Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
576
datasets available to search
ShareScore release 0.9.0
Dataset results
576 results for “montane species”
FIGURE 3 in A new species of Scinax (Anura: Hylidae) from rocky montane fields of the Serra do Cipó, Southeastern Brazil
FIGURE 3. Scinax curicica, adult photographed in life; Serra do Cipó, municipality of Santana do Riacho, State of Minas Gerais, Brazil; MCN 3647. Photo by B. V. S. Pimenta.
FIGURE 16 in Tergoceracris, a new genus and six new species of montane grasshoppers (Orthoptera: Acrididae: Ommatolampinae) from Dominican Republic and Puerto Rico
FIGURE 16. Genitalia complex of T. cerropunta. A, B, entire complex (with epiphallus removed) showing lateral and dorsal views. C, D, epiphallus showing dorsal and posterior views.
FIGURE 10 in Tergoceracris, a new genus and six new species of montane grasshoppers (Orthoptera: Acrididae: Ommatolampinae) from Dominican Republic and Puerto Rico
FIGURE 10. Genitalia complex of T. ocampensis. A, B, entire complex (epiphallus removed) showing lateral and dorsal views. C, D, epiphallus showing dorsal and posterior views. Abbreviations: bpf, basal phallic fold; ls, lateralsclerite of basal phallic fold; apc, apodeme of cingulum; ap, anteriorplate of epiphallus; lo, lophi of epiphallus; en, endophallic plate.
FIGURE 12 in Tergoceracris, a new genus and six new species of montane grasshoppers (Orthoptera: Acrididae: Ommatolampinae) from Dominican Republic and Puerto Rico
FIGURE 12. Genitalia complex of T. ebanoverde. A, B, entire complex (with epiphallus removed) showing lateral and dorsal views. C, D, epipallus showing dorsal and rear views.
FIGURE 6 in Tergoceracris, a new genus and six new species of montane grasshoppers (Orthoptera: Acrididae: Ommatolampinae) from Dominican Republic and Puerto Rico
FIGURE 6. Male epiproct of Tergoceracris species. A, T. guajataca; B, T. cayey; C, T. luquillensis; D, T. ocampensis; E, T. ebanoverde; F, T. cerropunta.
FIGURE 3 in Tergoceracris, a new genus and six new species of montane grasshoppers (Orthoptera: Acrididae: Ommatolampinae) from Dominican Republic and Puerto Rico
FIGURE 3. Habitus photographs of males of Tergoceracris species. A, T. ocampensis; B, T. ebanoverde; C, T. guajataca; D, T. cerropunta; E, T. cayey; F, T. luquillensis.
FIGURE 19 in Tergoceracris, a new genus and six new species of montane grasshoppers (Orthoptera: Acrididae: Ommatolampinae) from Dominican Republic and Puerto Rico
FIGURE 19. Genitalia complex of T. cayay. A, B, C, genitalia with epiphallus and basal phallic fold removed (lateral, dorsal, and ventral views). D, E, F, genitalia with cingulum removed.
FIGURE 14 in Tergoceracris, a new genus and six new species of montane grasshoppers (Orthoptera: Acrididae: Ommatolampinae) from Dominican Republic and Puerto Rico
FIGURE 14. Genitalia complex of T. guajataca. A, B, entire complex (with epiphallus removed) showing lateral and dorsal views. C, D, epiphallus showing dorsal and posterior views.
Relative breeding timing and reproductive success of a resident montane bird species
<p>The phenological match-mismatch hypothesis predicts that animals that better synchronize critical life history events with the peak availability of their primary food source should have higher fitness. If phenological match-mismatch determines breeding success, most individuals in a population may be expected to breed simultaneously within a given year because selection has favored mechanisms that allow for the tracking of optimal food abundance. Therefore, individuals that breed too early or too late relative to the bulk of the population ("peak" of breeding) should experience decreased fitness. Using 11 years of data, we investigated the effect of relative breeding timing on breeding success in resident mountain chickadees (Poecile gambeli) across two elevations in the Sierra Nevada mountains, USA. Chickadees that bred during the peak of nesting did not have the highest breeding success; instead, birds that bred earliest performed best at high elevation, while at low elevation early and peak nests performed similarly. Breeding success decreased linearly with relative timing at both high and low elevations, and the relationship between breeding success and timing differed among years. Our results suggest that phenological match-mismatch may not be the main driver of within-year variation in breeding success in animals residing in montane environments.</p>
Fig. 7 in A New Montane Species of Spiny Pocket Mouse (Rodentia: Heteromyidae: Heteromys) from Northwestern Costa Rica
Fig. 7. Comparisons of female specimens of Heteromys desmarestianus (left column), H. nubicolens (middle column), and H. oresterus (right column); dorsal views of the crania are provided for specimens in age class 5 (top row), age class 4 (middle row), and age class 2 (bottom row). Museum catalog numbers follow: age class 5, KU 158510, KU 142791, and MVZ 164860 (note, zygomatic arches are missing due to breakage); age class 4, KU 158505, KU 159025 (holotype of H. nubicolens), and MVZ 164861; age class 2, MNCR 793, MNCR 797, and MVZ 164862. See appendices 1 and 2 for full provenience.
