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SI Figure 4: SEM images of either unwashed (left) or washed (right) E. antarcticus nematodes. A. Unwashed head region with arrows pointing to attached material and possible fungal hyphae. B. Washed head region with arrows pointing to the remaining attached material. C. Unwashed annules with arrows pointing to commonly attached foreign material. D. Washed annules with arrows pointing to remaining attached material. E. Unwashed somatic pore with arrows pointing to the common organic material. F. Washed vulva with an arrow pointing to remaining attached organic material. G. Unwashed cuticle with arrows showing a possible biofilm. H. Washed cuticle showing single attached cells indicated with arrows. I. Unwashed cuticle showing an off-axis line of attached material. J. Washed cuticle showing a similar off-axis line of material (as indicated with arrow) but reduced in quantity compared to the unwashed. in External and internal microbiomes of Antarctic nematodes are distinct, but more similar to each other than the surrounding environment
SI Figure 4: SEM images of either unwashed (left) or washed (right) E. antarcticus nematodes. A. Unwashed head region with arrows pointing to attached material and possible fungal hyphae. B. Washed head region with arrows pointing to the remaining attached material. C. Unwashed annules with arrows pointing to commonly attached foreign material. D. Washed annules with arrows pointing to remaining attached material. E. Unwashed somatic pore with arrows pointing to the common organic material. F. Washed vulva with an arrow pointing to remaining attached organic material. G. Unwashed cuticle with arrows showing a possible biofilm. H. Washed cuticle showing single attached cells indicated with arrows. I. Unwashed cuticle showing an off-axis line of attached material. J. Washed cuticle showing a similar off-axis line of material (as indicated with arrow) but reduced in quantity compared to the unwashed.
FIG. 78. Striate elytral morphotypes. A, B. Morphotype 92, VMNH 95536. C, D. Morphotype 93, VMNH 97305. E, F. Morphotype 94, VMNH 97583. G, H. Morphotype 95, VMNH 98277. I, J. Morphotype 96, VMNH 95971. K, L. Morphotype 97, VMNH 96824 in Remarkable Diversity Of Beetles (Coleoptera) In The Late Triassic (Norian) "Solite Deposit" Of Virginia And North Carolina
FIG. 78. Striate elytral morphotypes. A, B. Morphotype 92, VMNH 95536. C, D. Morphotype 93, VMNH 97305. E, F. Morphotype 94, VMNH 97583. G, H. Morphotype 95, VMNH 98277. I, J. Morphotype 96, VMNH 95971. K, L. Morphotype 97, VMNH 96824. Scale bars: 0.5 mm.
FIG. 77. Striate elytral morphotypes. A, B. Morphotype 86, VMNH 50186. C, D. Morphotype 87, VMNH 97304. E, F. Morphotype 88, VMNH 97376. G, H. Morphotype 89, VMNH 98968. I, J. Morphotype 90, VMNH 129483. K, L. Morphotype 91, VMNH 97346 in Remarkable Diversity Of Beetles (Coleoptera) In The Late Triassic (Norian) "Solite Deposit" Of Virginia And North Carolina
FIG. 77. Striate elytral morphotypes. A, B. Morphotype 86, VMNH 50186. C, D. Morphotype 87, VMNH 97304. E, F. Morphotype 88, VMNH 97376. G, H. Morphotype 89, VMNH 98968. I, J. Morphotype 90, VMNH 129483. K, L. Morphotype 91, VMNH 97346. Scale bars: 0.5 mm.
FIG. 68. Smooth elytral morphotypes. A, B. Morphotype 62, VMNH 97505. C, D. Morphotype 63, VMNH 99030. E, F. Morphotype 64, VMNH 95504. G, H. Morphotype 65, VMNH 97607. I, J. Morphotype 66, VMNH 97319. K, L. Morphotype 67, VMNH 97104 in Remarkable Diversity Of Beetles (Coleoptera) In The Late Triassic (Norian) "Solite Deposit" Of Virginia And North Carolina
FIG. 68. Smooth elytral morphotypes. A, B. Morphotype 62, VMNH 97505. C, D. Morphotype 63, VMNH 99030. E, F. Morphotype 64, VMNH 95504. G, H. Morphotype 65, VMNH 97607. I, J. Morphotype 66, VMNH 97319. K, L. Morphotype 67, VMNH 97104. Scale bars: 0.5 mm.
