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Figure 4 from: Ronquist F, Nylander JAA, Vårdal H, Nieves-Aldrey JL (2018) Life history of Parnips and the evolutionary origin of gall wasps. Journal of Hymenoptera Research 65: 91-110. https://doi.org/10.3897/jhr.65.24115
Figure 4 Galls inside the seed capsules of Papaverrhoeas opened in October may contain pupae of Barbotiniaoraniensis (a) or Parnipsnigripes (b). Parnips pupae are always found together with minute remnants of the terminal-instar larva of Barbotinia (arrow). Chambers occupied by healthy Barbotinia pupae do not contain remnants of other insects. Galls parasitized by Parnips are indistinguishable externally from normal Barbotinia galls but the wall is slightly thicker.
Figure 2 from: Ronquist F, Nylander JAA, Vårdal H, Nieves-Aldrey JL (2018) Life history of Parnips and the evolutionary origin of gall wasps. Journal of Hymenoptera Research 65: 91-110. https://doi.org/10.3897/jhr.65.24115
Figure 2 Habitus of the adult female of Barbotiniaoraniensis (a) and its parasitoid Parnipsnigripes (b).
Figure 1 from: Ronquist F, Nylander JAA, Vårdal H, Nieves-Aldrey JL (2018) Life history of Parnips and the evolutionary origin of gall wasps. Journal of Hymenoptera Research 65: 91-110. https://doi.org/10.3897/jhr.65.24115
Figure 1 Phylogenetic relationships among cynipids, core figitids, figitoid inquilines and other cynipoids (simplified from Ronquist et al. 2015). Numbers are Bayesian posterior probabilities in a combined analysis of morphological and molecular data, and the width of each clade is proportional to the number of species included in the analysis. The species studied in this paper are among the figitoid inquilines and in the cynipid tribe Aylacini, and their position is shown in the tree with thick arrows. The blue boxes indicate groups that are inquilines (or parasitoids in the case of Paraulacini); all other cynipids are gall inducers as far as is known. At least two cynipid tribes appear to have originated from inquilines (Synergini and Ceroptresini), possibly also a third (Diastrophini).
Figure 4 from: Yan Z-L, Ma H-F, Mao Y-L, Liu L (2018) Gravid females of Cephalcia chuxiongica (Hymenoptera, Pamphiliidae) are attracted to egg-carrying needles of Pinus yunnanensis. Journal of Hymenoptera Research 65: 157-166. https://doi.org/10.3897/jhr.65.26341
Figure 4 Paired comparison of trend responses of gravid females of Cephalciachuxiongica to attractive odors P one pine shoot G one gravid female PGE one pine shoot with one female and her fresh eggs on the needles PE one pine shoot with fresh eggs but no female NE needles' extract EL eggs' eluent. *Indicates that the trend rate to the odor is statistically significantly higher than that to the other odor in this pair (P < 0.05, nonparametric Wilcoxon matched pairs test, two-tailed).
Figure 2 from: Bogusch P, van Achterberg C, Šilhán K, Astapenková A, Heneberg P (2018) Description of mature larvae and ecological notes on Gasteruption Latreille (Hymenoptera, Evanioidea, Gasteruptiidae) parasitizing hymenopterans nesting in reed galls. Journal of Hymenoptera Research 65: 1-21. https://doi.org/10.3897/jhr.65.26645
Figure 2 Map with occurrence of Hylaeuspectoralis (yellow) and Gasteruptionphragmiticola together with Hylaeuspectoralis (red) in the localities studied. No localities of Gasteruptionphragmiticola without the presence of H.pectoralis were recorded. Empty circles represent the localities where these species have not been recorded.
Figure 3 from: Bogusch P, van Achterberg C, Šilhán K, Astapenková A, Heneberg P (2018) Description of mature larvae and ecological notes on Gasteruption Latreille (Hymenoptera, Evanioidea, Gasteruptiidae) parasitizing hymenopterans nesting in reed galls. Journal of Hymenoptera Research 65: 1-21. https://doi.org/10.3897/jhr.65.26645
Figure 3 Nests with larvae of Gasteruption. A Larva of Gasteruptionnigrescens in nest of Heriadesrubicola (Hungary, Szeged, 2017) B Larva of Gasteruptionnigrescens in nest of Hoplitisleucomelana (Czech Republic, Novozámecký fish pond, 2018) C Larva of Gasteruptionphragmiticola in nest of Hylaeuspectoralis (Czech Republic, Novozámecký fish pond, 2018) D larva of Gasteruptionphragmiticola extracted from nest of Hylaeuspectoralis (Czech Republic, Dubno, 2015).