Fig. 3 in A New Montane Species of Spiny Pocket Mouse (Rodentia: Heteromyidae: Heteromys) from Northwestern Costa Rica
Fig. 3. Dorsal, ventral, and lateral views of the cranium of the holotype of Heteromys nubicolens (KU 159025), an adult female in age class 4. See appendix 1 for full provenience.
Figure 3. Solanum sanchez-vegae. A in Four New Vining Species of Solanum (Dulcamaroid Clade) from Montane Habitats in Tropical America
Figure 3. Solanum sanchez-vegae. A) portion of stem, B) petiole articulation, C) buds, D) open flower, E) flower cross-section showing stigma detail, F) anthers, G) fruit. A–F drawn from Smith & Sanchez-Vega 7524, G from Hutchison et al. 5738. doi:10.1371/journal.pone.0010502.g003
Figure 1. Solanum aspersum. A in Four New Vining Species of Solanum (Dulcamaroid Clade) from Montane Habitats in Tropical America
Figure 1. Solanum aspersum. A) portion of stem, with details of trichomes, B) young bud, C) open flower, D) fruiting inflorescence, E) young fruit. A–C drawn from MacDougal et al. 4251, D–E from Zak 1857A. doi:10.1371/journal.pone.0010502.g001
Figure 4 in Four New Vining Species of Solanum (Dulcamaroid Clade) from Montane Habitats in Tropical America
Figure 4. Solanum sanchez-vegae. Peru. La Libertad. A. Cano s.n. (photograph courtesy of A. Cano, USM). doi:10.1371/journal.pone.0010502.g004
Figure 5. Solanum sousae. A in Four New Vining Species of Solanum (Dulcamaroid Clade) from Montane Habitats in Tropical America
Figure 5. Solanum sousae. A) portion of stem with flowering inflorescence, B) flower, C) flower cross section, D) anthers, E) portion of stem with fruiting inflorecence. A–D drawn from Ventura 2212, E from Maya J. 3938. doi:10.1371/journal.pone.0010502.g005
Figure 2. Solanum luculentum. A in Four New Vining Species of Solanum (Dulcamaroid Clade) from Montane Habitats in Tropical America
Figure 2. Solanum luculentum. A) portion of stem with flowering inflorescence, B) detail of stem with peeling bark, C) buds, D) open long-styled flower with anthers removed, E) long-styled flower cross-section, F) anthers, G) short-styled flower cross-section, H) fruiting inflorescence from putatively pistillate individual. A–B drawn from Nee & Callejas 32546, C–F from Steyermark et al. 127855, G from Steyermark & Dunsterville 100777, H from Killip & Smith 15952. doi:10.1371/journal.pone.0010502.g002
Figure 5 in A new species of Andean lizard Proctoporus (Squamata: Gymnophthalmidae) from montane forest of the Historic Sanctuary of Machu Picchu, Peru
Figure 5. Type locality of Proctoporus machupicchu: (A, C) Montane forest, (B) Urubamba River, (D) Habitat of Proctoporus machupicchu. Photo: (6 A–C) Luis Mamani; 6 D (Javier Farfan).
Figure 3 in A new species of Andean lizard Proctoporus (Squamata: Gymnophthalmidae) from montane forest of the Historic Sanctuary of Machu Picchu, Peru
Figure 3. Dorsal and ventral views of living specimens of Proctoporus machupicchu. A–B adult female (MHNC 13362); C–D adult female (MHNC 13513); and E–F inmature male (MHNC 13373); and G not collected of immature male showing femoral pores.
Figure 4 in A new species of Andean lizard Proctoporus (Squamata: Gymnophthalmidae) from montane forest of the Historic Sanctuary of Machu Picchu, Peru
Figure 4. Map showing the distribution of Proctoporus species known from southeast of Peru, based on species listed in Appendix I and in Uzzell (1970), Doan and Castoe (2003), Doan et al. (2005), Chavez et al. (2011), and Goicoechea et al. (2013). Green circle, Proctoporus machupicchu sp. nov.; blue triangle, P. bolivianus; blue square, P. carabaya; red square, P. chasqui; blue circle, P. iridescens; blue pentagon, P. kiziriani; red circle, P. lacertus; red triangle, P. unsaacae; and red pentagon P. sucullucu.
Fig. 2 in A new species of Andean lizard Proctoporus (Squamata: Gymnophthalmidae) from montane forest of the Historic Sanctuary of Machu Picchu, Peru
Fig. 2. (A, B, C) Head of the holotype of Proctoporus machupicchu (MHNC 13362), lateral, dorsal, and ventral view; and (D, E, F) Paratype (MHNC 13373) lateral, dorsal. and ventral view of the head. Scale bar 5 mm.
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.