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2,291 results for “life history”
Figs. 22–33 in Description and life history of a new cecidogenous species of Palaeomystella Fletcher (Lepidoptera, Momphidae) from Brazil
Figs. 22–33. Scanning electron micrographs of Palaeomystella beckeri last larval instar: (22) head, dorsal view; (23) head and prothorax, lateral; (24) labrum, mandible and antena, lateral; (25) maxilla, lateral; (26) spinneret, lateral; (27) stemmata, lateral; (28) prothoracic shield, dorsal; (29) thoracic leg, postero-lateral; (30) tarsal claw, posterolateral; (31) prothoracic spiracle; (32) prothoracic lateral setae; (33) pseudopodium on abdominal segment A3, antero-lateral (arrow indicates chochets). Scale bars = 200, 200, 50, 20, 20, 50, 200, 50, 10, 50, 50 and 50 µm, respectively.
Figs. 26–28. Elachista synethes Meyrick, 1897. 26 in A morphological reappraisal of the immature stages and life history of Elachista synethes Meyrick (Lepidoptera, Elachistidae), an Australian leaf miner alien to Chile
Figs. 26–28. Elachista synethes Meyrick, 1897. 26, pupa in dorsal, 27, ventral and 28, lateral views, respectively. Scale bar = 300 µm.
Figs. 1–4. Elachista synethes Meyrick, 1897 in A morphological reappraisal of the immature stages and life history of Elachista synethes Meyrick (Lepidoptera, Elachistidae), an Australian leaf miner alien to Chile
Figs. 1–4. Elachista synethes Meyrick, 1897. Egg: 1, dorsolateral view; 2, chorionic cells showing location of aeropyles (indicated by closed arrow in Fig. 1); 3, micropylar region (indicated by open arrow in Fig. 1); 4, aeropyle in detail. Scale bars = 50, 10, 5 and 1 µm, respectively.
Figs. 46–47 in A morphological reappraisal of the immature stages and life history of Elachista synethes Meyrick (Lepidoptera, Elachistidae), an Australian leaf miner alien to Chile
Figs. 46–47. Transverse histological sections of leaf of Bromus catharticus, showing the organization levels of mine of Elachista synethes Meyrick, 1897 in relation to larval ontogeny: 46, first instar, initial, linear section of mine; 47, last instar, final, blotch section of mine. Asterisks indicate leaf mines.Ab abaxial surface of epidermis; Ad adaxial surface of epidermis; Me mesophyll; Ph phloem; Sc sclerenchyma; Xy xylem. Scale bars = 150 and 400 µm, respectively.
Figure 1 in Life history traits in Bufotes variabilis (Pallas, 1769) from 2 different altitudes in Turkey
Figure 1. Cross-sections at the diaphysis level of a phalanx of a male (A) and a female (B) of Bufotes variabilis individuals (m.c. = marrow cavity, e.b. = endosteal bone). The LAGs are indicated by black arrows.
Figure 9 in Effects of salinity tolerances on survival and life history of 2 cladocerans
Figure 9. Body morphology parameters curves of S. mucronata for the various salt concentrations (±standard error) due to time (with 95% confidence interval).
Figure 8 in Effects of salinity tolerances on survival and life history of 2 cladocerans
Figure 8. Growth rate of S. vetulus under different salt concentrations (with regression equations) in 8-day experiments (with 95% confidence interval).
Figure 7 in Effects of salinity tolerances on survival and life history of 2 cladocerans
Figure 7. Growth rate of S. mucronata under different salt concentrations (with regression equations) in 8-day experiments (with 95% confidence interval).
Figure 4 in Effects of salinity tolerances on survival and life history of 2 cladocerans
Figure 4. Total progeny of S. vetulus under different salt concentrations (with regression equations) in 8-day experiments (with 95% confidence interval).
Figure 2 in Effects of salinity tolerances on survival and life history of 2 cladocerans
Figure 2. Survivorship curves of S. vetulus under different salt concentrations (with regression equations) in 8-day experiments (n = 6; ±standard error; P <0.05).
Figure 2. A in Altitudinal effects on the life history of the Anatolian lizard (Apathya cappadocica, Werner 1902) from southeastern Anatolia, Turkey
Figure 2. A) Cross-sections (18 µm) at the diaphysis level of a phalanx of Apathya cappadocica in Diyarbakır (SVL: 61.82; ♀); B) Apathya cappadocica in Şanlıurfa (SVL: 70.86; ♀). The LAGs are indicated by black arrows (m.c. = marrow cavity, e.b. = endosteal bone).
