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4,034 results for “Species associations”
Figure 3 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 3. Haplotype network from COI data for Bonellia sp. aff. minor from Kushimoto and Okinawa, Japan. Each connection represents one inferred base-pair change.
Figure 12 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 12. Basterotia bonelliphila (paratype NSMT-Mo 79471). A, B, External view of right and left valves. C, D, Internal view of right and left valves. E, F, Hinge structure of right and left valves. G, H, Prodissoconch II of right and left valves. Abbreviations: ac, anterior cardinal tooth; exl, external ligament; p2, prodissoconch II. Scale bars = 1 mm (A–D), 100 µm (E–H).
Figure 6 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 6. Micro-CT images of two burrows (A and B) of Bonellia sp. aff. minor. Burrow openings are indicated by white arrowheads. The blue and yellow portions indicate sediments occupied in burrows and the burrow cavity, respectively. Scale bars = 5 mm.
Figure 18 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 18. Leucothoe bonelliae holotype (SMBL-V0661): (A) left pereopod 3, lateral; (B) left pereopod 4, lateral; (C) left pereopod 5, lateral; (D) left pereopod 6, lateral; (E) left pereopod 7, lateral. Scale bar = 100 µm.
Figure 14 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 14. Leucothoe bonelliae holotype (SMBL-V0661): (A) habitus, lateral; (B) pereonites 5–7, coxal plates 5–7 and pleonites 1–3, lateral; (C) telson, dorsal; (D) apical part of telson, dorsal; (E) left antenna 1, lateral; (F) left antenna 2, lateral. Scale bars = 100 µm.
Figure 2 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 2. Habitat of the study site. The proboscises of Bonellia sp. aff. minor (white arrows) extend from the burrow mainly during the night (A–D, different individuals).
Figure 7 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 7. Haplotype network from COI data for Basterotia bonelliphila from Kushimoto and Okinawa, Japan. Each connection represents one inferred base-pair change.
Figure 9 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 9. Bayesian phylogenetic tree of Leucothoe amphipods, including Leucothoe bonelliae, based on the 18S rRNA gene. Numbers above branches indicate Bayesian posterior probabilities followed by maximum likelihood bootstrap support values.
Figure 11 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 11. Basterotia bonelliphila (holotype NSMT-Mo 79470). A, B, Dorsal and ventral views. Anterior is right. C, D, External view of right and left valves. E, F, Internal view of right and left valves. The tip of the foot was removed for DNA analysis. G, H, Hinge structure of left and right valves. Abbreviations: aa, anterior adductor muscle; ac, anterior cardinal tooth; apa, anterior-venral pedal aperture; d, demibranches; dg, digestive gland; exl, external ligament; f, foot; lp, labial palps; pa, posterior adductor muscle; p2, prodissoconch II; s, exhalant and inhalant siphons. Scale bars = 1 mm (A–F), 100 µm (G, H).
Figure 10 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 10. Bonellia sp. aff. minor. A, B, Whole body of living (A) and ethanol-fixed (B) specimens, ventral view. C, Anterior part of the trunk, ventral view. D, Base of the ventral chaetae connected by interbasal muscles. E, A gonoduct containing numerous eggs. F, Anal vesicle sacs. G, Dwarf male (1.5 mm in length). Abbreviations: ac, anterior chaetae; av, anal vesicle sac; gd, gonoduct; gm, gonostomal lip; gp, genital pore; pr, proboscis; tr, trunk. Scale bars = 5 mm (A, B), 1 mm (C–G). Specimen ID (see Supporting Information, Table S2): BM16 (B, C, E, F), BM09 (D, G).
Figure 4 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 4. Macrosymbiotic fauna associated with Bonellia sp. aff. minor. Macrosymbionts with hosts in the burrows (A, C, E). White arrowheads indicate macrosymbionts on the host's burrow wall (A, E) or trunk (C). Close-up view of the living specimens of each macrosymbiont (B, D, F). A, B, Basterotia bonelliphila (holotype: NSMT-Mo 79470). C, D, Leucothoe bonelliae (SMBL-V0666). E, F, Oxydromus fauveli. Scale bar = 1 mm (B, D, F).
Figure 16 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 16. Leucothoe bonelliae: (A) holotype (SMBL-V0661), (B) paratype (SMBL-V0662), (C) paratype (SMBL-V0663): (A–C) left gnathopod 1, lateral. Scale bar = 100 µm.
Figure 17 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 17. Leucothoe bonelliae: (A, B) holotype (SMBL-V0661), (C, D) paratype SMBL-V0662: (A) left gnathopod 2, medial; (B) left gnathopod 2, lateral, omitted setae; (C) left gnathopod 2, medial; (D) left gnathopod, 2, lateral, omitted setae. Scale bar = 100 µm.
