Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
364
datasets available to search
ShareScore release 0.9.0
Dataset results
364 results for “developmental stage”
Fig. 1. N in Obtaining Oviparous Grass Snake, Natrix Natrix (Serpentes, Colubridae), Embryos At Early Developmental Stages By Caesarean Section
Fig. 1. N. natrix embryos at developmental stages A. 20. B. 22. C. 24. D. 25. E. 26. F. 27: av —auditory vesicle; cl —crystalline
Host developmental stages shape the evolution of a plant RNA virus
<p>Datasets used in the generation of figures 1 and 2 of:</p> <p>Melero, I., González, R., Elena, S.F. 2022. Host developmental stages shape the evolution of a plant RNA Virus. Philos. Trans. R. Soc. B doi: 10.1098/rtsb.2022.0005</p>
Figs 45–48 in Morphology Of Developmental Stages Of Philonthus Fumarius (Gravenhorst, 1806) (Coleoptera, Staphylinidae) With Notes On Biology
Figs 45–48. Ph. fumarius, imago. 45 = Habitus; 46-48 = aedeagus in dorsal aspect (46), lateral aspect (47) and ventral aspect (48).
Figs 29–32 in Morphology Of Developmental Stages Of Philonthus Fumarius (Gravenhorst, 1806) (Coleoptera, Staphylinidae) With Notes On Biology
Figs 29–32. Ph. fumarius, mature larva. 29 = Abdominal segment IX and X in dorsal aspect (Ug – urogomphus, 1, 2… – codes of setae); 30 = abdominal segment IX and X in ventral aspect (Ug – urogomphus, 1, 2… – codes of setae); 31 = abdominal segment IX and X in lateral aspect (Ug – urogomphus, A – microstructure of abdominal segment X); 32 = urogomphus (I, II – segments, 1,
Figs 24–28 in Morphology Of Developmental Stages Of Philonthus Fumarius (Gravenhorst, 1806) (Coleoptera, Staphylinidae) With Notes On Biology
Figs 24–28. Ph. fumarius, mature larva. 24 = pronotum (I) and mesonotum (II) (Cs – coeloconic sensillum); 25 = prothorax in ventral aspect (Cr – cervicosternum with microstructure [A], Sn – sternite); 26 = abdominal tergite I and II (a, b, c – pores, 1, 2… – codes of setae, Ca – coeloconic sensilla); 27 = abdominal segments I and II in lateral aspect (Ps – parasternite, Pt – paratergite, Sp – spiracle, St – sternite Te – tergite); 28 = abdominal sternite I and II (1, 2… – codes of setae, a, b, c –
Figs 20–23 in Morphology Of Developmental Stages Of Philonthus Fumarius (Gravenhorst, 1806) (Coleoptera, Staphylinidae) With Notes On Biology
Figs 20–23. Ph. fumarius, mature larva. 20 = Hypopharynx; 21 = labium in ventral aspect (Lg – ligula, Pmnt – prementum, Pl – labial palp, I-III – segments of labial palp); 22 = fore femur (Fe) and tibia (Tb) with tarsungulus (Tu) in anterior aspect (a, b – codes of pores, 1, 2, … – codes of setae); 23
Figs 10–14 in Morphology Of Developmental Stages Of Philonthus Fumarius (Gravenhorst, 1806) (Coleoptera, Staphylinidae) With Notes On Biology
Figs 10–14. Ph. fumarius, head, mature larva. 10 = Head in dorsal aspect (a–c – pores, E – epicranial part, Gl – gland, Gp – glandular pit, Na – nasale, P – posterior part, 1, 2. – codes of setae); 11 = head in ventral aspect (Ap – apotome, Tp – tentorial pit); 12 = apotome (Ap) and tentorial pits (Tp) (Gp - glandular pit); 13 = right antenna in dorsal aspect (I-IV – antennal segments); 14 = apical part of right antenna in dorsal aspect (Sa – sensory appendage, So – solenidia, III and IV – antennal segments)
Figs 36–44 in Morphology Of Developmental Stages Of Philonthus Fumarius (Gravenhorst, 1806) (Coleoptera, Staphylinidae) With Notes On Biology
Figs 36–44. Ph. fumarius, pupa. 36 = Microstructure of abdominal sternite; 37 = functional spiracles of third pair; 38, 39 = atrophied spiracles of abdominal segment VI (38) and VII (39); 40 = lateral cuticular structure of first abdominal tergite; 41 = lateral margin of abdominal segment IX in female; 42, 43 = terminal prolongation (Tp); 44 = apical part of ventral abdominal prolongation in female.
