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Fig. 2 in Garypus sanasai Lin, Huang & Chang 2022, sp. nov.
Fig. 2. Reproductive cells of Clausilia bidentata. 1° spermatocytes (sc1, a, d), 2° spermatocytes (sc2), 1° spermatids (st1, a, b), 2° spermatids (st2, c), mature sperm cells (sp, e), previtellogenic oocytes (po, c), early vitellogenic oocytes (ev, d), vitellogenic oocyte (vo, d), mature oocyte (mo, c).
Fig. 6 in Garypus sanasai Lin, Huang & Chang 2022, sp. nov.
Fig. 6. Prevalence (value> 1.5) of all stages of Clausilia bidentata reproductive cells for different collection months. Mean temperatures and temperature change tendencies in the days before the snails were collected are shown at the top of the picture. ↓ - decreasing tendency; ↑ - increasing tendency; ↕ - no clear tendency.
Fig. 2 in Garypus sanasai Lin, Huang & Chang 2022, sp. nov.
Fig. 2. Trichomycterus mutabilicolor Costa sp. nov., UFRJ 12650, holotype, 82.6 mm SL. (a), left lateral view; (b), dorsal view; (c), ventral view.
Fig. 1 in Garypus sanasai Lin, Huang & Chang 2022, sp. nov.
Fig. 1. Phylogenetic trees used to delimit species, using sequences of the mitochondrial gene cytochrome b, 1088 bp, for 10 sequenced individuals belonging to eight populations of the Trichomycterus nigroauratus group and three outgroups. (a) tree generated by Maximum Likelihood (numbers above and below branches are bootstrap and fast bootstrap values, respectively; bars are species delimitation results relative to: bPTP, Bayesian implementation of Poisson Tree Process, using: 1, Maximum likelihood, and 2, Bayesian solutions; GMYC, Generalized Mixed Yule-Coalescent, using: 1, single, and 2, multiple threshold options); (b) tree generated by Bayesian inference (numbers above nodes are posterior probability values above 0.70; asterisks represent maximum values). Taxon names are preceded by UFRJ catalogue numbers.
Fig. 5 in Garypus sanasai Lin, Huang & Chang 2022, sp. nov.
Fig. 5. Geographical distribution of the Trichomycterus nigroauratus group. Dot, T. maculosus; lozenges, T. nigroauratus; pentagons, T. quintus; stars, T. mutabilicolor Costa sp. nov. Red symbols indicate type localities. Arrows indicate the direction of the main river flow.
Fig. 5 in Garypus sanasai Lin, Huang & Chang 2022, sp. nov.
Fig. 5. Dynamics of when mature Clausilia bidentata reproductive cells appear. Data are means. See table 3 for values and SD for other stages of cells.
Fig. 1 in Garypus sanasai Lin, Huang & Chang 2022, sp. nov.
Fig. 1. Reproductive cells of R. filograna. 1°spermatocytes (sc1, a–d), 2° spermatocytes (sc2, a, b), 1°spermatids (st1, a), 2° spermatids (st2, b), mature sperm cells (sp, e), previtellogenic oocytes (po, b), early vitellogenic oocytes (ev, a, c), vitellogenic oocyte (vo, d), mature oocyte (mo, a, f).
Fig. 1. Right antenna. A in Garypus sanasai Lin, Huang & Chang 2022, sp. nov.
Fig. 1. Right antenna. A, Lysiosquilla maculata (Fabricius, 1793) (formerly Lysiosquillina), male, TL 162 mm, Queensland, Australia, AM P14919; B, Lysiosquilla lisa (Ahyong & Randall, 2001) comb. nov. (formerly Lysiosquillina), male holotype, TL 295 mm, Bali, Indonesia, MZB Cru1444; C, Lysiosquilla suthersi Ahyong, 2001, male holotype, TL 150 mm, Queensland, Australia, QM W24225; D, Lysiosquilla scabricauda (Lamarck, 1818), male TL 210 mm, Key West Florida, AM P45739. Scale: A = 7.0 mm, B = 3.5 mm, C = 12.0 mm, D = 5.0 mm. Abbreviations: mesial papilla (mp), anteromesial lobe (aml).
Fig. 2 in Garypus sanasai Lin, Huang & Chang 2022, sp. nov.
Fig. 2. Phylogeny of Lysiosquillidae. Single most parsimonious cladogram, length 78, consistency index 0.6154, retention index 0.8077. Numbers on nodes indicate jackknife support values (above) and node number (below) with unambiguous character state changes listed in table 1.
Fig. 1 in Fig. 6 in Periclimenaeus karantina Park & De Grave 2021, sp. nov.
Fig. 1. Leftover of a Mangifera indica fruit by the focal group of P. femoralis; where they mostly consumed only skin and pulp and left the seed out.