Figure 1 in Altitudinal effects on the life history of the Anatolian lizard (Apathya cappadocica, Werner 1902) from southeastern Anatolia, Turkey
Figure 1. Geographic distribution of Apathya cappadocica populations from different altitudes in southeastern Anatolia, Turkey.
Figure 3 in Altitudinal effects on the life history of the Anatolian lizard (Apathya cappadocica, Werner 1902) from southeastern Anatolia, Turkey
Figure 3. Mathematical relationship between SVL and age in females and males of Apathya cappadocica in Şanlıurfa.
Figure. Age-specific survival rate (lx) and natality (m x) of Axinoscymnus apioides at different temperatures (20 °C, 23 °C, 26 °C, 29 °C, and 32 °C). in Temperature influences the development, survival, and life history of Axinoscymnus apioides Kuznetsov & Ren (Coleoptera: Coccinellidae), a predator of whitefly
Figure. Age-specific survival rate (lx) and natality (m x) of Axinoscymnus apioides at different temperatures (20 °C, 23 °C, 26 °C, 29 °C, and 32 °C).
Figure 1. a–c in Pelvic and sacral size dimorphism and allometry in two predatory carnivores with different life histories and locomotory adaptations
Figure 1. a–c) Pelvic and sacral measures used in the study. All abbreviations and measures [GL (1–1´); GBTc (2–2´); SB (3–3´); GBA (4–4´); SBI (5–5´); GBTi (6–6´); LAR (7–7´); LFo (8–8´); BFo (9–9´); BPuS (10–10´); LPuS (11–11´); PL (12–12´); GB (13–13´); BFcr (14–14´); HFcr (15–15´)] are explained in Section 2.
Figure 3 in The life history of Euborellia annulipes (Lucas) (Dermaptera: Anisolabididae) fed on larvae and pupae of Plutella xylostella (L.) Lepidoptera: Plutellidae
Figure 3. Weight (mean ± SE) of the nymphs in (a) first, (b) second, (c) third, (d) fourth, and (e) fifth instars and of (f) adults of Euborellia annulipes fed on an artificial diet, fourth instar larvae, and pupae of Plutella xylostella with different ages (days of development). Different letters on bars indicate significant differences among treatments in each treatment (as analyzed by the Student-Newman-Keuls test, p <0.05); ns = no significant differences among treatments.
Figure 2 in The life history of Euborellia annulipes (Lucas) (Dermaptera: Anisolabididae) fed on larvae and pupae of Plutella xylostella (L.) Lepidoptera: Plutellidae
Figure 2. Survival of Euborellia annulipes adult females fed on an artificial diet, fourth instar larvae, and pupae of Plutella xylostella at different ages (days of development). Different letters indicate significant differences among treatments according to the log-rank test (p <0.05).
Figure 1 in The life history of Euborellia annulipes (Lucas) (Dermaptera: Anisolabididae) fed on larvae and pupae of Plutella xylostella (L.) Lepidoptera: Plutellidae
Figure 1. Developmental time (mean ± SE) of the nymph stages of Euborellia annulipes fed on an artificial diet, fourth instar larvae, and pupae with different ages (days of development) of Plutella xylostella. Means followed by the same letter in the bars are not significantly different among treatments by the Student-Newmann-Keuls test (p <0.05).
Fig. 3 in Adaptations, life-history traits and ecological mechanisms of parasites to survive extremes and environmental unpredictability in the face of climate change
Fig. 3. Flow chart outlining factors that can influence the response of parasites to climate change.
Fig. 2. Predicted probabilities and 95 in Is it best on the nest? Effects of avian life-history on haemosporidian parasitism
Fig. 2. Predicted probabilities and 95% confidence intervals of haemosporidian parasitism (Plasmodium, Haemoproteus, and Leucocytozoon). Expected prevalence illustrated according to haemosporidia genera; Plasmodium represented with "P" (a), Haemoproteus represented with "H" (b–c), Leucocytozoon represented with "L" (d–f). Note that in some instances symbol size exceeded the range of confidence intervals.
ScienceDex guides
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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.