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Figure 2 from: Kaltenbach T, Gattolliat J-L (2021) A new genus from Madagascar with strongly enlarged labium (Ephemeroptera, Baetidae). African Invertebrates 62(2): 465-484. https://doi.org/10.3897/afrinvertebr.62.73911
Figure 2 Megalabiops madagasikara gen. et sp. nov., nymph morphology a frontal section of head b head, ventral view c labium, lateral view d head, ventrolateral view. Scale bars: 0.1 mm.
Figure 3 from: Kaltenbach T, Gattolliat J-L (2021) A new genus from Madagascar with strongly enlarged labium (Ephemeroptera, Baetidae). African Invertebrates 62(2): 465-484. https://doi.org/10.3897/afrinvertebr.62.73911
Figure 3 Megalabiops madagasikara gen. et sp. nov., nymph morphology a base of antenna b labrum (left: ventral view, right: dorsal view) c right mandible d right prostheca e right incisor and kinetodontium f left mandible g left prostheca h left incisor and kinetodontium. Scale bars: 0.1 mm.
Fig. 4 in Invertebrate Fauna Associated with Floating Sargassum horneri (Fucales: Sargassaceae) in the East China Sea
Fig. 4. Invertebrates found on floating algae in the East China Sea. A: Paralaophonte sp.; B: Corycaeus sp.; C: Lepas sp. (juvenile); D: Lepas sp. (larva); E: Gammaridea; F: Nematoda; G: Gastropoda; H: Rhombognathus sp.; I: Bryozoa (statoblast). Scale bars=100 µm.
Fig. 1 in Invertebrate Fauna Associated with Floating Sargassum horneri (Fucales: Sargassaceae) in the East China Sea
Fig. 1. Map of study area showing sampling stations (black dots) for floating algae in the East China Sea. The stations are grouped into the following four geographic sub-areas: Area A (stations 1–4, 16), Area B (stations 5–8), Area C (stations 13–15), and Area D (stations 9–12). Detailed information on the sampling sites is given in Table 1.
FIGURE 6 in Last interglacial environment of the Baikal Region (Southern Siberia, Russia) based on analysis of fossil invertebrates and plants
FIGURE 6. Pollen percentage diagram of the section Bely Yar II.
FIGURE 2 in Last interglacial environment of the Baikal Region (Southern Siberia, Russia) based on analysis of fossil invertebrates and plants
FIGURE 2. Stratigraphy of the section Bely Yar II.
Figure 7 from: Williams KA, Snyman LP (2021) Tabanidae (Diptera) holotypes in the KwaZulu-Natal Museum collection: Part 1. Haematopota. African Invertebrates 62(2): 485-495. https://doi.org/10.3897/afrinvertebr.62.76103
Figure 7 Haematopota quathlambia holotype A dorsal B lateral C head D wing E wings on card. Scale bars: 3 mm (A, B, D, E); 2 mm (C).
Figure 3 from: Williams KA, Snyman LP (2021) Tabanidae (Diptera) holotypes in the KwaZulu-Natal Museum collection: Part 1. Haematopota. African Invertebrates 62(2): 485-495. https://doi.org/10.3897/afrinvertebr.62.76103
Figure 3 Haematopota megaera holotype A dorsal B lateral C head D – wing. Scale bars: 5 mm (A); 2 mm (B, D); 1 mm (C).
Figure 6 from: Williams KA, Snyman LP (2021) Tabanidae (Diptera) holotypes in the KwaZulu-Natal Museum collection: Part 1. Haematopota. African Invertebrates 62(2): 485-495. https://doi.org/10.3897/afrinvertebr.62.76103
Figure 6 Haematopota ovazzai holotype A dorsal B lateral C head D wing. Scale bars: 5 mm (A); 2 mm (B, D); 1 mm (C).