FIG. 76. Striate elytral morphotypes. A, B. Morphotype 80, VMNH 95483. C, D. Morphotype 81, VMNH 95443. E, F. Morphotype 82, VMNH 96665. G, H. Morphotype 83, VMNH 96826. I, J. Morphotype 84, VMNH 97581. K, L. Morphotype 85, VMNH 54201 in Remarkable Diversity Of Beetles (Coleoptera) In The Late Triassic (Norian) "Solite Deposit" Of Virginia And North Carolina
FIG. 76. Striate elytral morphotypes. A, B. Morphotype 80, VMNH 95483. C, D. Morphotype 81, VMNH 95443. E, F. Morphotype 82, VMNH 96665. G, H. Morphotype 83, VMNH 96826. I, J. Morphotype 84, VMNH 97581. K, L. Morphotype 85, VMNH 54201. Scale bars: 0.5 mm.
FIG. 69. Elytral morphotypes with color patterns and nodules. A, B. Morphotype 68, VMNH 54567. C, D. Morphotype 69, VMNH 95448. E–G. Morphotype 70, VMNH 95487 in Remarkable Diversity Of Beetles (Coleoptera) In The Late Triassic (Norian) "Solite Deposit" Of Virginia And North Carolina
FIG. 69. Elytral morphotypes with color patterns and nodules. A, B. Morphotype 68, VMNH 54567. C, D. Morphotype 69, VMNH 95448. E–G. Morphotype 70, VMNH 95487. Scale bars: A–F: 0.5 mm, G: 0.1 mm.
Figure. Rhynchoglossum ampliatum (C.B.Clarke) B.L.Burtt. A, Habit; B, iNfloresceNce; C, flower (froNt view); D, calyx (dissected open); E, corolla (dissected open); F, stamens; G, pistil. Photographs of Momang Taram & Ojar Taku 808: A–B and D–G, M. Taram; C, D. Borah. in A CLARIFICATION OF THE STATUS OF RHYNCHOGLOSSUM LAZULINUM (GESNERIACEAE: DIDYMOCARPOIDEAE)
Figure. Rhynchoglossum ampliatum (C.B.Clarke) B.L.Burtt. A, Habit; B, iNfloresceNce; C, flower (froNt view); D, calyx (dissected open); E, corolla (dissected open); F, stamens; G, pistil. Photographs of Momang Taram & Ojar Taku 808: A–B and D–G, M. Taram; C, D. Borah.
Figure. Litsea anamalayana Robi & Udayan, sp. nov. A, Flowering twig; B, twig with unopened umbels; C, brachyblast with opened umbels; D, female flowers (close-up); E, tepals; F, outer eglandular staminodes and inner glandular staminodes; G, gynoecium; H, early stage of fruit setting; I, mature fruits. Photographs: A. J. Robi. in LITSEA ANAMALAYANA (LAURACEAE) A NEW SPECIES FROM NELLIYAMPATHY HILLS, INDIA.
Figure. Litsea anamalayana Robi & Udayan, sp. nov. A, Flowering twig; B, twig with unopened umbels; C, brachyblast with opened umbels; D, female flowers (close-up); E, tepals; F, outer eglandular staminodes and inner glandular staminodes; G, gynoecium; H, early stage of fruit setting; I, mature fruits. Photographs: A. J. Robi.
Fig. 3 in Naturalization Of Melanoides Tuberculata And Tarebia Granifera (Thiaridae, Gastropoda) M O L L U S K S U N D E R T H E H Y D R O E C O L O G I C A L Conditions Of Zaporizhzhya Npp Cooling Pond
Fig. 3. Percentage ratio of Thiaridae mollusks on concrete walls of the outflow channels of Zaporizhzhya NPP.
Fig. 1 in Naturalization Of Melanoides Tuberculata And Tarebia Granifera (Thiaridae, Gastropoda) M O L L U S K S U N D E R T H E H Y D R O E C O L O G I C A L Conditions Of Zaporizhzhya Npp Cooling Pond
Fig. 1. Melanoides tuberculata and Tarebia granifera (Thiaridae, Gastropoda) in and its localities in Ukraine: 1 – the cooling pond of the Zaporizhzhya NPP (47°50'42″N; 35°56'89"E); 2 – cluster of mollusks on concrete walls of the channel of the nuclear power plant; 3 – accumulation of M. tuberculata on a stony substrate in the region of the discharge channel of the nuclear power plant, September 15, 2017; 4 – accumulation of M. tuberculata and T. granifera on reed roots.
