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Figures 18-19 from: Ranjbar F, Jalali MA, Ziaaddini M, Gholamalizade Z, Talamas EJ (2021) Stink bug egg parasitoids (Hymenoptera, Scelionidae) associated with pistachio in Iran and description of a new species: Trissolcus darreh Talamas. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 291-308. https://doi.org/10.3897/jhr.87.72838

Figures 18-19 Trissolcus perepelovi, female (FSCA 00094875) 18 habitus, lateral view 19 head, mesosoma, metasoma, lateral view.

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Figures 1-3 from: Ranjbar F, Jalali MA, Ziaaddini M, Gholamalizade Z, Talamas EJ (2021) Stink bug egg parasitoids (Hymenoptera, Scelionidae) associated with pistachio in Iran and description of a new species: Trissolcus darreh Talamas. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 291-308. https://doi.org/10.3897/jhr.87.72838

Figures 1-3 Psix saccharicola (FSCA 00094886) 1 head, anterior view 2 head and mesosoma, lateral view 3 head, mesosoma, metasoma, dorsolateral view.

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Supplementary material 1 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912

Table S1. Genetic distances between COI sequences of Oxyscelio from southern China

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Figure 2 from: Talamas EJ, Bremer JS, Moore MR, Bon M-C, Lahey Z, Roberts CG, Combee LA, McGathey N, van Noort S, Timokhov AV, Hougardy E, Hogg B (2021) A maximalist approach to the systematics of a biological control agent: Gryon aetherium Talamas, sp. nov. (Hymenoptera, Scelionidae). In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 323-480. https://doi.org/10.3897/jhr.87.72842

Figure 2 Position and phylogenetic relationships of Hadronotus relative to other Scelionidae based on the topology depicted in Figure 1. Colored boxes above branches correspond to the level of support obtained for that branch based on the support metric. Branches annotated with a single box received equal levels of support in all analyses. The scale bar indicates the expected number of substitutions per site.

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Figure 5 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912

Figure 5 Oxyscelio stenos Mo & Chen, sp. nov., holotype, female (SCAU 3049080) A dorsal habitus B lateral habitus C head and mesosoma, dorsal view D head and mesosoma, lateral view E head, anterior view F antenna G metasoma, dorsal view H metasoma, ventral view.

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Figure 4 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912

Figure 4 Oxyscelio latheticus Mo & Chen, sp. nov., holotype, female (SCAU 3049073) A dorsal habitus B lateral habitus C head and mesosoma, dorsal view D head and mesosoma, lateral view E head, anterior view F antenna G metasoma, dorsal view H metasoma, ventral view.

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Figures 59-66 from: Talamas EJ, Bremer JS, Moore MR, Bon M-C, Lahey Z, Roberts CG, Combee LA, McGathey N, van Noort S, Timokhov AV, Hougardy E, Hogg B (2021) A maximalist approach to the systematics of a biological control agent: Gryon aetherium Talamas, sp. nov. (Hymenoptera, Scelionidae). In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 323-480. https://doi.org/10.3897/jhr.87.72842

Figures 59-66 Gryon aetherium59 female (FSCA 00094873), head, anterior view 60 female (FSCA 00094869), head, posterolateral view 61 female (FSCA 00094873), antennal clava, lateral view 62 female (FSCA 00094869), mesosoma, ventral view 63 female (FSCA 00094873), mesosoma, dorsolateral view 64 female (FSCA 00094874), mesosoma, anterolateral view 65 female (FSCA 00094874), mesosoma, posterolateral view 66 female (FSCA 00094871), hind tibia, dorsal view.

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Figure 1 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912

Figure 1 Maximum likelihood tree demonstrating the clustering of OxyscelioCOI barcodes. Bootstraps values of 50 and above are indicated.

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Figure 3 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912

Figure 3 Oxyscelio apheles Mo & Chen, sp. nov., holotype, female (SCAU 3049046) A dorsal habitus B lateral habitus C head and mesosoma, dorsal view D head and mesosoma, lateral view E head, anterior view F Antenna G metasoma, dorsal view H metasoma, ventral view.

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Figure 2 from: King K, Meuti ME, Johnson NF (2021) Identification and expression of odorant binding proteins in the egg-parasitoid Trissolcus basalis (Wollaston) (Hymenoptera, Scelionidae, Telenominae). In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 251-266. https://doi.org/10.3897/jhr.87.68954

Figure 2 Maximum likelihood tree illustrating relationships among 136 OBP sequences from Nasonia vitripennis (Nv), Apis mellifera (Am), Cephus cinctus (Cc), Trissolcus japonicus (Tj), Telenomus podisi (Tp), and Trissolcus basalis (Tb). The tree is rooted with CcOBP12. TbOBPs are depicted in bold text and branches highlighted in green, other telenomine species are highlighted in blue. TbOBPs that cluster with single-copy orthologs (SCO), paralog group 2 (P2), and the OBP59a group of McKenzie et al. (2014) are highlighted in yellow, pink, and purple respectively. All bootstrap support values ≥ 85% are indicated at the relevant nodes; lower values are reported to clarify support level at other selected nodes.

