral ciliature of ventral side. C. Dorsal kineties. 1-4, dorsal kineties; AZM, adoral zone of membranelles; BC, buccal cirrus; CC, caudal cirri; FC, frontal cirri; LMR, left marginal row; PTC, pretransverse cirri; RMR, right marginal row; TC, transverse cirri. Scale bar = 20 μm.
Fig. 4 in Brief description of 18 newly recorded ciliate species from soil and inland waters (Protozoa, Ciliophora) in South Korea
Fig. 4. Lamtostyla islandica from life (A) and after protargol impregnation (B, C). A. Body shape in vivo. B. Somatic and oral ciliature of ventral side. C. Dorsal kineties and right marginal cirri. 1-3, dorsal kineties; ACR, amphisiellid median cirral row; AZM, adoral zone of membranelles; BC, buccal cirrus; LMR, left marginal row; MA, macronuclear nodules; RMR, right marginal row; TC, transverse cirri. Scale bars = 20 μm.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.