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642 results for “cucumber”
Figure 13. a, b in The sea cucumbers of Camden Sound in northwest Australia, including four new species (Echinodermata: Holothuroidea)
Figure 13. a, b, photos of live specimen of holotype of Plesiocolochirus minaeus O'Loughlin sp. nov. (WAM Z89026): a, dorsal view; b, ventral view. c–e, photos of preserved holotype: c, lateral view; d, oral view; e, anal view.
Figure 27 in The sea cucumbers of Camden Sound in northwest Australia, including four new species (Echinodermata: Holothuroidea)
Figure 27. Photos of live specimens. a, Molpadia scabrum (Sluiter, 1901) (WAM Z89069; estimated 38 mm long live); b, Protankyra insolens (Théel, 1886) (WAM Z89070; estimated 24 mm long live); c, Protankyra verrilli (Théel, 1886) (WAM Z89072).
Figure 8 in The sea cucumbers of Camden Sound in northwest Australia, including four new species (Echinodermata: Holothuroidea)
Figure 8. Photos of live specimens of Colochirus quadrangularis Troschel, 1846 from northern Australia: a, dorsal view (WAM Z89021, from Camden Sound); b, ventral view (WAM Z89015, from Camden Sound); c, colour morphs from Joseph Bonaparte Gulf (NMV F201791).
Figure 9 in The sea cucumbers of Camden Sound in northwest Australia, including four new species (Echinodermata: Holothuroidea)
Figure 9. Ossicles from specimens of Colochirus quadrangularis Troschel, 1846 from Singapore: a, dorsal and peri-anal body wall bowls up to 56 µm long (three with single bridge) (top row), bowls with one spinous margin up to 80 µm long (three with single bridge) (middle row), hollow ellipsoids up to 88 µm long, and ellipsoids with inner bridges up to 88 µm long (bottom row) (from Singapore specimen NMV F210388); b, tentacle rods and rod-plates up to 440 µm long, rosettes up to 96 µm long (from NMV F210388); c, ventral tube foot endplate up to 400 µm diameter (right), support rod-plates up to 272 µm long, small bowls, spinous-edge bowl with bridging, and ellipsoid with internal bridging (bottom left) (from NMV F210389).
Figure 7 in The sea cucumbers of Camden Sound in northwest Australia, including four new species (Echinodermata: Holothuroidea)
Figure 7. Photos of live specimens of Colochirus quadrangularis Troschel, 1846 from Singapore waters, provided by Helen Pei San Wong and Joo Yong Ong (TMSI of NUS; specimens estimated to be up to 60 mm long): a, dorsal view showing anal scales and absence of warts; b, ventral view; c, dorsal view showing warts; d, lateral view.
Figure 3 in The sea cucumbers of Camden Sound in northwest Australia, including four new species (Echinodermata: Holothuroidea)
Figure 3. Preserved holotype of Holothuria (Metriatyla) keesingi O'Loughlin sp. nov. (WAM Z89006): a, dorsal view; b, ventral view; c, tentacles with surrounding ring of papillae; d, calcareous ring with radial plate right, inter-radial plate left.
Figure 1 in The sea cucumbers of Camden Sound in northwest Australia, including four new species (Echinodermata: Holothuroidea)
Figure 1. Maximum likelihood tree of Colochirus–Plesiocolochirus COI data, with mid-point rooting. Bootstrap support (100 replicates) indicated by circles (100%) and rectangles (>95%).
Figure 5 in The sea cucumbers of Camden Sound in northwest Australia, including four new species (Echinodermata: Holothuroidea)
Figure 5. Photos of live specimen belonging to a Stichopus unresolved species complex (WAM Z89009; estimated 110 mm long live): a, dorsal view; b, ventral view; c, in situ view.
Figure 2. a, b in The sea cucumbers of Camden Sound in northwest Australia, including four new species (Echinodermata: Holothuroidea)
Figure 2. a, b, photos of live holotype specimen of Holothuria (Metriatyla) keesingi O'Loughlin sp. nov. (WAM Z89006): a, dorso view; b, latero-ventral view with ventrum and tube feet along upper side, dorsal papilla underneath. c, photo of dorsal view of live specimen of Holothuria (Thymiosycia) gracilis Semper, 1868 (WAM Z89008; estimated 125 mm long live).
Figure 4 in The sea cucumbers of Camden Sound in northwest Australia, including four new species (Echinodermata: Holothuroidea)
Figure 4. Ossicles from holotype (WAM Z89006; rods and small button mid-top and bottom) and paratype (WAM Z89005; tables, buttons) specimens of Holothuria (Metriatyla) keesingi O'Loughlin sp. nov. (in specimens table discs up to 240 µm across; table spires up to 176 µm long; buttons up to 200 µm long; rods up to 336 µm long).