Fig. 8 in Elisesione imajimai Jimi & Eibye-Jacobsen & Salazar-Vallejo 2018, sp. nov.
Fig. 8. Kainonereis polaris (Hartman, 1967) comb. n. Paratype atoke (USNM 55515). (A) anterior end, dorsal view; (B) close-up of prostomium; (C) anterior end, pharynx, ventral view; (D) tube; (E) notopodial homogomph spiniger, parapodium 13 (insert: closeup of teeth); (F) neuropodial sub-acicular heterogomph falciger, parapodium 13; (G) neuropodial sub-acicular heterogomph spiniger, parapodium 1; (H) parapodium 1, anterior view; (I) parapodium 3, anterior view; J parapodium 13, anterior view; K parapodium 37, anterior view. Scale bars: A-D = 0.5 mm; E = 20 µm; F, G = 10 µm; H-K = 0.2 mm.
Fig. 7 in Elisesione imajimai Jimi & Eibye-Jacobsen & Salazar-Vallejo 2018, sp. nov.
Fig. 7. Kainonereis polaris (Hartman, 1967) comb. n. Holotype female (USNM 55514). (A) anterior end, dorsal view (arrows point lappets); (B) posterior end, dorsal view; (C) anterior end, pharynx, ventral view; (D) parapodium 7, anterior view; (E) parapodium 13, anterior view; (F) parapodium 19, anterior view; (G) parapodium 30, anterior view; (H) neuropodial supra-acicular heterogomph falciger, parapodium 13; (I) neuropodial sub-acicular heterogomph falciger, parapodium 13. Scale bars: A = 1 mm; B, C = 0.5 mm; D-G = 0.2 mm; H, I = 10 µm.
Fig. 4 in Elisesione imajimai Jimi & Eibye-Jacobsen & Salazar-Vallejo 2018, sp. nov.
Fig. 4. Kainonereis chamberlini sp. n., A-C, F-H, J, K, holotype (USNM 1422199); D, E, I, paratype (UMML 22.1126). (A) whole specimen, dorsal view; (B) anterior end, dorsal view; (C) same, lateral view; (D) whole specimen, dorsal view; (E) same, lateral view; (F) neuropodial sub-acicular heterogomph spiniger, chaetiger 6; (G) neuropodial sub-acicular heterogomph falciger, parapodium 6; (H) parapodium 6, anterior view; (I) parapodium 11, anterior view; (J) parapodium 25, anterior view; (K) parapodium 40, anterior view. Scale bars: A, D = 1 mm; B, C, E = 0.5 mm; F, G = 10 µm; H-K = 0.1 mm.
Fig. 5 in Elisesione imajimai Jimi & Eibye-Jacobsen & Salazar-Vallejo 2018, sp. nov.
Fig. 5. Kainonereis elytrocirra (Wu and Sun, 1979) comb. n. Paratype male (MBMCAS A-44). (A) anterior end, dorsal view; (B) whole specimen, dorsal view; (C) notopodial homogomph falciger, parapodium 4; (D) neuropodial supra-acicular heterogomph falciger, parapodium 4; (E) neuropodial sub-acicular heterogomph falciger, parapodium 7; (F) neuropodial supra-acicular heterogomph spiniger, parapodium 4; (G) parapodium 4, anterior view; (H) parapodium 6, anterior view; (I) parapodium 7, anterior view; (J) parapodium 19, anterior view; (K) parapodium 44, anterior view. Scale bars: A, B = 1 mm; C-F = 10 µm; G-K = 0.1 mm.
Fig. 2 in Elisesione imajimai Jimi & Eibye-Jacobsen & Salazar-Vallejo 2018, sp. nov.
Fig. 2. Drawings from parapodia of Kainonereis species. K. alata A, B (USNM 19386); K. chamberlini sp. n. C (UMML 22.1126), D (USNM 1422199); K. elytrocirra comb. n. E, F (MBMCAS A-44); K. peltifera sp. n. G, H (LACM-AHF 7400p); K. polaris comb. n. I, J (USNM 55514). (A) parapodium 11, anterior view; (B) parapodium 40, anterior view; (C) parapodium 11, anterior view; (D) parapodium 25, anterior view; (E) parapodium 12, anterior view; (F) parapodium 20, anterior view; (G) parapodium10, anterior view; (H) parapodium 22, anterior view; (I) parapodium 13, posterior view; (J) parapodium 30, posterior view. Scale bars: A, B = 50 µm; C-H = 0.1 mm; I-J = 0.2 mm. E redrawn from Wu and Sun (1979:109). All chaetae omitted.
Fig. 3. Kainonereis alata Chamberlin, 1919 in Elisesione imajimai Jimi & Eibye-Jacobsen & Salazar-Vallejo 2018, sp. nov.
