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684 results for “hyperdiverse”
Comparative metabolomics of fruits and leaves in a hyperdiverse lineage suggests fruits are a key incubator of phytochemical diversification
<p>Data files, chromatograms, and metadata for the Frontiers in Plant Science article "Comparative metabolomics of fruits and leaves in a hyperdiverse lineage suggests fruits are a key incubator of phytochemical diversification" . </p> <p>doi: 10.3389/fpls.2021.693739</p>
Figure 4 in Year-round activity patterns in a hyperdiverse community of rainforest amphibians in Madagascar
Figure 4. Canonical correspondence biplot relating amphibian species abundance along the study transect and five environmental predictors (italics, labelled as in Figure 3). Circles identify the sampling units (days) and crosses identify species. Species occurring more frequently at extreme environmental conditions are labelled using the codes presented in Table 1.
Fig. 14 in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 14. Female genitalia of Obtusopyrgus farri sp. nov. µCT scans. Abbreviations: ag = albumen gland; bc = bursa copulatrix; cg = capsule gland; od = oviduct; ov = ovary; rs = receptaculum seminis; vc = ventral channel. Scale bar = 100 µm.
Fig. 12 in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 12. Female genitalia of Opacuincola gretathunbergae sp. nov. µCT scans. Abbreviations: ag = albumen gland; bc = bursa copulatrix; cg = capsule gland; od = oviduct; ov = ovary; rs = receptaculum seminis; vc = ventral channel. Scale bar = 50 µm.
Fig. 10 in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 10. Genitalia of Opacuincola lisannea sp. nov. µCT scans. A. ♀. B. ³. Abbreviations: ag = albumen gland; bc = bursa copulatrix; cg = capsule gland; od = oviduct; ov = ovary; pe = penis; pl = penial lobe; pr = prostate; pt = penial tip; pv = pallial vas deferens; rs = receptaculum seminis; vc = ventral channel; vd = vas deferens. Scale bars = 50 µm.
Fig. 8. Radula. SEM photographs. A in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 8. Radula. SEM photographs. A. Catapyrgus jami sp. nov. B. Opacuincola lisannea sp. nov. (from type locality). C. Op. gretathunbergae sp. nov. D. Obtusopyrgus farri sp. nov.
Fig. 11. Penis. SEM photographs. A in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 11. Penis. SEM photographs. A. Opacuincola lisannea sp. nov. (from type locality). B. Op. gretathunbergae sp. nov.C. Op. mete kahurangi subsp. nov.D. Obtusopyrgus farri sp. nov. Abbreviations: e = eye; l = penial lobe; s = snout; t = tentacle.
Fig. 6 in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 6. Protoconch. SEM photographs of paratypes. A. Catapyrgus jami sp. nov. B–C. Opacuincola lisannea sp. nov. (B, topotype; C, northern locality). D. Op. gretathunbergae sp. nov. E. Op. mete kahurangi subsp. nov. F. Obtusopyrgus farri sp. nov.
Fig. 5 in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 5. Shells. SEM photographs of paratypes. A. Catapyrgus jami sp. nov. B–C. Opacuincola lisannea sp. nov. (B, topotype; C, northern locality). D –E. Op. gretathunbergae sp. nov. F –G. Op. mete kahurangi subsp. nov. H–I. Obtusopyrgus farri sp. nov.
Fig. 9 in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 9. Genitalia of Catapyrgus jami sp. nov. µCT scans. A. ♀. B. ³. Abbreviations: ac = anterior capsule gland; ag = albumen gland; bc = bursa copulatrix; od = oviduct; ov = ovary; pc = posterior capsule gland; pr = prostate; pv = pallial vas deferens; rs = receptaculum seminis; te = testis; vc = ventral channel; vd = vas deferens; vs = vesicula seminalis. Scale bars = 50 µm.
Fig. 4. Types. A–B in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 4. Types. A–B. Catapyrgus jami sp. nov. C–D. Opacuincola lisannea sp. nov. (D from northern locality). E–F. Op. gretathunbergae sp. nov. G–H. Op. mete kahurangi subsp. nov. I–J. Obtusopyrgus farri sp. nov. A, C, E, G, I, holotypes, rest paratypes.
Fig. 2 in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 2. Phylogenetic analysis. Maximum likelihood tree with bootstrap support> 50 / posterior probabilities from Bayesian analysis> 0.50 for nodes. New taxa in bold. Letters A-E after new taxa refer to localities in Figure 1.
Fig. 1. Localities. A in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 1. Localities. A. Type locality of Opacuincola mete kahurangi subsp. nov. B. Type locality (photograph) of Catapyrgus jami sp. nov. and Op. lisannea sp. nov. C. Northern locality of Op. lisannea sp. nov. D. Type locality of Op. gretathunbergae sp. nov. E. Type locality of Obtusopyrgus farri sp. nov. For details see descriptions in text.