Figure 1 from: Yan Z-L, Ma H-F, Mao Y-L, Liu L (2018) Gravid females of Cephalcia chuxiongica (Hymenoptera, Pamphiliidae) are attracted to egg-carrying needles of Pinus yunnanensis. Journal of Hymenoptera Research 65: 157-166. https://doi.org/10.3897/jhr.65.26341
Figure 1 Oviposition selection of gravid females of Cephalciachuxiongica in pine shoots with vs. without 'pioneer' females. *Indicates a statistically significant difference (P < 0.05) between mean numbers of delivery females on the shoots with and without 'pioneer' females (non-parametric Wilcoxon matched pairs test, two-tailed).
Figures 6-12 from: Li T-J, Carpenter JM (2018) A taxonomic account of the genus Labus de Saussure, 1867 (Hymenoptera, Vespidae, Eumeninae) with descriptions of three new species. Journal of Hymenoptera Research 65: 23-46. https://doi.org/10.3897/jhr.65.26976
Figures 6-12 Labussparsipunctus sp. n. 6 habitus of holotype (dorsal view), ♀ 7 habitus of paratype (dorsal view), ♂ 8 head of holotype (frontal view), ♀ 9 frontal fovea of holotype, ♀ 10 head of paratype (frontal view), ♂ 11 propodeum of paratype (dorsal view), ♂ 12 metasomal petiole of paratype, ♂.
Figure 3 from: Yan Z-L, Ma H-F, Mao Y-L, Liu L (2018) Gravid females of Cephalcia chuxiongica (Hymenoptera, Pamphiliidae) are attracted to egg-carrying needles of Pinus yunnanensis. Journal of Hymenoptera Research 65: 157-166. https://doi.org/10.3897/jhr.65.26341
Figure 3 Trend rates of virgin females of Cephalciachuxiongica to volatiles in one-way choice tests. P one pine shoot V one virgin female G one gravid female PGE one pine shoot with one female and her fresh eggs on the needles PE one pine shoot with fresh eggs but no female NE needles' extract EL eggs' eluent. *Indicates a statistically significant difference (P < 0.05) between the trend rates of the virgin females to the odor and to clean air (nonparametric Wilcoxon matched pairs test, twotailed).
Figures 36-41 from: Li T-J, Carpenter JM (2018) A taxonomic account of the genus Labus de Saussure, 1867 (Hymenoptera, Vespidae, Eumeninae) with descriptions of three new species. Journal of Hymenoptera Research 65: 23-46. https://doi.org/10.3897/jhr.65.26976
Figures 36-41 Labuspusillus van der Vecht, 1963. 36 habitus, ♀ 37 head in frontal view, ♀ 38 head in frontal view, ♂ 39 habitus, ♂ 40 propodeum in dorsal view, ♀ 41 metasomal petiole, ♀.
Figures 32-35 from: Li T-J, Carpenter JM (2018) A taxonomic account of the genus Labus de Saussure, 1867 (Hymenoptera, Vespidae, Eumeninae) with descriptions of three new species. Journal of Hymenoptera Research 65: 23-46. https://doi.org/10.3897/jhr.65.26976
Figures 32-35 Labusphilippinensis Giordani Soika, 1986. 32 habitus, ♀ 33 habitus, ♂ 34 head in frontal view, ♀ 35 head in frontal view, ♂.
Figures 25-31 from: Li T-J, Carpenter JM (2018) A taxonomic account of the genus Labus de Saussure, 1867 (Hymenoptera, Vespidae, Eumeninae) with descriptions of three new species. Journal of Hymenoptera Research 65: 23-46. https://doi.org/10.3897/jhr.65.26976
Figures 25-31 Labuslofuensis Giordani Soika, 1973. 25 habitus, ♀ 26 habitus, ♂ 27 head in frontal view, ♀ 28 frontal fovea, ♀ 29 propodeum in lateral view, ♂ 30 metasomal petiole, ♂ 31 head in frontal view, ♂.