Fig. 3. Kainonereis alata Chamberlin, 1919. Paratypes males (USNM 19386). (A) whole specimen, dorsal view; (B) anterior end, dorsal view; (C) anterior end, ventral view; (D) close-up of prostomium, dorsal view (arrow points beginning of ceratostyles); (E parapodium 3, anterior view; (F parapodium 5, anterior view; (G) parapodium 11, posterior view; (H) close-up of noto- and neuropodium, chaetiger 3 (dorsal and ventral cirri omitted); (I parapodium 40, posterior view; (J) notopodial homogomph falciger, parapodium 2; (K) pygidium, dorsal view. Abbreviations: An, antennae; Pa, palps. Scale bars: A = 1 mm; B, C = 0.5 mm; D, K = 0.1 mm; E-I = 50 µm; J = 10 µm.
Fig. 6 in Elisesione imajimai Jimi & Eibye-Jacobsen & Salazar-Vallejo 2018, sp. nov.
Fig. 6. Kainonereis peltifera sp. n. A, B, holotype male (POLY-AHF 7400h); E, J-L, paratype male (POLY-AHF 7400p); C, D, F-I, M, N, paratype females (POLY-AHF 7400p). (A) anterior end, dorsal view; (B) close-up of chaetigers 5-7, dorsal view; (C) close-up of anterior end, dorsal view; (D) parapodium 1, anterior view; (E) parapodium 3, anterior view; (F) parapodium 6, anterior view; (G) parapodium 10, anterior view; (H) parapodium 22, anterior view; (I) parapodium 45, anterior view; (J) notopodial homogomph falciger, parapodium 3; (K) neuropodial sub-acicular falciger, parapodium 3; (L) neuropodial sub-acicular spiniger, parapodium 3; (M) neuropodial supra-acicular falciger, parapodium 10; (N) neuropodial sub-acicular falciger, parapodium 10. Scale bars: A, B, = 0.5 mm; C-I = 0.1 mm; J-N = 10 µm.
Fig. 1 in Elisesione imajimai Jimi & Eibye-Jacobsen & Salazar-Vallejo 2018, sp. nov.
Fig. 1. Morphology of Kainonereis Chamberlin, 1919 species. K. chamberlini sp. n. A-C, E (USNM 1422199); K. polaris comb. n. D (USNM 55514). (A) anterior end, dorsal view (transparency, 10x); (B) elytriform dorsal cirrus from mounted parapodium 6, anterior view; (C) same, non-mounted, lateral view; (D) parapodium 3, anterior view; (E) parapodium 40, anterior view. Abbreviations: Ac, anterior cirri; An, antennae; Cr, cirrostyle; DoLa, dorsal lamella of dorsal cirri; Di, disc; Jw, jaws; LDc, lower lamella of dorsal cirrus; LVc, lower lamella of ventral cirrus; NaL, neuroacicular ligule; NeV, neuropodial ventral ligule; NoD, notopodial dorsal ligule; NoV, notopodial ventral ligule; Ph, pharynx; PoL, neuropodial postchaetal lobe; Pr, prostomium; PreL, notopodial prechaetal lobe; St, stalk; UDc, upper lamella of dorsal cirrus; UVc, upper lamella of ventral cirrus; Vc, ventral cirrus; VeLa, ventral neuropodial lamella. Scale bars: A = 0.3 mm; B-E = 50 µm. All chaetae omitted.
Fig. 3 in Saphonecrus albidus Lobato-Vila and Pujade-Villar 2022, sp. nov.
Fig. 3. Scatterplots and fitted regression lines of a) 'number of spoon-tipped setae' against carapace width and b) 'number of plumose setae' against carapace width on the second maxilliped of: ◆ Leptuca terpsichores, ▲ L. beebei, and ● Petruca panamensis.
Fig. 2 in Saphonecrus albidus Lobato-Vila and Pujade-Villar 2022, sp. nov.
Fig. 2. Scatterplots and fitted regression lines of 'number of spoon-tipped setae' (a–c), and 'number of plumose setae' (d–f) against carapace width on the second maxilliped of a) Leptuca terpsichores: ◆ female, ◇ male (r 2ñ 0.57; r 2ò 0.44); b) L. beebei: ▲ female, △ male (r 2ñ 0.74; r 2ò 0.78); c) Petruca panamensis: ● female, ○ male (r 2ñ 0.88; r 2ò 0.64); d) L. terpsichores: ◆ female, ◇ male (r 2ñ 0.45; r 2ò 0.60); e) L. beebei: ▲ female, △ male (r 2ñ 0.61; r 2ò 0.50); f) P. panamensis: ● female, ○ male (r 2ñ 0.87; r 2ò 0.72).
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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)
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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.