Figs 15–19 in Morphology Of Developmental Stages Of Philonthus Fumarius (Gravenhorst, 1806) (Coleoptera, Staphylinidae) With Notes On Biology
Figs 15–19. Ph. fumarius, head, mature larva. 15 = nasale in dorsal aspect (Mt – median tooth, Og – olfactory organ, Pmt – paramedian tooth); 16 = epipharynx; 17 = right mandible in dorsal aspect; 18 = right maxilla in dorsal aspect (Cd – cardo, Ma – mala, Pf – palpifer, Pm – maxillary palp, St – stipes, I–IV maxillary palp segments); 19 = anterior part of stipes in dorsal aspect (Ma – mala, Pf – palpifer, Pm – maxillary palp, St – stipes)
Fig. 1 in Impacts of azadirachtin and chlorantraniliprole on the developmental stages of pirate bug predators (Hemiptera: Anthocoridae) of the tomato pinworm Tuta absoluta (Lepidoptera: Gelechiidae)
Fig. 1. Longevity (days ± SE) of nymphs of Amphiareus constrictus exposed to azadirachtin and chlorantraniliprole via three routes of exposure (ingestion, residue contact and direct spray). *Comparison between two bars is statistically significant (t-test, P <0.05).
Fig. 4 in Impacts of azadirachtin and chlorantraniliprole on the developmental stages of pirate bug predators (Hemiptera: Anthocoridae) of the tomato pinworm Tuta absoluta (Lepidoptera: Gelechiidae)
Fig. 4. Proportion of nymphs of Blaptostethus pallescens that reached the adult stage afer early exposure to azadirachtin and chlorantraniliprole via three routes of exposure (ingestion, residue contact and direct spray). *Comparison between two bars is statistically significant (survival analysis/log rank test, P <0.05).
Fig.1 Tomopteris pacifica. Developmental stages. SEM images. A in Development and structure of the anterior nervous system and sense organs in the holopelagic annelid Tomopteris spp. (Phyllodocida, Errantia)
Fig.1 Tomopteris pacifica. Developmental stages. SEM images. A Spherical trochophore ca. 48–72-h post-fertilization. B Elongated embryo at ca. 5 days post-fertilization (dpf) with four segments and rudiments of parapodia, Roman numerals refer to segment numbers. C Dorsal view of larva/juvenile at 6–7 dpf showing parapodia formation; note first cirruslike appendage. Nuchal organs (no) visible as cilia semicircles in front of the prototroch (pt). D Ventral view of larva/juvenile at ca. 8–10 dpf. E
Figure 2 in Heart rate response and bimodal gas eXchange in three developmental stages of the bullfrog Lithobates catesbeianus (Anura: Ranidae)
Figure 2. Representative data recording of electrocardiogram (A) and aerial ventilation (B) in a premetamorphic Lithobates catesbeianus at 25°C. In B the signals show a ventilatory event where the tadpole renewed the air in its lungs, resulting in a marked drop in PO2 and an increase in PCO2. Following the ventilatory event, the expired air was mixed with the remaining air within the closed respirometry system, resulting in a PO2 slightly lower, and a PCO2 slightly greater, than before ventilation.
Figure 1 in Heart rate response and bimodal gas eXchange in three developmental stages of the bullfrog Lithobates catesbeianus (Anura: Ranidae)
Figure 1. Scheme of non-invasive apparatus to measure gas exchange in water (A) and air (B), and heart rate (C).