Figure 2 from: Williams KA, Snyman LP (2021) Tabanidae (Diptera) holotypes in the KwaZulu-Natal Museum collection: Part 1. Haematopota. African Invertebrates 62(2): 485-495. https://doi.org/10.3897/afrinvertebr.62.76103
Figure 2 Haematopota diasi holotype A dorsal B lateral C head D wing. Scale bars: 3 mm (A, C); 4 mm (B, D).
Figure 5 from: Williams KA, Snyman LP (2021) Tabanidae (Diptera) holotypes in the KwaZulu-Natal Museum collection: Part 1. Haematopota. African Invertebrates 62(2): 485-495. https://doi.org/10.3897/afrinvertebr.62.76103
Figure 5 Haematopota montisdraconis holotype A dorsal B lateral C head and wing D wing I–IV paratypes. Scale bars: 3 mm (A, C, I, IV); 2 mm (B, II, III); 1 mm (D).
Figure 4 from: Williams KA, Snyman LP (2021) Tabanidae (Diptera) holotypes in the KwaZulu-Natal Museum collection: Part 1. Haematopota. African Invertebrates 62(2): 485-495. https://doi.org/10.3897/afrinvertebr.62.76103
Figure 4 Haematopota mephista holotype A lateral B abdomen C wings and abdomen D, E wings. Scale bars: 4 mm (A); 3 mm (B, C); 2 mm (D, E).
Figure 6 from: van Noort S, Belokobylskij SA, Touret-Alby A (2021) Rediscovery of the endemic Afrotropical genus Spathioplites (Hymenoptera, Braconidae, Doryctinae) with major range extension records for Spathioplites phreneticus. African Invertebrates 62(2): 497-520. https://doi.org/10.3897/afrinvertebr.62.74103
Figure 6 Spathioplites phreneticusA political distribution map. Only known from three localities (depicted by red circles) one each in Chad, Senegal and South Africa B distribution localities (depicted by white circles) mapped onto African precipitation patterns. Data source: ERA-Interim corrected with GPCP v2.1; period: 1979–2010. After Masih et al. 2014 and Trambauer et al. 2014C habitat South African sampling site locality TSW15-DED3 in Tswalu Kalahari Game Reserve, aerial view from North in February 2016 after summer rains (locality arrowed) D habitat South African locality TSW15-DED3 in Tswalu Kalahari Game Reserve, aerial view from East in February 2016 after summer rains (locality arrowed) E sampling localities in Tswalu Game Reserve plotted onto vegetation map after Mucina and Rutherford (2006); red circle depicts S. phreneticus locality TSW15-DED3, white circles depict other sampling localities.
Figure 5 from: van Noort S, Belokobylskij SA, Touret-Alby A (2021) Rediscovery of the endemic Afrotropical genus Spathioplites (Hymenoptera, Braconidae, Doryctinae) with major range extension records for Spathioplites phreneticus. African Invertebrates 62(2): 497-520. https://doi.org/10.3897/afrinvertebr.62.74103
Figure 5 Spathioplites phreneticus, female paratype (MNHN) A habitus, lateral view B habitus, dorsal view C habitus, dorso-posterior view D head, antenna, anterior view E data labels
Figure 7 from: van Noort S, Belokobylskij SA, Touret-Alby A (2021) Rediscovery of the endemic Afrotropical genus Spathioplites (Hymenoptera, Braconidae, Doryctinae) with major range extension records for Spathioplites phreneticus. African Invertebrates 62(2): 497-520. https://doi.org/10.3897/afrinvertebr.62.74103
Figure 7 Spathioplites phreneticus South African sampling site locality TSW15-DED3 in Tswalu Kalahari Game Reserve showing seasonal changes in habitat A habitat May 2016, after poor summer rains B habitat May 2016, after poor summer rains C habitat Nov 2016 at end of dry winter season showing dead wood stacked under Malaise trap to increase return on parasitoids of wood-boring hosts (Malaise trap damaged by game animals prior to fixing) D habitat overview Nov 2016 (locality arrowed) at end of dry winter season E habitat May 2017, after good summer rains F habitat May 2017, after good summer rains.
