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995 results for “Life cycle”
FIGURES 69–79 in The experimental life cycle closure of Andricus truncicolus (Giraud, 1859) (Hymenoptera: Cynipidae: Cynipini) and taxonomic description of its sexual generation
FIGURES 69–79. Andricus truncicolus male: 69, head, (front view); 70, head (dorsal view); 71,72, mesosoma (dorsal and lateral view); 73, mesosoma (posterodorsal view); 74 mesosoma (anteroventral view); 75, forewing; 76, hindwing; 77, metascutellum and propodeum (posterodorsal view); 78, first antennal segments; 79, metasoma (lateral view).
FIGURES 44–48 in The experimental life cycle closure of Andricus truncicolus (Giraud, 1859) (Hymenoptera: Cynipidae: Cynipini) and taxonomic description of its sexual generation
FIGURES 44–48. Andricus conificus asexual female: 44, habitus of adult (lateral view); 45, head, (front view); 46, forewing; 47, hindwing; 48, metascutellum and propodeum (posterodorsal view).
FIGURES 7–11 in The experimental life cycle closure of Andricus truncicolus (Giraud, 1859) (Hymenoptera: Cynipidae: Cynipini) and taxonomic description of its sexual generation
FIGURES 7–11. Andricus truncicolus asexual generation: 7–9, old galls remaining on the trunk that have lost almost all their plates showing the larval chamber surface covered in protruding humps; 10, contact chambers on branches of young oak tree; 11, habitus of adult (lateral view).
FIGURES 1–6 in The experimental life cycle closure of Andricus truncicolus (Giraud, 1859) (Hymenoptera: Cynipidae: Cynipini) and taxonomic description of its sexual generation
FIGURES 1–6. Andricus truncicolus asexual generation: 1, general appearance of the young gall and 2, its section showing the spongy consistency and thick central white trophic tissue surrounding the larval chamber; 3, newly emerged adult of gallmaker; 4, section of mature gall showing the pupal stage; 5, old galls with intact plates and 6, with detached plates around the emergence hol.
FIGURES 58–68 in The experimental life cycle closure of Andricus truncicolus (Giraud, 1859) (Hymenoptera: Cynipidae: Cynipini) and taxonomic description of its sexual generation
FIGURES 58–68. Andricus truncicolus sexual female: 58, pronotum and propleuron (frontal view); 59, mesosoma (ventral view); 60, metascutellum and propodeum (posterodorsal view); 61, forewing; 62, hindwing; 63, 64, metasoma (lateral and dorsal view); 65, ventral spine of hypopygium (ventral view); 66, fore tarsus, the arrow shows the magnification of tarsal claws with basal lobe; 67, mid tarsus and mid tibial spur; 68, hind tarsus and hind tibial spur.
FIGURES 33–43 in The experimental life cycle closure of Andricus truncicolus (Giraud, 1859) (Hymenoptera: Cynipidae: Cynipini) and taxonomic description of its sexual generation
FIGURES 33–43. Andricus truncicolus asexual female: 33, metasoma (lateral view); 34, metascutellum and propodeum (posterodorsal view); 35, forewing; 36, hindwing; 37, mesosoma (ventral view); 38, metasoma (lateral view); 39, fore tibia (the arrows show the long oblique setae on the anterior surface); and 40, foreleg on microscope slide; 41, ventral spine of hypopygium (lateral view); 42, tarsal claws with strong basal lobe; 43, ventral spine of hypopygium (ventral view).
FIGURES 25–32 in The experimental life cycle closure of Andricus truncicolus (Giraud, 1859) (Hymenoptera: Cynipidae: Cynipini) and taxonomic description of its sexual generation
FIGURES 25–32. Andricus truncicolus asexual female: 25, head, (front view); 26, head, (posterior view); 27, head, (laterofrontal view); 28, antenna; 29, head (dorsal view); 30, head (lateral view); 31, mesosoma (dorsal view); 32, pronotum, (anterodorsal view).
FIGURES 12–17. 12, 16–17 in The experimental life cycle closure of Andricus truncicolus (Giraud, 1859) (Hymenoptera: Cynipidae: Cynipini) and taxonomic description of its sexual generation
FIGURES 12–17. 12, 16–17, Immature sexual generation galls of A. truncicolus obtained in the contact chambers on Q. cerris from Experiment 1; 13–14, the photo inside the contact chamber documents asexual female of A. truncicolus during egg-laying on the oak buds present in the branch of Q. cerris; 15, mating containers with groups of males and females emerged from experiment 1.
FIGURES 49–57 in The experimental life cycle closure of Andricus truncicolus (Giraud, 1859) (Hymenoptera: Cynipidae: Cynipini) and taxonomic description of its sexual generation
FIGURES 49–57. Andricus truncicolus sexual female: 49, head, (front view); 50, head, (posterior view); 51, 52, head, (lateral and latero-frontal view); 53, antenna; 54, head (dorsal view); 55, 56, mesosoma (dorsal and lateral view); 57, pronotum, (anterodorsal view).