Figure 4 from: Bogusch P, van Achterberg C, Šilhán K, Astapenková A, Heneberg P (2018) Description of mature larvae and ecological notes on Gasteruption Latreille (Hymenoptera, Evanioidea, Gasteruptiidae) parasitizing hymenopterans nesting in reed galls. Journal of Hymenoptera Research 65: 1-21. https://doi.org/10.3897/jhr.65.26645
Figure 4 Larvae of Gasteruption. Gasteruptionassectator. A mature larva, lateral view B mature larva, dorsal view C head – mouthparts. GasteruptionnigrescensD mature larva, lateral view E mature larva, dorsal view F head – mouthparts. GasteruptionphragmiticolaG mature larva, lateral view H mature larva, dorsal view I head – mouthparts.
Supplementary material 2 from: Battiston R, Puttaswamaiah R, Manjunath N (2018) The fishing mantid: predation on fish as a new adaptive strategy for praying mantids (Insecta: Mantodea). Journal of Orthoptera Research 27(2): 155-158. https://doi.org/10.3897/jor.27.28067
: Explanation note: The mantid resting under a leaf during the day.
Supplementary material 1 from: Battiston R, Puttaswamaiah R, Manjunath N (2018) The fishing mantid: predation on fish as a new adaptive strategy for praying mantids (Insecta: Mantodea). Journal of Orthoptera Research 27(2): 155-158. https://doi.org/10.3897/jor.27.28067
: Explanation note: The mantid eating another fish from the head.
Fig 2 from: Battiston R, Puttaswamaiah R, Manjunath N (2018) The fishing mantid: predation on fish as a new adaptive strategy for praying mantids (Insecta: Mantodea). Journal of Orthoptera Research 27(2): 155-158. https://doi.org/10.3897/jor.27.28067
Fig 2 Hierodulatenuidentata eating Poeciliareticulata from the tail while the fish is still alive and breathing in the water. Photo by R. Puttaswamaiah.
Fig 1 from: Battiston R, Puttaswamaiah R, Manjunath N (2018) The fishing mantid: predation on fish as a new adaptive strategy for praying mantids (Insecta: Mantodea). Journal of Orthoptera Research 27(2): 155-158. https://doi.org/10.3897/jor.27.28067
Fig 1 The artificial pond with the male of Hierodulatenuidentata eating a Poeciliareticulata. Photo by R. Puttaswamaiah.
Fig 2 from: Gardiner T, Fargeaud K (2018) Build it and they will come: grasshoppers check-in to a grassland insect hotel. Journal of Orthoptera Research 27(2): 159-161. https://doi.org/10.3897/jor.27.28385
Fig 2 Male field grasshopper, Chorthippusbrunneus, on fourth-floor reed bundle, observed stridulating. Photo credit: T. Gardiner.
Figures 7-9 from: Mauss V, Prosi R (2018) Identity and distribution of Celonites hermon Gusenleitner, 2002 (Hymenoptera, Vespidae, Masarinae) from the Middle East with a description of the hitherto unknown male. Journal of Hymenoptera Research 66: 55-70. https://doi.org/10.3897/jhr.66.29795
Figures 7-9 Head of male Celoniteshermon in dorsal view (dbM No. 3456) 8 Metasomal sternum VIII of male of C.hermon in ventral view (dbM No. 3689) 9 Male genital of Celoniteshermon (dbM No. 3689) a in dorsal b ventral view.
Figures 2-6 from: Mauss V, Prosi R (2018) Identity and distribution of Celonites hermon Gusenleitner, 2002 (Hymenoptera, Vespidae, Masarinae) from the Middle East with a description of the hitherto unknown male. Journal of Hymenoptera Research 66: 55-70. https://doi.org/10.3897/jhr.66.29795
Figures 2-6 Head of female of Celoniteshermon (dbM No. 3685) 2 in frontal view 3 in lateral view showing pollen collecting apparatus with "knobbed" setae on frons and clypeus 4 in dorsal view 5–6 Metasoma of Celoniteshermon in dorsal view 5 female (dbM No. 3685) 6 male (dbM No. 3689).
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.