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4,937 results for “Endemic species”
Figure 6 from: Jay KR, Popkin-Hall ZR, Coblens MJ, Oberski JT, Sharma PP, Boyer SL (2016) New species of Austropurcellia, cryptic short-range endemic mite harvestmen (Arachnida, Opiliones, Cyphophthalmi) from Australia's Wet Tropics biodiversity hotspot. ZooKeys 586: 37-93. https://doi.org/10.3897/zookeys.586.6774
Figure 6 - Austropurcellia finniganensis sp. n., holotype male, QM 102446. A dorsal view B ventral view C lateral view. Scale bars: 0.5 mm.
Figure 35 from: Jay KR, Popkin-Hall ZR, Coblens MJ, Oberski JT, Sharma PP, Boyer SL (2016) New species of Austropurcellia, cryptic short-range endemic mite harvestmen (Arachnida, Opiliones, Cyphophthalmi) from Australia's Wet Tropics biodiversity hotspot. ZooKeys 586: 37-93. https://doi.org/10.3897/zookeys.586.6774
Figure 35 - Austropurcellia nuda sp. n., males and female. A male tarsus and metatarsus I, QM berlesate 413 B male tarsus and metatarsus II, QM berlesate 413 C male tarsus and metatarsus III, QM berlesate 413 D male tarsus and metatarsus IV, lateral view, QM berlesate 38118, paratype E male tarsus and metatarsus IV, medial view, QM berlesate 38118, paratype F female tarsus and metatarsus IV, QM berlesate 413. Scale bars: 100 μm.
Figure 39 from: Jay KR, Popkin-Hall ZR, Coblens MJ, Oberski JT, Sharma PP, Boyer SL (2016) New species of Austropurcellia, cryptic short-range endemic mite harvestmen (Arachnida, Opiliones, Cyphophthalmi) from Australia's Wet Tropics biodiversity hotspot. ZooKeys 586: 37-93. https://doi.org/10.3897/zookeys.586.6774
Figure 39 - Austropurcellia riedeli sp. n., male, MCZ IZ 69026. A spiracle B ozophore. Scale bar: 20 μm (A); 50 μm (B).
Figure 31 from: Jay KR, Popkin-Hall ZR, Coblens MJ, Oberski JT, Sharma PP, Boyer SL (2016) New species of Austropurcellia, cryptic short-range endemic mite harvestmen (Arachnida, Opiliones, Cyphophthalmi) from Australia's Wet Tropics biodiversity hotspot. ZooKeys 586: 37-93. https://doi.org/10.3897/zookeys.586.6774
Figure 31 - Austropurcellia nuda sp. n., males. A dorsal view, QM berlesate 413 B ventral view, QM berlesate 38118, paratype. Scale bar: 200 μm (A); 500 μm (B).
Figure 1 from: Ortiz-Rodriguez AE, Ramos CMB, Gomez-Dominguez H (2016) A new species of Amphitecna (Bignoniaceae) endemic to Chiapas, Mexico. PhytoKeys 65: 15-23. https://doi.org/10.3897/phytokeys.65.8454
Figure 1 - Amphitecna loreae sp. nov. A cauliflorous flowers with trilabiate calyx. B broadly elliptical to spherical fruits C corolla D buds rounded at apex. Photographs by Andres E. Ortiz-Rodriguez (A and C) and Marcos Escobar (B and D).
Figure 3 from: Ortiz-Rodriguez AE, Ramos CMB, Gomez-Dominguez H (2016) A new species of Amphitecna (Bignoniaceae) endemic to Chiapas, Mexico. PhytoKeys 65: 15-23. https://doi.org/10.3897/phytokeys.65.8454
Figure 3 - Leaf variation in Amphitecna loreae and related species. A Amphitecna tuxtlensis (H. Gomez 3710 HEM) B Amphitecna montana (N. Martinez 927 HEM) C Amphitecna loreae (M. Escobar 586 HEM) and D Amphitecna latifolia (E. Ucan E 251 XAL).
