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441 results for “tardigrades”
Data from: Genome sequencing of a single tardigrade Hypsibius dujardini individual
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RNA-Seq of storage cells of tardigrades Ramazzottius varieornatus and Hypsibius exemplaris
GEO Series GSE212632. Ramazzottius varieornatus; Hypsibius exemplaris. 16 samples. Type: Expression profiling by high throughput sequencing.
Sexual differences in the gonochoristic tardigrade Paramacrobiotus metropolitanus,
GEO Series GSE253242. Paramacrobiotus metropolitanus. 7 samples. Type: Expression profiling by high throughput sequencing.
Transcriptome analysis of the extremophile tardigrade Hypsibius exemplaris exposed to the DNA-damaging agent bleomycin
GEO Series GSE168917. Hypsibius exemplaris. 24 samples. Type: Expression profiling by high throughput sequencing.
The tardigrade Hypsibius exemplaris dramatically upregulates DNA repair pathway genes in response to ionizing radiation [Bleo_RNA-seq]
GEO Series GSE253470. Hypsibius exemplaris. 12 samples. Type: Expression profiling by high throughput sequencing.
Multivalent binding of the tardigrade Dsup protein to heterologous chromatin promotes yeast survival and longevity upon exposure to oxidative damage
GEO Series GSE237436. Saccharomyces cerevisiae. 12 samples. Type: Other.
The tardigrade Hypsibius exemplaris dramatically upregulates DNA repair pathway genes in response to ionizing radiation
GEO Series GSE253471. Hypsibius exemplaris. 24 samples. Type: Expression profiling by high throughput sequencing.
Multivalent binding of the tardigrade Dsup protein to chromatin promotes yeast survival and longevity upon exposure to oxidative damage
GEO Series GSE294019. Saccharomyces cerevisiae. 72 samples. Type: Expression profiling by high throughput sequencing.
The tardigrade Hypsibius exemplaris dramatically upregulates DNA repair pathway genes in response to ionizing radiation [IR_RNA-seq]
GEO Series GSE240501. Hypsibius exemplaris. 12 samples. Type: Expression profiling by high throughput sequencing.
FIGURE 6 in Moebjergarctus clarionclippertonensis, a new abyssal tardigrade (Arthrotardigrada, Halechiniscidae, Euclavarctinae) from the Clarion-Clipperton Fracture Zone, North-East Pacific
FIGURE 6. Moebjergarctus clarionclippertonensis sp. nov.—genital structures. A. Female gonopore, seminal receptacle, seminal receptacle duct opening and seminal receptacle pouch in the holotype (B6418500008, scale bar=10 µm); B. Male gonopore and adjacent posterior platelet in a paratype (B6418500018, DIC photo, scale bar=10 µm); C. Female gonopore and seminal receptacle duct opening in a paratype (B6418500012, SEM photo, scale bar=5 µm); D. Close-up of the male gonopore and adjacent posterior platelet in a paratype (B6418500020, SEM photo, scale bar=5 µm); E. Schematic drawing of the female genital structures (scale bar=10 µm); F. Schematic drawing of the male genital structures (scale bar=10 µm). Abbreviations: an—anus; go—gonopore; pl—platelet; sdo—seminal receptacle duct opening; sdp—seminal receptacle duct pouch; sdu—seminal receptacle duct; sr—seminal receptacle.
FIGURE 5 in Moebjergarctus clarionclippertonensis, a new abyssal tardigrade (Arthrotardigrada, Halechiniscidae, Euclavarctinae) from the Clarion-Clipperton Fracture Zone, North-East Pacific
FIGURE 5. Moebjergarctus clarionclippertonensis sp. nov.—leg sensory organs, legs and digits. A. Sensory organ on leg I, showing the divided terminal portion (paratype B6418500013); B. Sensory organ on leg II (paratype B6418500013); C. Sensory organ on leg III (paratype B6418500013); D. Sensory organ on leg IV (paratype B6418500005); E. Leg II of a paratype (B6418500012); F. Digits and claws on leg I of a paratype (B6418500005). SEM photos, scale bars A–D, F—1 µm; E—10 µm. Abbreviations: ed—external digit; fl—terminal portion of the sensory organ; id—internal digit; p4—sensory organ on leg IV.
FIGURE 3 in Moebjergarctus clarionclippertonensis, a new abyssal tardigrade (Arthrotardigrada, Halechiniscidae, Euclavarctinae) from the Clarion-Clipperton Fracture Zone, North-East Pacific
FIGURE 3. Moebjergarctus clarionclippertonensis sp. nov.—the caudodorsal bulge. A. In lateral view (arrow, LM photo of a paratype, B6418500014, scale bar=50 µm); B. The cuticular thickening covering the caudodorsal bulge (arrow, DIC photo of the holotype B6418500008, scale bar=10 µm); C. The cuticular thickening covering the caudodorsal bulge (arrow, SEM photo of a paratype B6418500014, scale bar=10 µm); D. Caudodorsal bulge, showing the cuticular thickening (arrow, SEM photo of a paratype B6418500005, scale bar=10 µm).