Energy budget of the sea cucumber Neostchopus grammatus fed abalone waste
<p> The data is gotten from Energy budget of the sea cucumber <em>Neostichopus</em> <em>grammatus </em>fed abalone waste.</p>
Data from: A cucumber protein, Phloem Phosphate Stress Repressed 1, rapidly degrades in response to a phosphate stress condition
<p>Under depleted external phosphate (Pi), many plant species adapt to this stress by initiating downstream signalling cascades. In plants, the vascular system delivers nutrients and signalling agents to control physiological and developmental processes. Currently, limited information is available regarding the direct role of phloem-borne long-distance signals in plant growth and development under Pi-stress conditions. Here, we report on the identification and characterization of a cucumber protein, <em>Cucumis sativus</em> Phloem Phosphate-Stress-Repressed 1 (CsPPSR1), whose level in the phloem translocation stream rapidly responds to imposed Pi-limiting conditions. CsPPSR1 degradation is mediated by the 26S proteasome; under Pi-sufficient conditions, CsPPSR1 is stabilized by its phosphorylation, within the sieve tube system, through the action of CsPPSR1 Kinase. Further, we discovered that CsPPSR1 Kinase was susceptible to Pi-starvation-induced degradation, in the sieve tube system. Our findings offer insight into a molecular mechanism underlying the response of phloem-borne proteins to Pi-limited stress conditions.</p>
Figure 2. RRS William Scoresby served the Discovery Expedition for eight voyages from 1926 in The Discovery Expedition sea cucumbers (Echinodermata: Holothuroidea)
Figure 2. RRS William Scoresby served the Discovery Expedition for eight voyages from 1926 to 1951.
Alignments used for the phylogenetic analysis of sweet cucumber (Solanum muricatum, Solanaceae)
<p><span><span>Sweet cucumber <em>(Solanum muricatum) </em>sect. <em>Basarthrum, </em>is a neglected native crop to the Andean region. It is naturally distributed very close to potatoes (<em>Solanum </em>sect. <em>Petota</em>) and tomatoes (<em>Solanum</em> sect. <em>Lycopersicon</em>), two groups with great economic importance. We obtained the first complete chloroplast (cp) genome of sweet cucumber and compared with seven Solanacea species. Pair-end clean reads were obtained by PE 150 library and the Illumina HiSeq 2500 platform. The complete cp genome of <em>S. muricatum</em> had a 155,681 bp with typical quadripartite structure, containing a large single copy (LSC) region (86,182 bp) and a small single-copy (SSC) region (18,360 bp), separated by two inverted repeat (IR) regions (25,568 bp). The annotation of chloroplast genome predicted 88 protein-coding genes (CDS), 8 ribosomal RNA (rRNA) genes, 37 transfer RNA (tRNA) genes, and one pseudogene. A total of 48 perfect microsatellites were identified, divided in mononucleotide repeats (32), followed by tetranucleotide (6) and dinucleotides (5). SSRs with trinucleotides repeats (3), pentanucleotide (1) and hexanucleotide (1) repeats motifs in these genomes were identified in lower quantity. Most of these repeats were distributed in the noncoding regions. Whole chloroplast genome comparison with the other seven Solanaceae species revealed that the small single copy and large single copy regions showed more divergence than inverted regions. Finally, phylogenetic analyses resolved that <em>S. muricatum</em> is a sister species to members of sections <em>Petota</em> + <em>Lycopersicum</em> + <em>Etuberosum</em>. This study reports for the first time the genome organization, gene content, and structural features of the chloroplast genome of <em>S. muricatum</em>. Also, this study </span><span>may provide the basis for evaluating genetic diversity within the Solanaceae species, and will be useful to examine the evolutionary processes in sweet cucumber landraces.</span></span></p>
Figure 6 in Evaluation of geostatistical method and hybrid Artificial Neural Network with imperialist competitive algorithm for predicting distribution pattern of Tetranychus urticae (Acari: Tetranychidae) in cucumber field of Behbahan, Iran
Figure 6. Motion of colonies toward their relevant imperialist (AtashpazGargari 2009).
Figure 4 in Evaluation of geostatistical method and hybrid Artificial Neural Network with imperialist competitive algorithm for predicting distribution pattern of Tetranychus urticae (Acari: Tetranychidae) in cucumber field of Behbahan, Iran
Figure 4. Flowchart of Imperialist Competitive Algorithm (AtashpazGargari 2009).
Figure 7 in Evaluation of geostatistical method and hybrid Artificial Neural Network with imperialist competitive algorithm for predicting distribution pattern of Tetranychus urticae (Acari: Tetranychidae) in cucumber field of Behbahan, Iran
Figure 7. Distribution of T. urticae in different stages of sampling.
Figure 1 in Reproductive cycle of the traditionally exploited sea cucumber Holothuria tubulosa (Holothuroidea: Aspidochirotida) in Pagasitikos Gulf, western Aegean Sea, Greece
Figure 1. Map of the study area with the sampling location.
Fig. 8 in Understanding the color variability and resolving taxonomic confusion in the sea cucumber Isostichopus badionotus (Echinodermata, Holothuroidea): a revision of the genus Isostichopus
Fig. 8 (continued).
FIGURE 1 in The Impact Of Cucumber Nitrogen Nutrition On Life History Traits Of Tetranychus Urticae (Koch) (Acari: Tetranychidae)
FIGURE 1: Age specific survival rate (lx) and fecundity (mx) of Tetranychus urticae on four nitrogen treatments
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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.