Fig. 1 in The Dynamics Of Genetic Structure Of Round G O B Y N E O G O B I U S M E L A N O S T O M U S (Pa L L A S) Groupings In The Odessa Bay Of The Black Sea Utilizing Biochemical Marker Loci
Fig. 1. Frequencies of S-alleles by polymorphic locus Es2 in round goby groupings from different parts of the Odessa Bay. * – significant deviation of allele frequencies in round goby groupings from the south and the north part of the Odessa Bay (Р = 0,05); # – significant deviation of allele frequencies in round goby groupings in the south part of the Odessa Bay in 2015-2016 in comparison to 2013-2014 (Р = 0,05).
Fig. 2 in The Dynamics Of Genetic Structure Of Round G O B Y N E O G O B I U S M E L A N O S T O M U S (Pa L L A S) Groupings In The Odessa Bay Of The Black Sea Utilizing Biochemical Marker Loci
Fig. 2. Frequencies of S-alleles by polymorphic locus of myogene 3 in round goby groupings from different parts of the Odessa Bay * – significant deviation of allele frequencies in round goby groupings from the south and the north part of the Odessa Bay in 2013 and 2014 (Р = 0,05); # – significant deviation of allele frequencies in round goby groupings from the south part of the Odessa Bay in 2013-2014 in comparison to 2015 (Р = 0,05).
Fig. 1. Projection cover during vegetation period Fig. 2 in P H E N O L O G Y O F H E R B A C E O U S V Eg E Tat I O N I N Br Oa Dl Eaved Fo Res T O F K Am Sa Bo Tanic Al - Zoological Reserve
Fig. 1. Projection cover during vegetation period Fig. 2. Phenological spectrum of herbs in a) in a) 2009, b) 2010. 2009, b) 2010.
Fig. 2 in Microhabitat Preference And Relationships B E T W E E N M E Ta Z O A N Pa R A S I T E S O N T H E G I L L A P Pa R At U S O F T H E E U R O P E A N E E L (A N G U I L L A Anguilla) From Freshwaters Of Latvia
Fig. 2. The metazoan parasite prevalence in different gill area of European eel Anguilla anguilla from freshwater bodies of Latvia. A – Pseudodactylogyrus bini; B – Pseudodactylogyrus anguillae; C – Ergasilus sieboldi; D – Anodonta sp.
Fig. 6 in The First Records Of The Common Pheasant, P H A S I A N U S C O L C H I C U S (Av E S: G A L L I F O R M E S: Phasianidae), And Its Group In South-Eastern Latvia
Fig. 6. The northern border of the distribution area of Phasianus colchicus in the Far East (Beme et al. 1987).
Fig. 1 in G R A I N Y I E L D A N D I T S F O R M I N G Pa R A M E T E R S Variations Of Oat Cultivars
Fig. 1. Meteorological conditions during experimental years: ■ 2012, ■ 2013, □ 2014 ■ LTA, *LTA – Long term average value of temperature 2012, 2013, 2014 Long term average value of precipitation.
Fig. 2 in The First Records Of The Common Pheasant, P H A S I A N U S C O L C H I C U S (Av E S: G A L L I F O R M E S: Phasianidae), And Its Group In South-Eastern Latvia
Fig. 2. The place of the observation of the Phasianus colchicus group. One day before: the Capreolus сapreolus have been dug last year's apples out of the snow 4 – 6 cm in depth. 2015.02.10.
