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FIGURE 15 in The non-Siphonophoran Hydrozoa (Cnidaria) of Salento, Italy with notes on their life-cycles: an illustrated guide
FIGURE 15. Eudendrium capillare: A, general view of a colony; B, hydranth; C, male blastostyle; D, female blastostyle, E, intact and discharged microbasic euryteles, intact and discharged haplonemes (A, B, C, D drawn by C.G. Di Camillo; E drawn by A. Gennari). Scale bars: A, 1.0 mm; B, 0.5 mm; C, D, 0.2 mm; E, 10 µm.
FIGURE 1 in The non-Siphonophoran Hydrozoa (Cnidaria) of Salento, Italy with notes on their life-cycles: an illustrated guide
FIGURE 1. Map showing the sampling localities along the coast of Salento (Italy). 1, Torre Lapillo. 2, Isola della Malva. 3, Porto Cesareo. 4, La Strea. 5, Sant'Isidoro. 6, Palude del Capitano. 7, Torre Inserraglio. 8, Punta Longa. 9, Torre Uluzzo. 10, Grotta Corvine. 11, La Rotonda. 12, Santa Caterina. 13, Il Chiapparo. 14, Montagna Spaccata. 15, S. Maria al Bagno. 16, Isola S. Andrea. 17, Porto Racale. 18, Torre Suda. 19, Torre Vado. 20, S. Maria di Leuca. 21, Gagliano del Capo. 22, Località Ciolo. 23, Marina di Corsano. 24, Tricase Porto. 25, Marina di Andrano. 26, P. Badisco. 27, T. S. Emiliano. 28, Otranto. 29, Sant'Andrea. 30, Torre dell'Orso. 31, Roca. 32, San Foca. 33, Brindisi.
FIGURE 1. A in DNA barcodes unite two problematic taxa: the meiobenthic Boreohydra simplex is a life-cycle stage of Plotocnide borealis (Hydrozoa: Aplanulata)
FIGURE 1. A. ML topology for all publically available 18S sequences (n=519) of Hydroidolina, showing the positions of Plotocnide borealis and Protohydra leuckarti within Aplanulata. SH-like branch support values are shown at the nodes, as well as bootstrap indices if exceeding 60. Uncollapsed topologies are provided as Supplementary Figures at https://dx.doi.org/ 10.6084/m9.figshare.3406654.v3. B. SEM of the polyp stage previously known as Boreohydra simplex, the mouth is marked by (*). C. Live image of the medusa stage of Plotocnide borealis, tentacles contracted.
FIGURE 2 in DNA barcodes unite two problematic taxa: the meiobenthic Boreohydra simplex is a life-cycle stage of Plotocnide borealis (Hydrozoa: Aplanulata)
FIGURE 2. The egg of the polyp stage of Plotocnide borealis. A. SEM of the polyp with the egg, marked by (*). B. SEM of the egg, front view. C. Live image of the gastric region of the polyp with the egg. D. Transverse semi-thin section of the polyp stage stained with a mixture of toluidine blue and methylene blue clearly showing the egg. E, F. TEM of the oocyte wall, the invaginations of the outer membrane are marked by arrows.
FIGURES 19–24 in Nacerdochroa concolor (Brullé, 1839) (Coleoptera: Oedemeridae): taxonomy, ecology, life cycle and larval instars
FIGURES 19–24. Nacerdochroa concolor, larva: 19, cephalic capsule, dorsal view; 20, do., ventral view; 21, apex of left maxilla (a = mala, b = maxillary palpus; 22, prelabium and hypopharynx (a = labial palpus, b = prehypopharynx, c = hypopharynx sclerite; 23, different views of mandibles; 24, side view (t = tergite, s = sternite). Terminology after Rozen.
FIGURES 10–18 in Nacerdochroa concolor (Brullé, 1839) (Coleoptera: Oedemeridae): taxonomy, ecology, life cycle and larval instars
FIGURES 10–18. Nacerdochroa concolor, imago:10, maxillary-labial complex; 11, mandibles (a = dorsal view, b= ventral view, c = lateroventral view); 12-13-14, pro-, meso- and metatarsi (a = ventral view, b = dorsal view); 15, tegmen (a = lateral view, b = dorsal view); 16, penis; 17, functional wing; 18, ovipositor (a = vagine, b = baculum of proctiger, c = proctiger, d = coxites, e = styli, f = oblique baculum, g = ventral baculum). Terminology after Hudson.
