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Рис. 1. Pararctia lapponica lemniscata (Stichel, 1911): 1–4 — имаго (1, 2 — самцы; 3, 4 — самки). Δанные сбора имаго: 1 — Буреинский заповеΑник, верховье р. Правая Бурея, 4 км В корΑона «Новый МеΑвежий», 1400 м наΑ уровнем моря, 24.06.2014; 2 — Буреинский заповеΑник, верховье р. Правая Бурея, окрестности корΑона «Новый МеΑвежий», 900 м наΑ уровнем моря; 4.07.2016; 3, 4 — там же, 29–30.06.2018 Fig. 1. Pararctia lapponica lemniscata (Stichel, 1911): 1 – 4 – adults (1, 2 – males; 3, 4 – females). Data labels for imago: 1 – Bureinsky Nature Reserve, upper reach of Pravaya Bureya River, 4 km E Novyi Medvezhii cordon, 1400 m above sea level, 24.06.2014; 2 – Bureinsky Nature Reserve, upper reach of Pravaya Bureya River, near Novyi Medvezhii cordon, 900 m above sea level, 4.07.2016; 3, 4 – at the same place, 29–30.06.2018 in On The Biology Of (Stichel, 1911) (Lepidoptera, Erebidae, Arctiinae) In Northern Amur Region
Рис. 1. Pararctia lapponica lemniscata (Stichel, 1911): 1–4 — имаго (1, 2 — самцы; 3, 4 — самки). Δанные сбора имаго: 1 — Буреинский заповеΑник, верховье р. Правая Бурея, 4 км В корΑона «Новый МеΑвежий», 1400 м наΑ уровнем моря, 24.06.2014; 2 — Буреинский заповеΑник, верховье р. Правая Бурея, окрестности корΑона «Новый МеΑвежий», 900 м наΑ уровнем моря; 4.07.2016; 3, 4 — там же, 29–30.06.2018 Fig. 1. Pararctia lapponica lemniscata (Stichel, 1911): 1 – 4 – adults (1, 2 – males; 3, 4 – females). Data labels for imago: 1 – Bureinsky Nature Reserve, upper reach of Pravaya Bureya River, 4 km E Novyi Medvezhii cordon, 1400 m above sea level, 24.06.2014; 2 – Bureinsky Nature Reserve, upper reach of Pravaya Bureya River, near Novyi Medvezhii cordon, 900 m above sea level, 4.07.2016; 3, 4 – at the same place, 29–30.06.2018
FIGURE 4 in Cranial anatomy of Indohyus indirae (Raoellidae), an artiodactyl from the Eocene of India, and its implications for raoellid biology
FIGURE 4. Annotated CT slices highlighting the cranial anatomy of Indohyus indirae (RR207), featuring detailed transverse sections of the skull. A, slice 403. B, slice 817. C, slice 1043. D, slice 1180.
FIGURE 5 in Cranial anatomy of Indohyus indirae (Raoellidae), an artiodactyl from the Eocene of India, and its implications for raoellid biology
FIGURE 5. Annotated CT slices highlighting the cranial anatomy of Indohyus indirae (RR207), featuring detailed transverse sections of the skull. A, slice 1303. B, slice 2142. C, slice 2230. D, slice 2302.
FIGURE 6. 3D in Cranial anatomy of Indohyus indirae (Raoellidae), an artiodactyl from the Eocene of India, and its implications for raoellid biology
FIGURE 6. 3D rendering of the basicranium of Indohyus indirae in oblique (A) and vental (B) views. In A, the foramina opening into the endocast are highlighted in pink. In B, the bullae are depicted in orange.
FIGURE 3 in Cranial anatomy of Indohyus indirae (Raoellidae), an artiodactyl from the Eocene of India, and its implications for raoellid biology
FIGURE 3. Cranial anatomy of Indohyus indirae. A, rostrum, dorsal view (RR 602). B, rostrum, ventral view (RR 602). C, Basicranium (RR 210). D, Juvenile skull with unassociated lower jaw (RR 262).
FIGURE 2 in Cranial anatomy of Indohyus indirae (Raoellidae), an artiodactyl from the Eocene of India, and its implications for raoellid biology
FIGURE 2. Cranial anatomy of Indohyus indirae. A, skull, left lateral view (RR 208). B, skull, right lateral view (RR 208). C, Oblique, ventral view (RR 209). For abbreviations see text.
FIGURE 1 in Cranial anatomy of Indohyus indirae (Raoellidae), an artiodactyl from the Eocene of India, and its implications for raoellid biology
FIGURE 1. Cranial anatomy of Indohyus indirae. A, skull, dorsal view (RR 601). B, skull, ventral view (RR 601). C, skull, dorsal view (RR 207). D, skull, ventral view (RR 207).
Fig. 8 in Reproductive biology of pacu Piaractus mesopotamicus (Holmberg, 1887) (Teleostei: Characidae) in the Cuiabá River Basin, Mato Grosso, Brazil
Fig. 8. Relationship between fecundity (number of oocytes) and the TL, TM and GM of P. mesopotamicus in the headwaters (1a, 2a and 3a) and flood area (1b, 2b and 3b), between August 2006 and July 2007.
