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1,579 results for “Baltics”
Fig. 1 in Heartworm and seal louse: Trends in prevalence, characterisation of impact and transmission pathways in a unique parasite assembly on seals in the North and Baltic Sea
Fig. 1. Levels of infection with E. horridus in P. vitulina. A: Mild E. horridus infection of a harbour seal yearling, asterisk pointing at E. horridus B: Close up of E. horridus in the head area of a harbour seal C: Severe E. horridus infection of a harbour seal D: Close up of severe E. horridus infection. Scale bars: A-D 1 cm.
Fig. 5 in Prevalence and molecular characterisation of Acanthocephala in pinnipedia of the North and Baltic Seas
Fig. 5. Maximum likelihood tree based on COI sequences using the Jones-TaylorThornton (JTT) model. The log likelihood is −2479.70. The percentage of trees based on 1000 bootstrap replicates in which the associated taxa clustered together is shown next to the branches. GenBank accession numbers of analysed amino acid sequences are listed in Table 2.
Fig. 1 in Prevalence and molecular characterisation of Acanthocephala in pinnipedia of the North and Baltic Seas
Fig. 1. Prevalence of acanthocephalan infections in harbour and grey seals from the German North and Baltic Seas between 1996 and 2012. Notations indicate the Acanthocephala positive and total number of examined Phoca vitulina (Pv) and Halichoerus grypus (Hg). Connecting lines indicate statistically significant differences between annual prevalences after Holm–Bonferroni correction (P ≤ 0.001).
Fig. 3 in Prevalence and molecular characterisation of Acanthocephala in pinnipedia of the North and Baltic Seas
Fig. 3. Phylogenetic analysis of the ribosomal ITS1-5.8S-ITS2-complex using the Maximum Likelihood method based on the Kimura 2-parameter model. The log likelihood is −16,028.00. The percentage of trees based on 1000 bootstrap replicates in which the associated taxa clustered together is shown next to the branches. GenBank accession numbers of analysed nucleotide sequences are listed in Table 1.
Figure 73 in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figure 73. Dorsal view of holotype female of Ctenoplectrella eocenica (Michez & Nel), new combination, in Eocene Oise amber (PA 3190 1/17). Photograph courtesy of Muséum National d'Histoire Naturelle (accepit a A. Nel and O. Béthoux).
Figures 74–75 in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figures 74–75. Oblique facial view of holotype female of Ctenoplectrella eocenica (Michez & Nel), new combination (PA 3190 1/17). 74. Head in right oblique profile. 75. Magnified view of 74, with arrow noting juncture of subantennal sulcus at outer margin of antennal torulus. Photographs courtesy V. Ngô-Muller.
Figures 71–72 in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figures 71–72. Holotype female of Ctenoplectrella eocenica (Michez & Nel), new combination, in Eocene Oise amber (PA 3190 1/17). 71. Lateral view. 72. Ventral view. Photographs courtesy of Muséum National d'Histoire Naturelle (accepit a A. Nel and O. Béthoux).
Figures 63–70 in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figures 63–70. PPC-SRµCT scan of mandibles of worker of Amelikertotes clypeata (Engel), new combination; lower left worker from figure 29. Right mandible rotated axially in left column, left mandible rotated axially in right column. 63. Outer (slightly ventral oblique) view of right mandible. 64. Outer (slightly ventral oblique) view of left mandible. 65. Dorsal view of right mandible. 66. Dorsal view of left mandible. 67. Inner view of right mandible. 68. Inner view of left mandible. 69. Ventral view of right mandible. 70. Ventral view of left mandible.
Figure 29 in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figure 29. Two workers of Amelikertotes clypeata (Engel), new combination, in Eocene Baltic amber (SEMC B-147).
Figure 22. X in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figure 22. X-ray µCT scan of holotype worker of Haidomelikertes uraeus, new genus and species (SMF Be 14263a), oblique frontolateral view. Note that scan resolution was insufficient to resolve most setae.