FIGURE 1 in Moebjergarctus clarionclippertonensis, a new abyssal tardigrade (Arthrotardigrada, Halechiniscidae, Euclavarctinae) from the Clarion-Clipperton Fracture Zone, North-East Pacific
FIGURE 1. Map of collecting sites in the Clarion-Clipperton Fracture Zone in the North-East Pacific Ocean (map made by Ocean Data View, Schlitzer, R., Ocean Data View, odv.awi.de, 2018).
FIGURE 3 in Description of a model tardigrade Paramacrobiotus metropolitanus sp. nov (Eutardigrada) from Japan with a summary of its life history, reproduction and genomics
FIGURE 3. Morphology of inner and external surface of legs I–III SEM images of inner and external surface of legs I–III. A panel with labelled LM is photo under LM. Asterisks indicate the cuticular bulges. Scale bars = μm.
Figure 18 in The Macrobiotus ariekammensis species complex provides evidence for parallel evolution of claw elongation in macrobiotid tardigrades
Figure 18. Macrobiotus kirghizicus from the Kyrgyz Republic – egg chorion morphology seen in SEM: A, entire egg; B–D, details of the egg surface and processes; E, F, details of the distal portion of egg processes. Filled flat arrowheads indicate pores within the basal portion of egg processes wall. Scale bars in µm.
FIGURE 1 in Description of Macrobiotus kathyae sp. nov. (Parachela: Macrobiotidae) and first records of tardigrades from Indiana (USA)
FIGURE 1. Phylogenetic reconstruction of the genus Macrobiotus made with Bayesian Inference. Number above branches indicate clades posterior probability (when not indicated posterior probability = 1). Scale bar indicates number of substitutions/ site. Informal clade names are given according to: 1 Bertolani et al. (2023); 2 Stec et al. (2021b). For the complete tree including outgroups see SM.03.
FIGURE 1. The phylogenetic tree was constructed from18S in Tardigrades in the alpine region of Northeast China with an integrative description of Crenubiotus liangshuiensis sp. nov.
FIGURE 1. The phylogenetic tree was constructed from18S rRNA+28S rRNA+ITS-2+COI sequences. Numbers at nodes indicate Bayesian posterior probability, asterisks indicate maximum support (1.00), scale bar represents substitutions per position in the BI. The new species of the local samples are highlighted. Bars at the nodes indicate 0.95 highest probability density. The sequences of the related species were downloaded from GenBank (see supplementary material Table S2 for details).
FIGURE 3 in Tardigrades in the alpine region of Northeast China with an integrative description of Crenubiotus liangshuiensis sp. nov.
FIGURE 3. Crenubiotus liangshuiensis sp. nov. cuticle granulation and pores under PCM. A–Leg IV internal granulation; B–Leg IV quadrangular pores; C–bulges on Leg III; D–Dorso-caudal band of granulation. A dashed empty arrow indicates the sparse tubercles of internal side, a white full arrow indicates the bigger quadrangular pore, a black full arrow indicates the bulges; an arrowhead indicates the granulation band. A, B: Holotype (NMS0011); C, D: Paratype (NMS0012). Scale bar: 10 µm.
FIGURE 6 in DNA barcoding and integrative taxonomy of Macrobiotus hufelandi C.A.S. Schultze 1834, the first tardigrade species to be described, and some related species
FIGURE 6. Minimum spanning and parsimony network. Haplotypes are represented by circles with the area being proportional to their frequency of occurrence. Lines show single mutational events, while small filled circle denote missing/ideal haplotypes. Haplotypes encompassed in grey squares are supported by parsimony values> 95%. Haplotype acronyms as in Tables 2 and 3.
FIGURE 1 in DNA barcoding and integrative taxonomy of Macrobiotus hufelandi C.A.S. Schultze 1834, the first tardigrade species to be described, and some related species
FIGURE 1. Animal and egg morphology by LM of paragenophores and hologenophores from St. Ulrich (Germany). A–C: Macrobiotus hufelandi (Faure-Berlese fluid, phase contrast); D–F: Macrobiotus sandrae. A: Macroplacoids; B: egg shell (paragenophore); C: egg shell (hologenophore, HQ876584); D: placoids (Faure-Berlese fluid, phase contrast); E: egg shell reticulation in a hologenophore (HQ876582, Faure-Berlese fluid, phase contrast); F: egg shell distal dishes in the same hologenophore (Faure-Berlese, DIC). Scale = 10 µm.
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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.