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Supplementary material 1 from: Radulovici AE, Vieira PE, Duarte S, Teixeira MAL, Borges LMS, Deagle BE, Majaneva S, Redmond N, Schultz JA, Costa FO (2021) Revision and annotation of DNA barcode records for marine invertebrates: report of the 8 th iBOL conference hackathon. Metabarcoding and Metagenomics 5: e67862. https://doi.org/10.3897/mbmg.5.67862
Figure S1 and Tables S1–S10
Supplementary material 1 from: Bossert S, van Noort S (2022) A group of two: Scrapter peringueyi is not a synonym of Scrapter heterodoxus (Hymenoptera, Colletidae, Scraptrinae). African Invertebrates 63(1): 1-18. https://doi.org/10.3897/afrinvertebr.63.76934
Multiple sequence alignment of the examined species of Scrapter
Figure 5 from: Bossert S, van Noort S (2022) A group of two: Scrapter peringueyi is not a synonym of Scrapter heterodoxus (Hymenoptera, Colletidae, Scraptrinae). African Invertebrates 63(1): 1-18. https://doi.org/10.3897/afrinvertebr.63.76934
Figure 5 Comparison of the shape of the male hind leg tibia and propodeal sculpture. AScrapter peringueyi (Cockerell, 1921), stat. rev. hind leg tibial apex, non-type male specimen (deposited in CUIC) BScrapter heterodoxus (Cockerell, 1921) hind leg tibial apex, non-type male specimen (deposited in CUIC) CScrapter peringueyi (Cockerell, 1921), stat. rev. propodeal sculpture, non-type male specimen (SAM-HYM-B007139) DScrapter heterodoxus (Cockerell, 1921) propodeal sculpture, lectotype male (SAM-HYM-B000145) EScrapter peringueyi (Cockerell, 1921), stat. rev. propodeal sculpture, holotype female (SAM-HYM-B000144) FScrapter heterodoxus (Cockerell, 1921) propodeal sculpture, non-type female (SAM-HYM-B007786).
Figure 4 from: Bossert S, van Noort S (2022) A group of two: Scrapter peringueyi is not a synonym of Scrapter heterodoxus (Hymenoptera, Colletidae, Scraptrinae). African Invertebrates 63(1): 1-18. https://doi.org/10.3897/afrinvertebr.63.76934
Figure 4 Non-type male specimen of Scrapter peringueyi (Cockerell, 1921), stat. rev. A habitus, dorsal view B habitus, lateral view C head, frontal view D propodeum E hind leg tibia F fore wing.
Figure 2 from: Bossert S, van Noort S (2022) A group of two: Scrapter peringueyi is not a synonym of Scrapter heterodoxus (Hymenoptera, Colletidae, Scraptrinae). African Invertebrates 63(1): 1-18. https://doi.org/10.3897/afrinvertebr.63.76934
Figure 2 Female non-type specimen of Scrapter heterodoxus (Cockerell, 1921), (SAM-HYM-B007786). A habitus, dorsal view B habitus, lateral view C head, frontal view D propodeum E labels F fore wing.
Figure 1 from: Bossert S, van Noort S (2022) A group of two: Scrapter peringueyi is not a synonym of Scrapter heterodoxus (Hymenoptera, Colletidae, Scraptrinae). African Invertebrates 63(1): 1-18. https://doi.org/10.3897/afrinvertebr.63.76934
Figure 1 Male lectotype of Scrapter heterodoxus (Cockerell, 1921). A habitus, dorsolateral view, and labels B habitus, lateral view C head, frontal view D propodeum E hind leg tibia F fore wing.
Figure 6 from: Bossert S, van Noort S (2022) A group of two: Scrapter peringueyi is not a synonym of Scrapter heterodoxus (Hymenoptera, Colletidae, Scraptrinae). African Invertebrates 63(1): 1-18. https://doi.org/10.3897/afrinvertebr.63.76934
Figure 6 Distribution map of Scrapter peringueyi (Cockerell, 1921) and Scrapter heterodoxus (Cockerell, 1921) based on 133 examined specimens. If several specimens were collected at the same site, they are shown as a single occurrence.
Figure 3 from: Bossert S, van Noort S (2022) A group of two: Scrapter peringueyi is not a synonym of Scrapter heterodoxus (Hymenoptera, Colletidae, Scraptrinae). African Invertebrates 63(1): 1-18. https://doi.org/10.3897/afrinvertebr.63.76934
Figure 3 Female holotype of Scrapter peringueyi (Cockerell, 1921), stat. rev. (SAM-HYM-B000144). A habitus, dorsolateral view B habitus, lateral view C head, frontal view D propodeum E labels F fore wing.