FIGURES 1–9 in Nacerdochroa concolor (Brullé, 1839) (Coleoptera: Oedemeridae): taxonomy, ecology, life cycle and larval instars
FIGURES 1–9. Dracaena draco, dragon-tree: 1, "old-age" specimen at Icod de los Vinos; 2, partial view of inner cavity, from where the first affected sample was extracted; 3, partial view of the southern face of the same cavity where larvae and pupae where obtained; 4, upper part of the cavity entrance, where larvae, pupae and adults were collected. Nacerdochroa concolor: 5, ventral and dorsal view of the larva; 7, dorsal and ventral view of the pupa; 8, dorsal view of male; 9, ventral view of female, ovipositor extended.
Life Cycle Assessment Dataset For Peritoneal Dialysis in Madrid
<p>The database outlines a structured pathway for managing patients with end-stage renal disease (ESRD) undergoing peritoneal dialysis (PD). It provides detailed descriptions of the various stages and protocols involved in the treatment process.</p> <ol> <li><strong>Patient Education and Evaluation: </strong>The initial stages focus on educating patients about renal replacement therapy options and assessing their eligibility and suitability for PD. These assessments consider medical history, anatomical factors, and the suitability of the home environment.</li> <li><strong>Pre-Surgical and Surgical Procedures</strong>: The database includes pre-surgical evaluations, the surgical placement of the peritoneal catheter (performed under local anesthesia or through laparoscopic surgery), and subsequent checks to confirm the catheter's functionality.</li> <li><strong>Training and Initiation of PD:</strong> Training sessions for patients are outlined for both continuous ambulatory peritoneal dialysis (CAPD) and automated peritoneal dialysis (APD). These sessions are initiated following confirmation of catheter functionality. The database also specifies the use of products such as CAPD by Fresenius and APD by Baxter and describes the progressive implementation of the dialytic dose.</li> <li><strong>Routine Maintenance and Monitoring:</strong> Routine care includes monthly clinical evaluations, annual peritoneal equilibrium tests (PET), and periodic changes to the terminal catheter set to maintain treatment safety and effectiveness.</li> <li><strong>Handling Complications:</strong> Protocols for managing potential complications are detailed, including procedures for addressing catheter malfunctions, diagnosing and treating peritonitis, and catheter removal when necessary.</li> <li><strong>Data Collection on Patient Outcomes:</strong> The database suggests tracking patient preferences for different therapies and monitoring outcomes at various stages, providing insights into patient choices and clinical results.</li> </ol> <p>This comprehensive database is designed to standardize and optimize the delivery of PD care. It offers healthcare professionals in nephrology a detailed framework for improving patient outcomes and streamlining clinical workflows.</p>
Figs. 1–7. Formicomus pedestris, first instar larva. 1 in Description of Larvae of the Genus Formicomus Laferté, and Data on the Life Cycles of Omonadus floralis (Linné) and Notoxus monoceros (Linné) (Coleoptera: Anthicidae)
Figs. 1–7. Formicomus pedestris, first instar larva. 1) Epipharynx, dorsal (a) and ventral (b) view; 2) mandibles, dorsal view; 3) labium, dorsal (a) and ventral (b) view; 4) maxillae, ventral view; 5) antenna, dorsal view; 6) prothoracic leg, ventral view; 7) urogomphi, dorsal view.
Figs. 9–22 in Description of Larvae of the Genus Formicomus Laferté, and Data on the Life Cycles of Omonadus floralis (Linné) and Notoxus monoceros (Linné) (Coleoptera: Anthicidae)
Figs. 9–22. Formicomus ssp., Omonadus floralis and Notoxus monoceros. Scanning electron micrographs of larvae. 9) Formicomus rubricollis, ventral view of the head (343x); 10) F. gestroi, ventral view of the head (362x); 11) F. pedestris, ventral view of the head (396x); 12) F. rubricollis, antenna, ventral view (1,510x); 13) F. gestroi, antenna, ventral view (919x); 14) F. gestroi, urogomphi, ventral view (497x); 15) F. pedestris, antenna, ventral view (1,460x); 16) Omonadus floralis, ventral view of the head (110x); 17) Notoxus monoceros, dorsal view of the head (144x); 18) N. monoceros, ventral view of the head (158x); 19) O. floralis, antenna, ventral view (636x); 20) O. floralis, urogomphi, dorsal view (111x); 21) N. monoceros, antenna, dorsal view (600x); 22) N. monoceros, urogomphi, lateral view (126x).