Fig. 13 in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 13. Genitalia of Opacuincola m. kahurangi subsp. nov. µCT scans. A. ♀. B. ³. Abbreviations: ag = albumen gland; bc = bursa copulatrix; cg = capsule gland; od = oviduct; ov = ovary; pe = penis; pl = penial lobe; pr = prostate; pv = pallial vas deferens; rs = receptaculum seminis; te = testis; vc = ventral channel; vd = vas deferens; vs = vesicula seminalis. Scale bars = 100 µm.
Dataset of the paper "Machine learning for expert-level image-based identification of very similar species in the hyperdiverse plant bug family Miridae (Hemiptera: Heteroptera)"
<p>This dataset contains 3792 images of 26 plant bug (Insecta: Heteroptera: Miridae: Mirini) species used to test the performance of a CNN in species recognition. All jpg files are 1920 pixels on the long size and additionally available as an archive file to facilitate download of the entire dataset. </p> <p>Bar code labels (unique specimen identifiers or USIs) were attached to all examined specimens used for this study. Further information such as additional photographs of habitus and genitalic structures, georeferenced coordinates of each locality, specimens dissected, notes, collecting method can be obtained from the Heteroptera Species Pages (http://research.amnh.org/pbi/heteropteraspeciespage/) which assembles available data from a specimen database and are also provided as an Excel spreadsheet (file _Adelphocoris_CNN_label_data.xlsx).</p>
Linked collectors and determiners for: Morphological revision of the hyperdiverse Brueelia - complex (Insecta: Phthiraptera: Ischnocera: Philopteridae) with new taxa, checklists and generic key.
Natural history specimen data linked to collectors and determiners held within, "Morphological revision of the hyperdiverse Brueelia - complex (Insecta: Phthiraptera: Ischnocera: Philopteridae) with new taxa, checklists and generic key". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/d8cc2cd8-8410-49aa-a75d-7a41d9f52b26">https://bionomia.net/dataset/d8cc2cd8-8410-49aa-a75d-7a41d9f52b26</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/d8cc2cd8-8410-49aa-a75d-7a41d9f52b26">https://gbif.org/dataset/d8cc2cd8-8410-49aa-a75d-7a41d9f52b26</a>. Formatted as a Frictionless Data package.
Data from: Floral scents of a deceptive plant are hyperdiverse and under population-specific phenotypic selection
<p>Floral scent is a key mediator in plant–pollinator interactions; however, little is known to what extent intraspecific scent variation is shaped by phenotypic selection, with no information yet in deceptive plants. We recorded 289 scent compounds in deceptive moth fly-pollinated <i>Arum maculatum </i>from various populations north vs. south of the Alps, the highest number so far reported in a single plant species. Scent and fruit set differed between regions, and some, but not all differences in scent could be explained by differential phenotypic selection in northern vs. southern populations. Our study is the first to provide evidence that phenotypic selection is involved in shaping geographic patterns of floral scent in deceptive plants. The hyperdiverse scent of <i>A. maculatum</i> might result from the plant's imitation of various brood substrates of its pollinators.</p>
Data from: Floral scents of a deceptive plant are hyperdiverse and under population-specific phenotypic selection
Open the record for dataset details and reuse information.
Fig. 3 in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 3. Shell morphology. Principal component analysis based on five shell measurements of Table 1.
Data from: Temperature accounts for the biodiversity of a hyperdiverse group of insects in urban Los Angeles
The urban heat island effect is a worldwide phenomenon that has been linked to species' distributions and abundances in cities. However, effects of urban heat on biotic communities are nearly impossible to disentangle from effects of land cover in most cases because hotter urban sites also have less vegetation and more impervious surfaces than cooler sites within cities. We sampled phorid flies, one of the largest, most biologically diverse families of true flies (Insecta: Diptera: Phoridae), at 30 sites distributed within the central Los Angeles Basin, where we found that temperature and the density of urban land cover are decoupled. Abundance, richness, and community composition of phorids inside urban Los Angeles were most parsimoniously accounted for by mean air temperature in the week preceding sampling. Sites with intermediate mean temperatures had more phorid fly individuals and higher richness. Communities were more even at urban sites with lower minimum temperatures and sites located further away from natural areas, suggesting that communities separated from natural source populations may be more homogenized. Species composition was best explained by minimum temperature. Inasmuch as warmer areas within cities can predict future effects of climate change, phorid fly communities are likely to shift non-linearly under future climates in more natural areas. Exhaustive surveys of biotic communities within cities, such as the one we describe here, can provide baselines for determining the effects of urban and global climate warming as they intensify.
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Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
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