Supplementary material 2 from: Bossert S, van Noort S (2022) A group of two: Scrapter peringueyi is not a synonym of Scrapter heterodoxus (Hymenoptera, Colletidae, Scraptrinae). African Invertebrates 63(1): 1-18. https://doi.org/10.3897/afrinvertebr.63.76934
Specimen metadata
Reef Life Survey data (fish and mobile invertebrate counts) from Carrie Bow Cay, Belize, 2015-2019
<p><strong>Aim</strong></p> <p>Conservation efforts have traditionally addressed the threat of biodiversity loss by prioritizing regions and habitats with high endemic species richness. However, species-poor habitats often harbor distinct, valuable, and/or functionally unique species that contribute to regional diversity. In the tropical marine realm, the "mangrove-seagrass-coral reef continuum" has dominated both the scientific literature and marine spatial planning. Bare sediment habitats are also part of this continuum and often comprise the majority of bottom area, as they do in most regions worldwide, but are understudied and rarely considered in conservation. To address this information gap, we partition the relative contributions of five habitats in the coastal mosaic (forereefs, patch reefs, seagrass, mangroves, and bare sand) to fish diversity across a tropical seascape.</p> <p><strong>Location</strong></p> <p>Carrie Bow Cay, Belize Barrier Reef</p> <p><strong>Methods</strong></p> <p>Using diver visual censuses, we assessed fish community composition at three replicate sites from each of the five habitats annually for five years. We then partitioned diversity into within (α) and between (β) habitat contributions, and further partitioned β-diversity into components attributed to species replacement and richness difference. Finally, we determined the local contributions to β-diversity (LCBD) by each habitat and identified the key individual species behind these contributions.</p> <p class="MsoNormal"><strong>Main Results</strong><br>Tropical sand flats were unique habitats, contributing disproportionately to total fish species diversity across the seascape, despite having the fewest species overall. Sand flats also had higher-than-expected local contributions to β-diversity (LCBD) and had the highest percentage of species not found in other habitats.</p> <p><strong>Main Conclusions</strong></p> <p>Our results demonstrate that previously understudied sand habitats harbor a relatively unique assemblage of species compared with other nearby habitats. Marine spatial planning aimed at maximizing preservation of total biodiversity (including unique species) in the tropics should consider sand habitats.</p>
Data from: Genetic divergence and isolation by thermal environment in geothermal populations of an aquatic invertebrate
[No abstract entered]
ASVs detected in the microbiome of marine invertebrates.
<p>Data table.</p>
Features detected in methanolic extracts of marine invertebrates.
<p>Data table.</p>
Bacterial genera producing compounds related to marine invertebrate-derived compounds.
<p>Data table.</p>
Figures 6-11 from: Londt JGH (2019) A revision of Empodiodes Oldroyd, 1972 with the descriptions of two new species from South Africa (Diptera, Asilidae, Stenopogoninae). African Invertebrates 60(1): 67-82. https://doi.org/10.3897/afrinvertebr.60.33075
Figures 6-11 Empodiodes ♂ terminalia: 6–8E.pusillipes sp. nov. 6 lateral 7 dorsal 8 ventral, 9–11E.torridus sp. nov. 9 lateral 10 dorsal 11 ventral. Scale bar: 1 mm.
Figure 2 from: Londt JGH (2019) A revision of Empodiodes Oldroyd, 1972 with the descriptions of two new species from South Africa (Diptera, Asilidae, Stenopogoninae). African Invertebrates 60(1): 67-82. https://doi.org/10.3897/afrinvertebr.60.33075
Figure 2 A typical landscape in the vicinity of Besemgoedkop (photographed 18 November 2011), showing the general habitat occupied by both Empodiodesmelanoscopaeus and E.whittingtoni.
Figure 16 from: Londt JGH (2019) A revision of Empodiodes Oldroyd, 1972 with the descriptions of two new species from South Africa (Diptera, Asilidae, Stenopogoninae). African Invertebrates 60(1): 67-82. https://doi.org/10.3897/afrinvertebr.60.33075
Figure 16 The distribution of Empodiodes species: E.greatheadi Oldroyd, 1972 (●), E.melanoscopaeus Londt, 1992 (○), E.namibiensis Londt, 2012 (■), E.pusillipes sp. nov. (□), E.torridus sp. nov. (▲), E.whittingtoni Londt, 1992 (♦) (Map Zamisa).
Figure 15 from: Londt JGH (2019) A revision of Empodiodes Oldroyd, 1972 with the descriptions of two new species from South Africa (Diptera, Asilidae, Stenopogoninae). African Invertebrates 60(1): 67-82. https://doi.org/10.3897/afrinvertebr.60.33075
Figure 15 A typical Karoo landscape at Doornfontein Nature Reserve (photographed 21 March 2006), representative of the environment in which Empodiodestorridus sp. nov. has been collected.
Figure 13 from: Londt JGH (2019) A revision of Empodiodes Oldroyd, 1972 with the descriptions of two new species from South Africa (Diptera, Asilidae, Stenopogoninae). African Invertebrates 60(1): 67-82. https://doi.org/10.3897/afrinvertebr.60.33075
Figure 13 Empodiodespusillipes sp. nov. habitats at 2 km S of Papendorp (photographed 10 September 2012), where the species was collected.
Figure 12 from: Londt JGH (2019) A revision of Empodiodes Oldroyd, 1972 with the descriptions of two new species from South Africa (Diptera, Asilidae, Stenopogoninae). African Invertebrates 60(1): 67-82. https://doi.org/10.3897/afrinvertebr.60.33075
Figure 12 Empodiodespusillipes sp. nov. habitats at Vrolijkheid Nature Reserve (photographed 11 October 2013).
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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.
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.