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169 results for “Epibiont”
FIGURE 1 in Report of deep-sea epibiont ciliates (Ciliophora) from more than 1000 m depth of the Arabian Sea, Indian Ocean
FIGURE 1. Map of the study area.
FIGURE 9 in Epibionts on Hydraena species (Coleoptera: Hydraenidae) from high mountain rivers of Pyrenees (Ordesa and Monte Perdido National Park), with the description of a new species
FIGURE 9. Discophrya ordesae sp. n. The tentacles retracted on the anterior end of the body.
FIGURE 7 in Epibionts on Hydraena species (Coleoptera: Hydraenidae) from high mountain rivers of Pyrenees (Ordesa and Monte Perdido National Park), with the description of a new species
FIGURE 7. Discophrya ordesae sp. n. A complete suctorian showing the shape of the body.
Fig. 5 in Influence of environmental factors and sessile biota on vagile epibionts: The case of amphipods in marinas across a regional scale Abstract
Fig. 5: RDA graphic showing the similarity between the amphipod community present in each marina and its relationship with the sessile community (CHI = Chipiona, AME = Puerto. América, BAR = Barbate, LIN= La Línea, FUE = Fuengirola, ALM = Almería; Green = Atlantic; Orange = Mediterranean).
Fig. 4 in Influence of environmental factors and sessile biota on vagile epibionts: The case of amphipods in marinas across a regional scale Abstract
Fig. 4: Composition (percentage of total volumen) of sessile species present in the pontoons of each marina (CHI = Chipiona, AME = Puerto. América, BAR = Barbate, LIN= La Línea, FUE = Fuengirola, ALM = Almería. Numbers represents the three pontoons). The group "Others" includes "Other ascidians" and "Filiform algae".
Fig. 3 in Influence of environmental factors and sessile biota on vagile epibionts: The case of amphipods in marinas across a regional scale Abstract
Fig. 3: Two dimensional MDS plot based on Bray–Curtis similarity matrix on the square root-transformed amphipod abundance data. Dashed lines indicate SIMPROF results (P<0.05).
Fig. 2 in Influence of environmental factors and sessile biota on vagile epibionts: The case of amphipods in marinas across a regional scale Abstract
Fig. 2: Number of species (S), abundance (N) and Shannon-Wiener diversity values (H') of the amphipod community (Mean ± standard error). *P <0.05; **P <0.01.
Figure 2 from: Ramírez-Ballesteros M, Fernandez-Leborans G, Mayén-Estrada R (2018) New record of Epistylis hentscheli (Ciliophora, Peritrichia) as an epibiont of Procambarus (Austrocambarus) sp. (Crustacea, Decapoda) in Chiapas, Mexico. ZooKeys 782: 1-9. https://doi.org/10.3897/zookeys.782.26417
Figure 2 A–BEpistylishentscheli in vivo, A colony B detail of zooid C–F zooid after silver carbonate staining C details of myonemes and macronucleus D details of stalk E detailed longitudinal fibers in the stalk F colony showing contracted zooids G–I protargol-stained zooids. Abbreviations: Cv. contractile vacuole; H. haplokinety; M. myonemes; Mac. macronucleus; Mi. micronucleus; Po. polykinety; Sc. scopula; Sm. stretch marks. Scale bars: 100 µm (A), 25 µm (B–D, F–H), and 10 µm (E, I).
Figure 1 from: Ramírez-Ballesteros M, Fernandez-Leborans G, Mayén-Estrada R (2018) New record of Epistylis hentscheli (Ciliophora, Peritrichia) as an epibiont of Procambarus (Austrocambarus) sp. (Crustacea, Decapoda) in Chiapas, Mexico. ZooKeys 782: 1-9. https://doi.org/10.3897/zookeys.782.26417
Figure 1 Procambarus (Austrocambarus) sp. from Montebello, Chiapas, Mexico. Dorsal view. Colonies of Epistylishentscheli are shown.
Fig. 1. Epistylis semiciculus n in Morphological and molecular identification of epibiontic sessilid Epistylis semiciculus n. sp. (ciliophora, Peritrichia) from Procambarus clarkia (Crustacea, Decapoda) in China
Fig. 1. Epistylis semiciculus n. sp. in vivo. A. Morphotype I stick to the gill of P. clarkia, double arrow shows Carchesium sp., arrow shows the zooids of Poulation I. B. Morphotype II stick to the pereopods of P. clarkia, arrow shows the zooids of Poulation II. Uncontracted zooids of morphotype I. C. Colony of morphotype I. D. Colony of Morphotype II. E. Uncontracted zooids of Morphotype II. F. Stalk, arrow shows the transverse striation. G, H. Macronucleus. I. Transverse striations on pellicle. ATB, aboral trochal band; CV, Contractile vacuole; Ma, macronucleus; PD, peristomial disk; PL, peristomial lip. Scale bars: A = 200 μm; B = 3 mm; C = 40 μm; D = 400 μm; E, F, G, H, I = 20 μm.
FIG. 3 in Epibionts and parasites of Macrobrachium rosenbergii and Metapenaeus dobsoni from Gosthani estuary
FIG. 3. Trophozoite of Nematopsis indicus attached to the intestinal mucosa of M. dobsoni, Ö250.