Figure 4 in Heart rate response and bimodal gas eXchange in three developmental stages of the bullfrog Lithobates catesbeianus (Anura: Ranidae)
Figure 4. Mass-specific oxygen consumption (A) and carbon dioxide released (B) for aerial (red lines and points) and aquatic (blue lines and points) gas exchange during development of Lithobates catesbeianus.
Figure 5 in Heart rate response and bimodal gas eXchange in three developmental stages of the bullfrog Lithobates catesbeianus (Anura: Ranidae)
Figure 5. Relationship between Log whole-body oxygen consumption (A) and carbon dioxide release (B) (µmol h-1) in 10 air (filled symbols) and water (open symbols), and Log10 body mass (g) in larval (blue triangles), premetamorphic (orange squares) and metamorphic (green circles) stages of Lithobates catesbeianus. Each point represents a measurement from a single animal. The regression lines correspond to aerial (red) and aquatic (blue) gas exchange. Dotted lines represent no significant correlation.
Text-fig. 3. Simplified geological map of the Krkonoše Piedmont Basin (based on Blecha et al. 1997) with the palaeogeographic outline of the Rudník lake deposits. The site of Vrchlabí – road cut represents the complete Rudník "Horizon" sequence with record of various developmental stages of the lake. Numbers of sites are simplified. in Permian Fauna Of The Krkonoše Piedmont Basin (Bohemian Massif, Central Europe)
Text-fig. 3. Simplified geological map of the Krkonoše Piedmont Basin (based on Blecha et al. 1997) with the palaeogeographic outline of the Rudník lake deposits. The site of Vrchlabí – road cut represents the complete Rudník "Horizon" sequence with record of various developmental stages of the lake. Numbers of sites are simplified.
Fig. 1 in Overwintering developmental stages of emerald ash borer in North Carolina
Fig. 1. Length of the terminal process of emerald ash borer (Agrilus planipennis) larvae collected under bark in the winters of 2017 to 2020 (n = 547 total).
Fig. 2 in Overwintering developmental stages of emerald ash borer in North Carolina
Fig. 2. (A) Balcha indica (Eupelmidae); (B) Eurytoma sp. (Eurytomidae); (C) Spathius sp. (Braconidae: Doryctinae); (D) Atanycolus cf. cappaerti (Braconidae: Braconinae); (E) Xorides humeralis (Ichneumonidae: Xoridinae). Not to scale. Photographs by Matt Bertone.
Text-fig. 6. Scanning electron micrographs of multicarpellate and apocarpous floral structures from the Early Cretaceous Puddledock locality, Virginia, USA (a, b: PP43701, Puddledock sample 001; c: PP43000x, Puddledock sample 073). a) Anacostia? sp., strongly compressed, elongated receptacle with spirally arranged carpels (red dots; not all shown); note larger size compared to the other floral structures; b) Numerous Anacostia type pollen grains in proximal view from the base of floral structure in (a); note graded reticulum over the proximal pole of the pollen grains; c) Elongated receptacle with numerous carpels in a spiral arrangement, possibly representing an earlier developmental stage of Anacostia? sp. Scale bars = 1 mm (a, c), 10 µm (b). in Multiparted, Apocarpous Flowers From The Early Cretaceous Of Eastern North America And Portugal
Text-fig. 6. Scanning electron micrographs of multicarpellate and apocarpous floral structures from the Early Cretaceous Puddledock locality, Virginia, USA (a, b: PP43701, Puddledock sample 001; c: PP43000x, Puddledock sample 073). a) Anacostia? sp., strongly compressed, elongated receptacle with spirally arranged carpels (red dots; not all shown); note larger size compared to the other floral structures; b) Numerous Anacostia type pollen grains in proximal view from the base of floral structure in (a); note graded reticulum over the proximal pole of the pollen grains; c) Elongated receptacle with numerous carpels in a spiral arrangement, possibly representing an earlier developmental stage of Anacostia? sp. Scale bars = 1 mm (a, c), 10 µm (b).
ScienceDex guides
Understand access before you commit
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.