Рис. 4. Фотографии Theristus securus sp. nov., гоΛотип самца (a, c, d, e, h, j) и паратип самки (b, f, g, i). a, b — общий виΔ; c — переΔний конец теΛа; d, e, f — гоΛова; g — теΛо в обΛасти вуΛьвы; h, i — заΔний конец теΛа; j — терминус хвоста. Масштаб: a, b — 100 мкм; c, h, i — 50 мкм; g — 20 мкм; d, e, f, j — 10 мкм Fig. 4. Light micrograph of Theristus securus sp. nov, male holotype (a, c, d, e, h, i) and female paratype (b, f, g, i). a, b — general view; c — anterior body end; d, e, f — head; g — vulvar region; h, i — posterior body end; j — tail terminus. Scale bars: a, b — 100 μm; c, h, i — 50 m; g — 20 m; d, e, f, j – 10 μm in Two New Species Of The Family Xyalidae Chitwood, 1951 (Nematoda, Monhysterida) From The Water Bodies Of Vietnam
Рис. 4. Фотографии Theristus securus sp. nov., гоΛотип самца (a, c, d, e, h, j) и паратип самки (b, f, g, i). a, b — общий виΔ; c — переΔний конец теΛа; d, e, f — гоΛова; g — теΛо в обΛасти вуΛьвы; h, i — заΔний конец теΛа; j — терминус хвоста. Масштаб: a, b — 100 мкм; c, h, i — 50 мкм; g — 20 мкм; d, e, f, j — 10 мкм Fig. 4. Light micrograph of Theristus securus sp. nov, male holotype (a, c, d, e, h, i) and female paratype (b, f, g, i). a, b — general view; c — anterior body end; d, e, f — head; g — vulvar region; h, i — posterior body end; j — tail terminus. Scale bars: a, b — 100 μm; c, h, i — 50 m; g — 20 m; d, e, f, j – 10 μm
Fig. – 1 Amaurina schuelei sp. nov.: A, HT♂ dorsal habitu; B, HT♂ ventral habitus; C, HT♂ lateral habitus; D, HT♂ clypeus; E, HT♂ pygidium; F, HT♂ parameres, dorsal view; G, HT♂ parameres, lateral view. Photos: Lubos Dembicky. in Review of the Amaurina Kolbe, 1895 of Angola, with description of a new species (Scarabaeidae: Cetoniinae, Leucocelina)
Fig. – 1 Amaurina schuelei sp. nov.: A, HT♂ dorsal habitu; B, HT♂ ventral habitus; C, HT♂ lateral habitus; D, HT♂ clypeus; E, HT♂ pygidium; F, HT♂ parameres, dorsal view; G, HT♂ parameres, lateral view. Photos: Lubos Dembicky.
◂Fig. 5 Gametogenesis in male and female Veneriserva pygoclava. A–D Semi-thin histological sections of female Veneriserva pygoclava, stained with toluidine blue. A Cross-section of a female Veneriserva. B Close-up of large mature oocytes without discernible nurse cells. C Developing oocytes attached to mesenteries (mes), and oogonia proliferating from the ventral side of the dorsal blood vessel (bv). D Details of vitellogenic oocytes and nurse cells. Arrowheads indicate brownstained yolk platelets and yolk bodies. E Live sperm cells captured in a light micrograph. F–G Cross-sections of male Veneriserva. Note the absence of a gut in the cross-sections. Abbreviations—ac acicula, acr acrosome, bv blood vessel, coe coelomic cavity, mes mesentery, nc nurse cell, nn nurse cell nucleus, nu sperm cell nucleus, Oo oocyte, on oocyte nucleus, sp spermatogonia, vnc ventral nerve cord in Hardly Venus's servant-morphological adaptations of Veneriserva to an endoparasitic lifestyle and its phylogenetic position within Dorvilleidae (Annelida)
◂Fig. 5 Gametogenesis in male and female Veneriserva pygoclava. A–D Semi-thin histological sections of female Veneriserva pygoclava, stained with toluidine blue. A Cross-section of a female Veneriserva. B Close-up of large mature oocytes without discernible nurse cells. C Developing oocytes attached to mesenteries (mes), and oogonia proliferating from the ventral side of the dorsal blood vessel (bv). D Details of vitellogenic oocytes and nurse cells. Arrowheads indicate brownstained yolk platelets and yolk bodies. E Live sperm cells captured in a light micrograph. F–G Cross-sections of male Veneriserva. Note the absence of a gut in the cross-sections. Abbreviations—ac acicula, acr acrosome, bv blood vessel, coe coelomic cavity, mes mesentery, nc nurse cell, nn nurse cell nucleus, nu sperm cell nucleus, Oo oocyte, on oocyte nucleus, sp spermatogonia, vnc ventral nerve cord
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.