Figure 2 from: Ortiz-Rodriguez AE, Ramos CMB, Gomez-Dominguez H (2016) A new species of Amphitecna (Bignoniaceae) endemic to Chiapas, Mexico. PhytoKeys 65: 15-23. https://doi.org/10.3897/phytokeys.65.8454
Figure 2 - Distribution range and climatic preferences of Amphitecna loreae and related species. Amphitecna latifolia (purple circles) Amphitecna montana (green cross), Amphitecna loreae (black dots) and Amphitecna tuxtlensis (blue squares). In colours similar to those of the species the 95% confidence ellipses produced by PCA analysis.
Figure 1 from: Serra WS, Loureiro M (2018) Austrolebias queguay (Cyprinodontiformes, Rivulidae), a new species of annual killifish endemic to the lower Uruguay river basin. Zoosystematics and Evolution 94(2): 547-556. https://doi.org/10.3897/zse.94.29115
Figure 1 Austrolebiasqueguay sp. n., ZVC-P 13576, 39.4 mm SL, holotype, male, Estancia La Beba (32°11'08"S, 57°26'08"W), wetlands of Río Queguay Grande, Paysandú Department, Uruguay.
Figure 5 from: Serra WS, Loureiro M (2018) Austrolebias queguay (Cyprinodontiformes, Rivulidae), a new species of annual killifish endemic to the lower Uruguay river basin. Zoosystematics and Evolution 94(2): 547-556. https://doi.org/10.3897/zse.94.29115
Figure 5 Canonical variate analysis of the morphometry of females. Red dots = A.bellottii, Purple dots A.univentripinnis, Green dots = A.melanoorus, Skyblue dots = A.queguay. Deformation (dark blue line) from consensus configuration (sky blue line) associated to each canonical axis.
Figure 4 from: Serra WS, Loureiro M (2018) Austrolebias queguay (Cyprinodontiformes, Rivulidae), a new species of annual killifish endemic to the lower Uruguay river basin. Zoosystematics and Evolution 94(2): 547-556. https://doi.org/10.3897/zse.94.29115
Figure 4 Canonical variate analysis of the morphometry of males. Red dots = A.bellottii, Purple dots A.univentripinnis, Green dots = A.melanoorus, Skyblue dots = A.queguay. Deformation (dark blue line) from consensus configuration (sky blue line) associated to each canonical axis.
Figure 3 from: Serra WS, Loureiro M (2018) Austrolebias queguay (Cyprinodontiformes, Rivulidae), a new species of annual killifish endemic to the lower Uruguay river basin. Zoosystematics and Evolution 94(2): 547-556. https://doi.org/10.3897/zse.94.29115
Figure 3 A.Austrolebiasqueguay sp. n. female: paratype ZVCP 11620; B.A.bellottii female (ZVCP 11560); C.A.univentripinnis female (UFRGS 18066); D.A.melanoorus topotype female (ZVCP 13651).
Figure 2 from: Serra WS, Loureiro M (2018) Austrolebias queguay (Cyprinodontiformes, Rivulidae), a new species of annual killifish endemic to the lower Uruguay river basin. Zoosystematics and Evolution 94(2): 547-556. https://doi.org/10.3897/zse.94.29115
Figure 2 A.Austrolebiasqueguay sp. n. paratype male (ZVCP 11620); B.A.queguay non type male (32°07'26"S, 57°30'45"W), not preserved (right side, photo flipped); C. A.bellottii non preserved male; D.A.univentripinnis male (UFRGS 18064, right side photo flipped); E.A.melanoorus topotype male (ZVCP13651); F. Detail of pectoral and pelvic fins of A.melanoorus; G. Detail of pectoral and pelvic fins of A.queguay.
Figure 6 from: Serra WS, Loureiro M (2018) Austrolebias queguay (Cyprinodontiformes, Rivulidae), a new species of annual killifish endemic to the lower Uruguay river basin. Zoosystematics and Evolution 94(2): 547-556. https://doi.org/10.3897/zse.94.29115
Figure 6 Geographic distribution of Austrolebiasqueguay sp. n. (orange dots, Uruguay river basin), A.bellottii (yellow dots, Paraná and Uruguay river basins), A.melanoorus (red dots, Negro and Yaguarón river basins), and A.univentripinnis (green dots, Yaguaron river basin). Orange star indicates type locality.
