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F I G U R E 1 in Toward optimising reproductive output of Eristalis tenax (Diptera: Syrphidae) for commercial mass rearing systems
F I G U R E 1 Percentage of mated Eristalis tenax females in a captive population over time following eclosion (mean ± SE); 2 weeks (n = 15), 4 weeks (n = 29), 5 weeks (n = 15), 7 weeks (n = 4), 9 weeks (n = 16).
F I G U R E A 1 Oocytes. Figure A1 in Reproductive biology of the electric lanternfish Electrona risso (Myctophidae) and the bigscale fishes Melamphaes polylepis and Scopelogadus mizolepis (Melamphaidae)
F I G U R E A 1 Oocytes. Figure A1: Oocytes of female Electrona risso per reproductive phase (see Table 1), photographed with reflected light. Photography by K. Wieben.
F I G U R E 5 in Reproductive biology of the electric lanternfish Electrona risso (Myctophidae) and the bigscale fishes Melamphaes polylepis and Scopelogadus mizolepis (Melamphaidae)
F I G U R E 5 Maturity ogives (solid lines) for females of (a) Electrona risso, (b) Melamphaes polylepis, and (c) Scopelogadus mizolepis. Vertical slashes are single observations, and open circles illustrate the proportions of mature individuals per 2-mm size class. Dotted lines are 95% C.I., and dashed lines and filled black dots indicate the length at which 50% of the individuals are mature (L). R2 values are 50 McFadden's R2.
F I G U R E 6 in Reproductive biology of the electric lanternfish Electrona risso (Myctophidae) and the bigscale fishes Melamphaes polylepis and Scopelogadus mizolepis (Melamphaidae)
F I G U R E 6 Gonado-somatic index of females of (a) Electrona risso, (b) Melamphaes polylepis, and (c) Scopelogadus mizolepis, per reproductive phase. I, immature; II, early developing; III, developing; IV, spawning capable; V, actively spawning (see also Table 1). All neighboring values differ significantly (p <0.05).
F I G U R E 4 in Reproductive biology of the electric lanternfish Electrona risso (Myctophidae) and the bigscale fishes Melamphaes polylepis and Scopelogadus mizolepis (Melamphaidae)
F I G U R E 4 Melamphaes polylepis ovarian development. Reproductive phases based on Table 1. Macroscopic development in female gonads (left panels) and histological cross-sections of ovaries (right panels). CA, cortical alveoli oocyte; GVBD, germinal vesicle (nucleus) breakdown oocyte; nu, nucleus; PG, primary growth oocyte; POF, postovulatory follicle; Vtg1–3, primary to tertiary vitellogenic oocyte; yg, yolk granules; yv, yolk vesicle. Photography by A. Knorrn.
F I G U R E 3 in Reproductive biology of the electric lanternfish Electrona risso (Myctophidae) and the bigscale fishes Melamphaes polylepis and Scopelogadus mizolepis (Melamphaidae)
F I G U R E 3 Electrona risso ovarian development. Reproductive phases based on Table 1. Macroscopic development in female gonads (left panels) and histological cross-sections of ovaries (right panels). A, atresia; CA, cortical alveoli oocyte; GVBD, germinal vesicle (nucleus) breakdown oocyte; GVM, germinal vesicle migration oocyte; HYD, hydrated oocyte; PG, primary growth oocyte; Vtg1–3, primary to tertiary vitellogenic oocyte; yg, yolk granules; yv, yolk vesicle. Photography by K. Wieben.
F I G U R E 1 in Reproductive biology of the electric lanternfish Electrona risso (Myctophidae) and the bigscale fishes Melamphaes polylepis and Scopelogadus mizolepis (Melamphaidae)
F I G U R E 1 Mesopelagic net sampling stations (circles) and locations where (a) Electrona risso, (b) Melamphaes polylepis, and (c) Scopelogadus mizolepis were caught (black circles) in the eastern Central Atlantic during the 383rd cruise of the FFS Walther Herwig III in March and April 2015. Land mass is shown in light gray and ocean in dark gray.
Fig. 2 in Relative growth of freshwater prawn Macrobrachium brasiliense (Decapoda, Palaemonidae) and its implications for reproduction
Fig. 2. Scatterplots of the morphometric relationships for males of Macrobrachium brasiliense (Heller, 1862) (CL, carapace length; PW, pleura width; IL, ischial length; ML, merus length; CRL, carpus length; PPL, propodus length; DCL, dactYl length; PPH, propodus height; measurements in mm).
Fig. 1 in Relative growth of freshwater prawn Macrobrachium brasiliense (Decapoda, Palaemonidae) and its implications for reproduction
Fig. 1. Structures selected for morphometric analYsis (CL, carapace length; PW, pleura width; IL, ischial length; ML, merus length; CRL, carpus length; PPL, propodus length; DCL, dactYl length; PPH, propodus height; measurements in mm). Adapted from MELO (2003).