Figure 4 from: van Noort S, Belokobylskij SA, Touret-Alby A (2021) Rediscovery of the endemic Afrotropical genus Spathioplites (Hymenoptera, Braconidae, Doryctinae) with major range extension records for Spathioplites phreneticus. African Invertebrates 62(2): 497-520. https://doi.org/10.3897/afrinvertebr.62.74103
Figure 4 Spathioplites phreneticus, male holotype (MNHN) A head, anterior view B forewing, dorsal view C data labels.
Figure 2 from: van Noort S, Belokobylskij SA, Touret-Alby A (2021) Rediscovery of the endemic Afrotropical genus Spathioplites (Hymenoptera, Braconidae, Doryctinae) with major range extension records for Spathioplites phreneticus. African Invertebrates 62(2): 497-520. https://doi.org/10.3897/afrinvertebr.62.74103
Figure 2 Spathioplites phreneticus, female South Africa SAM-HYM-P086343 (SAMC) A head, mesosoma, dorsal view B metasoma, dorsal view C left wings, dorsal view (inset: data labels) D right wings, dorsal view (note that both sets of depicted wings (C, D) have dried in a contorted manner and are curved and folded, distorting dimensions of the constituent cells, which is evident when comparing the two images).
Figure 1 from: van Noort S, Belokobylskij SA, Touret-Alby A (2021) Rediscovery of the endemic Afrotropical genus Spathioplites (Hymenoptera, Braconidae, Doryctinae) with major range extension records for Spathioplites phreneticus. African Invertebrates 62(2): 497-520. https://doi.org/10.3897/afrinvertebr.62.74103
Figure 1 Spathioplites phreneticus, female South Africa SAM-HYM-P086343 (SAMC) A habitus, lateral view B habitus, dorsal view C head, anterior view D head, mesosoma, dorso-lateral view E antennae, head, mesosoma, antero-dorsal view F scutellum, propodeum, first tergite, dorsal view.
Figure 3 from: van Noort S, Belokobylskij SA, Touret-Alby A (2021) Rediscovery of the endemic Afrotropical genus Spathioplites (Hymenoptera, Braconidae, Doryctinae) with major range extension records for Spathioplites phreneticus. African Invertebrates 62(2): 497-520. https://doi.org/10.3897/afrinvertebr.62.74103
Figure 3 Spathioplites phreneticus, male holotype (MNHN) A habitus, lateral right view B habitus, lateral left view (photo flipped horizontally for comparison with right side depicted in A) C habitus, dorsal view.
Long term environmental stability drives reduced stress tolerance in salt lake invertebrates
<p>The capacity of species to tolerate physical stressors is critical in a world of increasing environmental instability, however, past selective environments should dramatically impact on future stress tolerance, particularly in isolated populations. Through stabilising selection, long-term environmental stasis may reduce physiological tolerance, creating an evolutionary legacy where populations are less fit if environments change. Few empirical studies have investigated this evolutionary legacy of past selection, and of particular interest whether stabilising selection in a benign environment reduces stress tolerance in natural systems. Here we use multiple populations of salt-lake invertebrates (<i>Coxiella striata, Austrochiltonia subtenuis</i>) with either stable or fluctuating environmental histories to investigate the relationship between stabilising selection and environmental stress resistance. Tolerance to both salinity and temperature stress were examined in invertebrate populations from lakes with long-term (decadal) stable environments and compared with populations from lakes with extreme salinity variations. Individuals from stable environments demonstrated significantly lower survival under both increasing salinity and temperature stresses when compared with environmentally unstable populations. Our results support the hypothesis that the evolutionary legacy from stabilising selection in constant environments leads to reduced stress tolerance. This finding demonstrates that under an increasingly variable climate, the evolutionary legacies of populations will be critical for future survival and adaptation.</p>
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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.