FIGURE 4 in Description of life cycle and immature stages of Yphthimoides celmis (Godart, [1824]) (Lepidoptera: Nymphalidae: Satyrinae): a contribution to the taxonomic status of the genus
FIGURE 4 Lateral view diagram showing Yphthimoides celmis body chaetotaxy of first instar. For chaetotaxy abbreviations see Stehr (1987) and Murray (2001).
FIGURE 3 in Description of life cycle and immature stages of Yphthimoides celmis (Godart, [1824]) (Lepidoptera: Nymphalidae: Satyrinae): a contribution to the taxonomic status of the genus
FIGURE 3 Head chaetotaxy and capsule of Yphthimoides celmis. a frontal and b lateral view of head chaetotaxy of first instar, c head capsule first instar, d head capsule second instar, e head capsule third instar, f head capsule fourth instar, g head capsule fifth instar, h head capsule sixth instar. For chaetotaxy abbreviations see Stehr (1987) and Murray (2001).
FIGURE 2 in Description of life cycle and immature stages of Yphthimoides celmis (Godart, [1824]) (Lepidoptera: Nymphalidae: Satyrinae): a contribution to the taxonomic status of the genus
FIGURE 2 Life stages of Yphthimoides celmis. a egg, b first instar before feeding, c first instar after feeding, d dorsal view of second instar, e dorsal view of third instar, f dorsal view of fourth instar, g lateral view of fifth instar (last no overwinter individuals), h dorsal view of sixth instar (last overwinter individuals), i lateral view of pupa, j ventral view of pupa, k adult from General San Martín Urban Nature Reserve, Córdoba (photo courtesy of Nicola Rossi), l dorsal (left) and ventral (right) view of adult male, m dorsal (left) and ventral (right) view of adult female.
Critical analysis of life cycle inventory datasets for organic crop production systems (Data sets)
Open the record for dataset details and reuse information.
Coccolithus braarudii life cycle phases laboratory data (EGUSPHERE-2023-880 supplement)
Open the record for dataset details and reuse information.
Data from: Redesign of a life cycle figure improves student conceptions of ecology and evolution
<p>Life cycle diagrams communicate the developmental life stages of an organism. Design choices may inadvertently communicate additional information about survivorship rates, genetic variation, and microevolutionary change. In this controlled experiment, we randomly assigned one of three life cycle diagrams to 684 college students. Each figure included identical life stages of a fictitious organism's development but differed in 1) number of offspring (single or multiple) and 2) layout (cyclical or linear). Each participant could reference the figure when answering questions about organism survival, variation among offspring, and variation between generations. Students scored 21–37% higher on questions about survivorship when the available diagram included multiple offspring. Students scored 19–30% higher on questions about microevolution when the diagram layout was linear. Overall, students who received the figure with a linear layout and multiple offspring earned the highest average score (54.5%, or 3.3 of 6 questions) on the assessment, while students with the traditional figure (cyclical layout with single offspring) scored the lowest average (26.1%, or 1.6 of 6 questions). These results suggest that figure design affects student interpretations and may assist student learning about ecology and evolution concepts and common misconceptions.</p>
F in Biology and life cycle of Scopelocheirus hopei (A. Costa, 1851), a scavenging amphipod from the continental slope of the Mediterranean
F. 4. Sexual development. Male: (A) calceoli on the antennae 2. Female: (B) St.1 without any oostegites; (C) St.2 with rudimentary oostegite; (D) St.3 oostegite developing; (E) the 'buds', place of the future setae, at the extremity of the oostegite; (F) St.4 with a developed oostegite, note its length relative to the other stages; (G) extremity of St.4 oostegite showing the insertion points of the setae; (H) St.5 the extremity of the oostegite bearing setae.
F in Biology and life cycle of Scopelocheirus hopei (A. Costa, 1851), a scavenging amphipod from the continental slope of the Mediterranean
F. 5. Size distribution of the animals collected: the whole population, juveniles, males, females, and distribution of the females by stages.
F in Biology and life cycle of Scopelocheirus hopei (A. Costa, 1851), a scavenging amphipod from the continental slope of the Mediterranean
F. 9. Distribution of the various categories of individuals during the year. Juv, juveniles; M, males; F, females.
F in Biology and life cycle of Scopelocheirus hopei (A. Costa, 1851), a scavenging amphipod from the continental slope of the Mediterranean
F. 8. Size distribution of S. hopei in Planier Canyon in 1990–1991. Lines show the development of one cohort in the various generations. (A) Males; (B) females.
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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.