FIG. 3 in Epibiontic mollusc communities on Pinna nobilis L. (Bivalvia, Mollusca)
FIG. 3. Epibiontic mollusc community: Shannon-Wiener diversity H ¾ versus Pinna nobilis shell size.
FIG. 2 in Epibiontic mollusc communities on Pinna nobilis L. (Bivalvia, Mollusca)
FIG. 2. Epibiontic mollusc community: species richness versus Pinna nobilis shell size.
FIG. 1 in Epibiontic mollusc communities on Pinna nobilis L. (Bivalvia, Mollusca)
FIG. 1. Jaccard aYnity index: occurrence of each range of values.
FIG. 5 in Middle Devonian Calceola sandalina (Linnaeus, 1771) (Anthozoa, Rugosa) from Moravia (Czech Republic): aspects of functional morphology, gerontic growth patterns, and epibionts
FIG. 5. — Calceola sandalina (Linnaeus, 1771), coll. F. Ficner, Čelechovice, all specimens are whitened with ammonium chloride prior the photographing; A-D, specimen 1/1 (1RL), RL, well developed specimen with somewhat closing (senile) calice; A, "dorsal" side; B, "ventral" flat counter side; C, calicinal view; D, lateral view with convex "ventral" counter and concave "dorsal" cardinal sides; E-H, specimen 9/15 (15SL), SL, rejuvenated adult specimen; E, "dorsal" view; F, "ventral" view; G, calicinal view; H, lateral view; I, specimen 12SL, SL, adult operculum; J-M, specimen 10/18 (18SL), SL, injured specimen; J, "dorsal" view with damaged but healed septa and counter side of the calice; K, "ventral" view unhealed conical traces; L, calicinal view; M, lateral view; N, O, specimen 19/24 (24), unknown locality in Čelechovice, juvenile specimen; N, "dorsal" view; O, "ventral" view; P-S, specimen 20/28 (28SL), SL, juvenile specimen; P, "dorsal" view; Q, "ventral" view; R, lateral view with straight "ventral" side; S, calicinal view; T, specimen 16/20 (20), unknown locality in Čelechovice, young adult specimen, "dorsal" view; U, specimen 27, unknown locality in Čelechovice, juvenile(?) operculum; V, W, specimen 26, unknown locality in Čelechovice, juvenile(?) operculum; V, inner side; W, outer side; X, specimen 25, unknown locality in Čelechovice, adult operculum, view from the hinge line; Y, specimen 6/2 (2RL), RL, senile specimen with closing calice, "ventral" view. Abbreviations: RL, Růžičkův lom Quarry; SL, Státní lom Quarry. Photos by Mrs. Hana Vršt'alová (Central Geological Survey, Prague). Scale bars: 10 mm.
FIGURE 1 in A checklist of species of Podophryidae (Ciliophora: Suctoria) as Epibionts of Crustaceans
FIGURE 1. Geographic distribution of species of family Podophryidae as epibionts of crustaceans.
Fig. 8 in Epibionts on upper Eifelian crinoid columnals from the Holy Cross Mountains, Poland
Fig. 8. Frequency distribution of epibionts on the smooth− and rough−facet crinoid hosts from the Skały Beds (upper part of complex XVII, Tortodus kockelianus Zone), Skały village, Holy Cross Mountains; frequency of potential rough−facet substrata (66.2%) marked by dashed line; e, number of epibionts; h, number of hosts.
Fig. 6 in Epibionts on upper Eifelian crinoid columnals from the Holy Cross Mountains, Poland
Fig. 6. Frequency distribution of crinoid stem−based taxa from the Skały Beds (upper part of complex XVII, Tortodus kockelianus Zone), Skały village, Holy Cross Mountains. Infestation rates (%) in brackets.
Transcriptome of epibiont Saccharibacteria TM7x during establishment of symbiosis on host Schaalia odontolyticus strain XH001
GEO Series GSE196744. Schaalia odontolytica; Candidatus Nanosynbacter lyticus. 30 samples. Type: Expression profiling by MPSS.
FIGURE 4 in Description of Two New Species of the Genus Vorticella (Ciliophora: Peritrichia) Epibionts on Pomacea canaliculata (Mollusca: Ampullariidae: Gastropoda) in Southern Brazil
FIGURE 4. Uorticella ampullaria sp. n. live and protargol-stained specimens: A. Live zooid showing the position of the two contractile vacuoles (CV) and the spamoneme (SM) inside the basal stalk (Bar 10 µm). B. Live zooid showing the position of the aboral contractile vacuole (arrow) (Bar 10 µm). C. Live zooid showing the position of the oral contractile vacuole and Cshaped macronucleus (MAC) (Bar 10 µm). D. Protargol-stained zooid showing the oral polikinetids in the infundibular region (P1, P2, P3) (Bar 5 µm). E. Protargol-stained zooid showing details of the oral polikinetids 1 and 2 (Bar 5 µm). F. Protargolstained zooid showing the micro (MIC) and macronucleus (MAC) (Bar 5 µm).
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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.