Fig. 3 in Population structure and reproductive biology of Haemulopsis corvinaeformis (Perciformes, Haemulidae) in the south coast of Pernambuco, northeastern Brazil
Fig. 3. Monthly average (±SD) of the total length (TL, cm) of males, females and pooled sexes of Roughneck Grunt, Haemulopsis corvinaeformis (Steindachner, 1868), captured from August 2011 to July 2012, off the coast of state of Pernambuco, northeastern Brazil. Different letters indicate significant size differences between months for pooled sexes (∗, significant sizes differences between males and females; ∗∗, significant differences in sexual ratio).
Fig. 5 in Population structure and reproductive biology of Haemulopsis corvinaeformis (Perciformes, Haemulidae) in the south coast of Pernambuco, northeastern Brazil
Fig. 5. Total length at first sexual maturity (L 50, cm) and confidence interval (IC, 95%) for females, males and pooled sexes of Roughneck Grunt, Haemulopsis corvinaeformis (Steindachner, 1868), captured from August 2011 to June 2012, off the coast of state of Pernambuco, northeastern Brazil.
Fig. 4 in Population structure and reproductive biology of Haemulopsis corvinaeformis (Perciformes, Haemulidae) in the south coast of Pernambuco, northeastern Brazil
Fig. 4. Bimonthly changes in GSI (± standard error) and frequency of the different gonadal stages for Roughneck Grunt, Haemulopsis corvinaeformis (Steindachner, 1868), captured from August 2011 to June 2012, off the coast of state of Pernambuco, northeastern Brazil (A, immature; B, maturing; C, mature; D, spawned or resting). The numbers above the line represent the sample size of GSI analysis in each bimester.
Fig. 3 in Relative growth of freshwater prawn Macrobrachium brasiliense (Decapoda, Palaemonidae) and its implications for reproduction
Fig. 3. Scatterplots of the morphometric relationships for females of Macrobrachium brasiliense (Heller, 1862) (CL, carapace length; PW, pleura width; IL, ischial length; ML, merus length; CRL, carpus length; PPL, propodus length; DCL, dactYl length; PPH, propodus height; measurements in mm).
Fig. 2 in Population structure and reproductive biology of Haemulopsis corvinaeformis (Perciformes, Haemulidae) in the south coast of Pernambuco, northeastern Brazil
Fig. 2. Absolute frequency distribution per length classes of males, females and pooled sexes for Roughneck Grunt, Haemulopsis corvinaeformis (Steindachner, 1868) captured from August 2011 to July 2014, off the coast of State of Pernambuco, northeastern Brazil. The vertical line represents the L50.
Fig. 1 in Population structure and reproductive biology of Haemulopsis corvinaeformis (Perciformes, Haemulidae) in the south coast of Pernambuco, northeastern Brazil
Fig. 1. Study area in the coast of state of Pernambuco, northeastern Brazil. Black dots represent fishing sites.
Fig. 2 in Reproductive success of Trypoxylon (Trypargilum) lactitarse (Hymenoptera: Crabronidae) in a fragmented landscape
Fig. 2. StUdY areas in the mUnicipalities of Goianápolis, Leopoldo de BUlhões, BonfinÓpolis, Anápolis, and Hidrolânida, state of Goiás, Brazil.
Fig. 7 in Reproductive success of Trypoxylon (Trypargilum) lactitarse (Hymenoptera: Crabronidae) in a fragmented landscape
Fig. 7. Results of the Generalized Linear Mixed Model (GLMM) between parasitoidism rate (proportion of nests attacked by parasitoids) and fragment size. No difference was foUnd between small and large fragments for parasitoidism rate (z = 0.394, p = 0.694).
Fig. 6 in Reproductive success of Trypoxylon (Trypargilum) lactitarse (Hymenoptera: Crabronidae) in a fragmented landscape
Fig. 6. Results of the Generalized Linear Mixed Model (GLMM) between the numbers of adults emerged from each nest and fragment size. No difference was foUnd between small and large fragments for sUrvival rate (z = 0.784, p = 0.433).
Fig. 1 in Reproductive success of Trypoxylon (Trypargilum) lactitarse (Hymenoptera: Crabronidae) in a fragmented landscape
Fig. 1. Specimen of Trypoxylon (Trypargilum) lactitarse Saussure, 1867 (HYmenoptera: Crabronidae) captured in Goianápolis, state of Goiás, Brazil.
Fig. 5 in Reproductive success of Trypoxylon (Trypargilum) lactitarse (Hymenoptera: Crabronidae) in a fragmented landscape
Fig. 5. Results of the Generalized Linear Model (GLM) between fragment size and the average nUmber of cells per fragment. No difference was found between small and large fragments for mean number of nest cells (z = 1.155, p = 0.248).
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.