Adult branchiosaurid temnospondyls: The life cycle of Xerodromeus gracilis
<p><span>The Branchiosauridae form a clade of tiny newt-like, extinct amphibians of overall larval appearance. While their status as neotenic (perennibranchiate) forms had long been universally accepted, adult specimens are known from only one taxon that was hitherto referred to as <em>Melanerpeton</em> (<em>Apateon</em>) gracile. Here we study this life cycle in depth, which includes the only well-documented metamorphosis-like transformation in an early tetrapod outside Lisssamphibia.</span></p> <p>Based on various newly recognized features, <em>Melanerpeton gracile</em> is attributed to a new genus, <em>Xerodromeus</em>. <span><em>X. gracilis</em> </span><span>is characterized by a short postorbital skull table, wide supratemporal, quadrate condyles well posterior to the occipital ones, ossified endocranial elements, carpals, coracoid and pelvis as well as wedge-shaped intercentra and cylindrical pleurocentra, of which the latter are identified for the first time in branchiosaurids.</span></p> <p><span>The studied size classes are referred to four phases: (A) integration of jaw and cheek, longer snout, (B) stronger teeth, robust limbs, incipient ossification of exoccipital, coracoid, and pelvis, change in dermal ornament), (C) larger gape, wider skull, polygonal ornament) and (D) quadrate, coracoid, carpals, and vertebral centra ossified, during which a probably terrestrial adult morph developed. </span>Adult <em>X. gracilis</em> is more massively built than amphibamids, and its non-pedicellate dentition indicates that it was probably feeding on different prey.</p>
Treating the End of the Data Life Cycle as a First-Class Citizen in Data Engineering - Datasets
<p>Additional data for paper "Treating the End of the Data Life Cycle as a First-Class Citizen in Data Engineering".</p>
Regionalized life cycle assessment of present and future lithium production for Li-ion batteries
<p>This dataset contains supplementary data for the following publication: </p> <p>Vanessa Schenker, Christopher Oberschelp, Stephan Pfister,<br> Regionalized life cycle assessment of present and future lithium production for Li-ion batteries,<br> Resources, Conservation and Recycling,<br> Volume 187,<br> 2022,<br> 106611,<br> ISSN 0921-3449,<br> https://doi.org/10.1016/j.resconrec.2022.106611.<br> (https://www.sciencedirect.com/science/article/pii/S0921344922004451)</p>
How do host-plant use and seasonal life cycle relate to insect body size: A case study on European geometrid moths (Lepidoptera: Geometridae)
<p><span>We used European geometrid moths (> 630 species) as a model group to investigate how life history traits linked to larval host plant use (i.e., diet breadth and host-plant growth form) and seasonal life cycle (i.e., voltinism, overwintering stage, and caterpillar phenology) are related to adult body size in holometabolous insect herbivores. To do so, we applied phylogenetic comparative methods to account for shared evolutionary history among herbivore species. We further categorised larval diet breadth based on the phylogenetic structure of utilised host plant genera. Our results indicate that species associated with woody plants are, on average, larger than herb feeders and increase in size with increasing diet breadth. Obligatorily univoltine species are larger than multivoltine species, and attain larger sizes when their larvae are restricted to the early season. Furthermore, adult body size is significantly smaller in species that overwinter in the pupal stage compared to those that overwinter as egg or caterpillar. In summary, our results indicate that the ecological niche of an holometabolous insect herbivore is strongly interrelated with its size at maturity.</span></p>
Comparative Effects of BBT and Active Cycle of Breathing Technique on Dyspnea and Quality of Life in COPD
ClinicalTrials.gov study NCT05947253. IPD Sharing: NO. Countries: 1. Publications: 6.
The Change Cycle Intervention for Improving Quality of Life in Breast Cancer Survivors
ClinicalTrials.gov study NCT01734499. IPD Sharing: NO. Countries: 1. Publications: 13.
Effects of a High-intensity Progressive-cycle Program on Quality of Life and Motor Symptomatology in Parkinson's Disease
ClinicalTrials.gov study NCT03882398. IPD Sharing: UNDECIDED. Countries: 1. Publications: 2.
Data from: The evolution of life cycle complexity in aphids: ecological optimization, or historical constraint?
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Data from: Climate effects on life cycle variation and population genetic architecture of the black bean aphid, Aphis fabae
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Data from: Description of a new species of Hedruris Nitzsch, 1821 (Nematoda, Hedruridae) from freshwater turtles in Argentina, with information on its life cycle and a review of the genus’s host and geographic distribution
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Data from: Evolution and maintenance of haploid-diploid life cycles in natural populations: the case of the marine brown alga Ectocarpus
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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.