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Figure 1 from: King K, Meuti ME, Johnson NF (2021) Identification and expression of odorant binding proteins in the egg-parasitoid Trissolcus basalis (Wollaston) (Hymenoptera, Scelionidae, Telenominae). In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 251-266. https://doi.org/10.3897/jhr.87.68954

Figure 1 Position and orientation of syntenic TbOBPs present on genomic scaffolds 159 and 353. Yellow connected ribbon segments represent exon regions of each TbOBP. The black vertical lines labeled with gene names are located at the 5' end of each sequence.

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Figure 3 from: King K, Meuti ME, Johnson NF (2021) Identification and expression of odorant binding proteins in the egg-parasitoid Trissolcus basalis (Wollaston) (Hymenoptera, Scelionidae, Telenominae). In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 251-266. https://doi.org/10.3897/jhr.87.68954

Figure 3 Expression profiles for 11 TbOBPs across four tissue types as measured with qPCR: female antennae (FA), female bodies (FB), male antennae (MA), and male bodies (MB). Black data points: normalized expression (log2) for each of five biological replicates per tissue; red dots: mean expression level. Significance differences (p < 0.05) are illustrated by differences in letters, calculated using TukeyHSD ANOVA means comparison.

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Figure 6 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912

Figure 6 Oxyscelio striae Mo & Chen, sp. nov., holotype, female (SCAU 3048667) A dorsal habitus B lateral habitus C head and mesosoma, dorsal view D head and mesosoma, lateral view E head, anterior view F antenna G metasoma, dorsal view H metasoma, ventral view.

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Supplementary material 1 from: King K, Meuti ME, Johnson NF (2021) Identification and expression of odorant binding proteins in the egg-parasitoid Trissolcus basalis (Wollaston) (Hymenoptera, Scelionidae, Telenominae). In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 251-266. https://doi.org/10.3897/jhr.87.68954

TbOBP sequences; OBP sequences for gene tree; qPCR primers

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Figure 2 from: Mo W-h, Chen H-y, Pang H, Liu J-x (2021) DNA barcoding for molecular identification of the genus Oxyscelio (Hymenoptera, Scelionidae) from southern China, with descriptions of five new species. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 613-633. https://doi.org/10.3897/jhr.87.71912

Figure 2 Oxyscelio amalocarina Mo & Chen, sp. nov., holotype, female (SCAU 3049046) A dorsal habitus B lateral habitus C head and mesosoma, dorsal view D head and mesosoma, lateral view E head, anterior view F antenna G metasoma, dorsal view H metasoma, ventral view.

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Figures 13-17 from: Bremer J, van de Kamp T, Talamas EJ (2021) Janzenella theia Bremer & Talamas (Platygastroidea, Janzenellidae): a new species from Baltic amber. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 223-233. https://doi.org/10.3897/jhr.87.67256

Figures 13-17 13Janzenella theia (USNMENT01223652), profurca, posterior view 14J. theia (USNMENT01223652), mesofurca, posterior view 15J. theia, metafurca, posterior view 16J. innupta (OSUC 264397), mesotibia, lateral view 17J. innupta (OSUC 264397), metatibia, lateral view.

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Figures 9-12 from: Bremer J, van de Kamp T, Talamas EJ (2021) Janzenella theia Bremer & Talamas (Platygastroidea, Janzenellidae): a new species from Baltic amber. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 223-233. https://doi.org/10.3897/jhr.87.67256

Figures 9-12 9Janzenella innupta (OSUC 264400), fore and hind wings, dorsal view 10J. theia (USNMENT01223652), fore and hind wings, ventral view 11J. innupta (OSUC 264384), mesosoma, dorsolateral view 12J. theia (USNMENT01223652), mesosoma, posterodorsal view.

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Figures 5-8 from: Bremer J, van de Kamp T, Talamas EJ (2021) Janzenella theia Bremer & Talamas (Platygastroidea, Janzenellidae): a new species from Baltic amber. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 223-233. https://doi.org/10.3897/jhr.87.67256

Figures 5-8 5Janzenella innupta (OSUC 264384), head, anterior view 6J. theia (USNMENT01223652), head, anterior view 7J. innupta (OSUC 264384), head, dorsal view 8J. theia (USNMENT01223652), head, dorsal view.

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Figures 3- 4 from: Bremer J, van de Kamp T, Talamas EJ (2021) Janzenella theia Bremer & Talamas (Platygastroidea, Janzenellidae): a new species from Baltic amber. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 223-233. https://doi.org/10.3897/jhr.87.67256

Figures 3- 4 Janzenella theia (USNMENT01223652), head, mesosoma, metasoma 3 lateral view 4 anterolateral view.

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Figures 6-7 from: Ranjbar F, Jalali MA, Ziaaddini M, Gholamalizade Z, Talamas EJ (2021) Stink bug egg parasitoids (Hymenoptera, Scelionidae) associated with pistachio in Iran and description of a new species: Trissolcus darreh Talamas. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 291-308. https://doi.org/10.3897/jhr.87.72838

Figures 6-7 Trissolcus colemani6 female (FSCA 00093972), mesosoma, ventrolateral view 7 female (FSCA 00094244), mesosoma, dorsolateral view.

opencc-by-4.0Dec 2021View details →

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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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record