FIGURE 3 in Lophopetalum tanahgambut, a new endemic giant tree species from peat swamp forest of Sumatera, Indonesia, with the first pseudoverticillate leaf arrangement in genus Lophopetalum (Celastraceae)
FIGURE 3. Distribution map of Lophopetalum tanahgambut Randi, Utteridge & Wijedasa (red dot).
Figure 2 in Rhododendron benomense Rafidah & A.C.Elliott (Ericaceae), a new name for Rhododendron obscurum Sleumer, a species endemic to Peninsular Malaysia
Figure 2. Inflorescence detail of Rhododendron benomense Rafidah & A.C.Elliott. Photograph: Mohd Hairul, M.A.
Warming drives poleward range contractions of Beringian endemic plant species at high latitudes
<p><strong><span>Aim</span></strong><span>: Species are expected to disperse poleward in response to climate change. For species that are endemic to the high latitudes, this implies that many in the future would face a "no-where-to-go" situation as they are currently occupying the northernmost portion of the continent. Further, because endemism may arise from a combination of physical barriers, climate, and geological history, the persistence of many species may require spatial matching of multiple environmental factors within a limited dispersal space. Thus, it is not clear how endemic species might spatially adjust their distributions in response to climate change and whether there are future climate change refugia for these species. </span></p> <p><strong><span>Location</span></strong><span>: Northwest North America </span></p> <p><strong><span>Taxa</span></strong><span>: Plants </span></p> <p><span><strong>Time</strong> <strong>period</strong></span><span>: Current and the future (2040)</span></p> <p><strong><span>Methods</span></strong><span>: We used ensemble bioclimatic models to evaluate drivers and directional patterns of future change in the distributions of 66 North American Beringian and Amphi-Beringian species currently occurring in Alaska and the Yukon. We explored the spatial pattern of species richness, losses and climate change refugia across the region.</span></p> <p><strong><span>Results</span></strong><span>: More than 80% of the species showed northward shifts in their latitudinal centroids under intermediate warming and are expected to shift their range northward by more than 140km on average by 2040. Additionally, more than 60% were projected to experience range contractions and up to 20% of the species would have the potential to expand their ranges by more than 100%. </span></p> <p><strong><span>Main conclusions</span></strong><span>: Suitable habitat for endemic species in northwest North America is expected to decline significantly, especially for species occupying the Arctic tundra. Although the models identified several potential refugia from future climate change, especially at high latitude and elevation, whether the species would be able to colonize new habitats on their own and/or capitalize sufficiently on in situ refugia remains a pertinent conservation question. </span></p>
Supplementary material 1 from: Wanke D, Hausmann A, Lees DC, Lee KM, Martin G, Sihvonen P, Staude H, Rajaei H (2023) The African endemic species " Nychiodes" tyttha Prout, 1915 (Lepidoptera, Geometridae, Ennominae) belongs to the genus Aphilopota Warren, 1899. Nota Lepidopterologica 46: 1-17. https://doi.org/10.3897/nl.46.94940
Taxa used in this study
FIGURE 3 in Chusquea calderoniae (Poaceae: Bambusoideae), a new species of C. subg. Chusquea endemic to the Espinhaço Range, Brazil
FIGURE 3. Geographic distribution of Chusquea calderoniae and C. attenuata in Brazil.
Supplementary material 3 from: Hedin M, Milne MA (2023) New species in old mountains: integrative taxonomy reveals ten new species and extensive short-range endemism in Nesticus spiders (Araneae, Nesticidae) from the southern Appalachian Mountains. ZooKeys 1145: 1-130. https://doi.org/10.3897/zookeys.1145.96724
Specimens used in molecular work
Supplementary material 2 from: Hedin M, Milne MA (2023) New species in old mountains: integrative taxonomy reveals ten new species and extensive short-range endemism in Nesticus spiders (Araneae, Nesticidae) from the southern Appalachian Mountains. ZooKeys 1145: 1-130. https://doi.org/10.3897/zookeys.1145.96724
Nesticus immature specimen records
ScienceDex guides
Understand access before you commit
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.