Figure 21 in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figure 21. Holotype worker of Haidomelikertes uraeus, new genus and species, in Eocene (Bartonian) Baltic amber (SMF Be 14263a).
Figures 46–50 in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figures 46–50. PPC-SRµCT scan of hind leg structures of worker of Amelikertotes clypeata (Engel), new combination; upper right worker from figure 29. 46. Right hind leg, outer (prolateral) view. 47. Right hind leg, inner (retrolateral) view. 48. Left metatibia, view along posterior edge. 49. Left hind leg, inner (retrolateral) view. 50. Left hind leg, outer (prolateral) view, note debris packed into surface of corbicula. Note that scan resolution was insufficient to resolve most fine setae.
Figures 17–18. X in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figures 17–18. X-ray µCT scans of hindleg of Aethemelikertes emunctorii, new genus and species (SMF Be 14262a). 17. Outer (prolateral) view. 18. Inner (retrolateral) view. Note that scan resolution was insufficient to resolve most fine setae and setal details.
Figures 13–16. X in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figures 13–16. X-ray µCT scans of heads of holotype workers of Succinapis micheneri Engel (AMNH B-JH103) and Aethemelikertes emunctorii, new genus and species (SMF (Be 14262a), in Baltic amber; yellow highlights disc and modification of clypeus, orange highlights labrum. 13. Facial view of S. micheneri. 14. Facial view of A. emunctorii. 15. Oblique profile of S. micheneri. 16. Oblique profile of A. emunctorii. Note that scan resolution was insufficient to resolve most setae.
Figures 51–56 in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figures 51–56. PPC-SRµCT scan of worker of Amelikertotes clypeata (Engel), new combination; lower left worker from figure 29. 51. Left lateral view. 52. Dorsal view. 53. Outer (prolateral) view of hind leg. 54. Inner (retrolateral) view of hind leg. 55. Ventral view. 56. Right lateral view. Scale bar at right for 53 and 54, scale bar in center for 51, 52, 55, and 56. Note that scan resolution was insufficient to resolve most setae of the body and legs (e.g., posterior fringe of fine setae on metatibia is not resolved).
Figures 19–20 in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figures 19–20. Inner (retrolateral) surfaces of metatibiae of Haidomelikertes, new genus, and Aethemelikertes, new genus. 19. Haidomelikertes uraeus, new species, holotype worker (SMF Be 14263a). 20. Aethemelikertes emunctorii, new species, holotype worker (SMF Be 14262a).
Figure 11. X in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figure 11. X-ray µCT scan of holotype worker of Aethemelikertes emunctorii, new genus and species (SMF Be 14262a), lateral view. Note that scan resolution was insufficient to resolve most setae.
Figures 6–8 in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figures 6–8. Worker of Succinapis micheneri Engel (SEMC B-017). 6. Oblique facial view. 7. Outer (prolateral) view of metatibia and metabasitarsus. 8. Detail of fringe setae of metatibial posterior/upper margin; white arrow indicates a deceptive internal microfracture of resin trail with branched fractal patern (such fracture planes and trails are a common taphonomic structure among or even running alongside many fine setae in amber inclusions, and can give such setae an artificially plumose appearance; accordingly, care must be taken before concluding whether or not amber-included setae are branched); black arrow highlights one of many truly plumose setae, separate from the internal microfracture planes.
Figures 3–5 in New genera of melikertine bees with facial modifications in Baltic amber (Hymenoptera: Apidae)
Figures 3–5. Worker of Succinapis micheneri Engel (SEMC B-018). 3. Facial view. 4. Dorsal view of head and mesoscutum. 5. Right lateral view.
Fig. 8 in Morphological observations on three Baltic species of Corynosoma Lühe, 1905 (Acanthocephala, Polymorphidae)
Fig. 8. LM micrographs of genital spines of a ♀ Corynosoma strumosum (HWML 39481–1158-2) from a grey seal, Halichoerus grypus, from the archipelago of Åland (Finland). a. Posterior of trunk. b. Enlargement of rectangular region in subfigure a.
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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.