Fig. 7 in Reproductive biology of pacu Piaractus mesopotamicus (Holmberg, 1887) (Teleostei: Characidae) in the Cuiabá River Basin, Mato Grosso, Brazil
Fig. 7. Relative frequency distribution of the ovarian follicle diameter (µm) of P. mesopotamicus in the headwaters (a) and flood area (b) between August 2006 and July 2007.
Fig. 2 in Reproductive biology of pacu Piaractus mesopotamicus (Holmberg, 1887) (Teleostei: Characidae) in the Cuiabá River Basin, Mato Grosso, Brazil
Fig. 2. Absolute frequency of young () and adult () individuals in the headwaters - Rosário Oeste, MT (a), and in the flood area - Poconé, MT (b), and frequency distribution by class of TL (cm) of P. mesopotamicus females () and males () in the headwaters (c) and the flood area (d) between August 2006 and July 2007.
Fig. 4 in Reproductive biology of pacu Piaractus mesopotamicus (Holmberg, 1887) (Teleostei: Characidae) in the Cuiabá River Basin, Mato Grosso, Brazil
Fig. 4. Monthly variation of the gonadosomatic index (GSI) of P. mesopotamicus females and males in the headwaters (a,b) and the flood area (c,d), respectively, between August 2006 and July 2007.
Fig. 6 in Reproductive biology of pacu Piaractus mesopotamicus (Holmberg, 1887) (Teleostei: Characidae) in the Cuiabá River Basin, Mato Grosso, Brazil
Fig. 6. Variation in the stomachsomatic index (IS) of P. mesopotamicus females and males (a, b) and hepatosomatic index (IH) of females and males(c, d), respectively, according to the stages of gonadal maturation between August 2006 and July 2007.
Fig. 1 in Reproductive biology of pacu Piaractus mesopotamicus (Holmberg, 1887) (Teleostei: Characidae) in the Cuiabá River Basin, Mato Grosso, Brazil
Fig. 1. Geographic location of the sites sampled in the Cuiabá River basin, Mato Grosso State, Brazil.
Fig. 3 in Reproductive biology of pacu Piaractus mesopotamicus (Holmberg, 1887) (Teleostei: Characidae) in the Cuiabá River Basin, Mato Grosso, Brazil
Fig. 3. Relative frequency of P. mesopotamicus females in the headwaters - Rosário Oeste, MT (a) and in the flood area - Poconé, MT (b) according to the stages of gonadal maturation (MG; MA; SP and RE) between August 2006 and July 2007.
Figure 6 in Reproductive biology of Elops lacerta (Elopiformes: Elopidae) in the Gulf of Guinea, Côte d'Ivoire, West Africa
Figure 6. – Size at first sexual maturity (FL50) of males and females Elops lacerta caught from January 2019 to December 2020.
Figure 1 in Enigmatic coloration pattern in greater weever Trachinus draco Linnaeus, 1758 and its biological significance
Figure 1. – Right and left side of Trachinus draco individuals showing dark patch (A-E) or patch absence (F, G). A: Male 297 mm TL; B: Male 264 mm TL; C: Male 305 mm TL; D: Male 268 mm TL; E: Male 306 mm TL; F: Female 323 mm TL; G: Female 317 mm TL.
Figure 2 in Enigmatic coloration pattern in greater weever Trachinus draco Linnaeus, 1758 and its biological significance
Figure 2. – Gonad transverse sections of Trachinus draco. A: Detail of functional testicular tissue of male 268 mm TL (St = spermatid; Sz = spermatozoa); B: Detail of functional ovarian tissue female 317 mm TL, actively spawning female (PG = primary growth oocyte; CA = cortical alveoli; Vtg2 = secondary vitellogenic oocyte; Vtg3 = tertiary vitellogenic oocyte; GVM = germinal vesicle migration). Based on the classification of Brown-Peterson et al., 2011).
FIGURE 1 in Reproductive biology of Parona signata (Actinopterygii: Carangidae), a valuable economic resource, in the coastal area of Mar del Plata, Buenos Aires, Argentina
FIGURE 1 | Monthly variation of the gonadosomatic index (GSI) of females (black continuous line), standard deviation (dashed lines) and temperature (in Celsius degrees) (gray continuous line) based on an annual cycle.
FIGURE 3 in Reproductive biology of Parona signata (Actinopterygii: Carangidae), a valuable economic resource, in the coastal area of Mar del Plata, Buenos Aires, Argentina
FIGURE 3 | Photomicrographs of Parona signata. A: primary growth oocytes (P); B: cortical alveoli oocytes (CA); C: yolked oocytes (YO) and a post-ovulatory follicle (large arrow); D: details of a yolked oocyte (r: radiate zone; g: granulosa cells; t: theca cells); E: hydrated oocyte (arrow); F: details of a post-ovulatory follicle (arrow); G: primary growth oocytes in an adult ovary (notice the thick wall of the ovary – OW); H: atresic follicle (arrow).
FIGURE 2 in Reproductive biology of Parona signata (Actinopterygii: Carangidae), a valuable economic resource, in the coastal area of Mar del Plata, Buenos Aires, Argentina
FIGURE 2 | Monthly relative frequency of the different gonadal development stages observed in females of Parona signata on the annual cycle.
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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.