Figure 5 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 5. Bonellia sp. aff. minor and its burrow associates (Basterotia bonelliphila, Leucothoe bonelliae, and Oxydromus fauveli) in dead coral rock. The inside of the burrows is partly occupied by sandy sediments collected by Bo. sp. aff. minor.
Figure 8 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 8. Bayesian phylogenetic tree of Basterotia bivalves, including Basterotia bonelliphila, based on the combined dataset of four genes (18S + 28S + COI + H3). Numbers above branches indicate Bayesian posterior probabilities followed by maximum likelihood bootstrap support values.
Figure 19 in Living together in dead coral rocks: macrosymbiotic communities associated with Bonellia echiuran worms (Annelida: Thalassematidae: Bonelliinae), involving new commensal bivalve and amphipod species
Figure 19. Leucothoe bonelliae holotype (SMBL-V0661): (A) left pleopod 1, dorsal, omitted plumose setae; (B) left pleopod 2, dorsal, omitted plumose setae; (C) left pleopod 3, dorsal, omitted plumose setae; (D) left uropod 1, lateral; (E) left uropod 2, lateral; (F) left uropod 3, lateral. Scale = 100 µm.
FIGURE 10 in Synopsis of Miridae (Hemiptera: Heteroptera) in Atlantic Forest Dominion, Espírito Santo State, Brazil: keys, diagnoses, new species, plant associations, and geographic distribution. Part I: Bryocorinae, Cylapinae and Deraeocorinae.
FIGURE 10. Male genitalia of the tribe Dicyphini, A—Campyloneuropsis infumatus, A1—Endosoma; A2—Left paramere (Modified from Carvalho 1947, with permission); B—Engytatus itatiaianus, B1—Endosoma, B2—Left paramere, B3—Right paramere; B4—Pygophore front view; B5—Pygophore (Modified from Carvalho 1980A, with permission); C—Engytatus varians male genitalia, C1—Pygophore view from the right side, C2—pygophore view from left side, C3—Left paramere (Modified from Carvalho & Becker 1958, with permission); D—Macrolophus praeclarus D1—Endosoma, D2—Left paramere, D3—Right paramere (Modified from Carvalho 1945A, with permission); E—Tupiocoris cucurbitaceus (Carvalho's private notes include illustrations of male genitalia), E1-Vesica, E2—Right paramere, E3—Left paramere, E4—Pygophore.
FIGURE 8. Subfamily Cylapinae, A in Synopsis of Miridae (Hemiptera: Heteroptera) in Atlantic Forest Dominion, Espírito Santo State, Brazil: keys, diagnoses, new species, plant associations, and geographic distribution. Part I: Bryocorinae, Cylapinae and Deraeocorinae.
FIGURE 8. Subfamily Cylapinae, A—Cylapus striatus; B, C—Valdasoides marisae n. sp.; D, E—Valdasus carpinteroi n. sp.; F—Fulvius bisbistillatus, G—Fulvius minimus.
FIGURE 7. Tribe Monaloniini, A in Synopsis of Miridae (Hemiptera: Heteroptera) in Atlantic Forest Dominion, Espírito Santo State, Brazil: keys, diagnoses, new species, plant associations, and geographic distribution. Part I: Bryocorinae, Cylapinae and Deraeocorinae.
FIGURE 7. Tribe Monaloniini, A—Monalonion annulipes, B—Male Genitalia, B1—Left paramere, B2—Right paramere, B3—Endosoma (modified from Costa et al. 2008).
FIGURE 12 in Synopsis of Miridae (Hemiptera: Heteroptera) in Atlantic Forest Dominion, Espírito Santo State, Brazil: keys, diagnoses, new species, plant associations, and geographic distribution. Part I: Bryocorinae, Cylapinae and Deraeocorinae.
FIGURE 12. Male genitalia of the subfamily Cylapinae, A—Cylapus striatus; A1—Left paramere, A2—Right paramere A3— Endosoma (Modified from Wolsky 2017, with permission); B—Valdasus carpinteroi n. sp., B1—Left paramere, B2—Right paramere; C—Fulvius bisbistillatus, C1—Vesica, C2—Endosoma, C3—Right paramere, C4—Theca, C5—Left paramere, sideview, C6—Left paramere dorsal view (Modified from Carvalho & Costa 1994, with permission); D—Fulvius minimus, D1—Pygophore, D2, D3—Right paramere, D4—Endosoma, D5, D6—Left paramere (Modified from Carvalho 1988B, with permission).
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.