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.
2,007
datasets available to search
ShareScore release 0.9.0
Dataset results
2,007 results for “ecological species”
FIGURE 17 in Agalma clausi (Bedot, 1888) (Siphonophora: Physonectae) - complementary description with notes on species distribution and ecology
FIGURE 17. Details of amphipod placements within zooids of Agalma clausi specimen BWP 1044-22. A. Two Eupronoe sp. (squared) living inside nectophore mesoglea; B. Close-up of picture A showing one of Eupronoe sp. in the axial wing of the Agalma clausi nectophore, and the damage it caused to the radial canal; C. Close up of picture A showing another Eupronoe sp. that lives in the central part of the nectophore, presumably ingesting pre-digested food directly from the radial canal; D. Two Eupronoe sp. (arrowed) living in the lateral part of the nectophore, close to the ostium; E. Exuviae of an amphipod (arrowed) inside the Agalma clausi bract. Scale bars: A. 1 mm; B., C., D. 500 µm; E. 250 µm.
FIGURE 11 in Agalma clausi (Bedot, 1888) (Siphonophora: Physonectae) - complementary description with notes on species distribution and ecology
FIGURE 11. Palpons of Agalma clausi. A. Early bud; B. Tip of mature palpon with amorphous droplet; C. Tip of mature palpon with nematocysts arranged differently; D. Surface of mature palpon with regularly scattered opaque cells; E. Developmental sequence of palpons of specimen BWP 1044-22. Scale bars: A. 100 µm; B. 100 µm; C. 200 µm; D. 100 µm; E 50 µm.
FIGURE 5 in Two new Tytthoscincus Linkem, Diesmos, & Brown (Squamata; Scincidae) from Peninsular Malaysia and another case of microsyntopy between ecologically specialized, unrelated, leaf-litter species
FIGURE 5. Plots of the principal component analyses (PCA) and discriminant analyses of principal components (DAPC) for the meristc, mensural, and concatenated data sets illustrating the morphological separation of Tytthoscincus monticolus sp. nov. and T. keciktuek sp. nov.
FIGURE 4 in Two new Tytthoscincus Linkem, Diesmos, & Brown (Squamata; Scincidae) from Peninsular Malaysia and another case of microsyntopy between ecologically specialized, unrelated, leaf-litter species
FIGURE 4. Maximum Likelihood phylogram depicting the relationships of species within the montane clade of Tytthoscincus and the delimitation of the semi-fossorial and leaf-litter generalist lineages. Black circles denote nodal Bayesian support ± 0.95 and ultrafast bootstrap support ±95, grey circle denotes nodal Bayesian support ± 0.95 only, and the white circle denotes poor Bayesian and ultrafast bootstrap support.
FIGURE 7 in Two new Tytthoscincus Linkem, Diesmos, & Brown (Squamata; Scincidae) from Peninsular Malaysia and another case of microsyntopy between ecologically specialized, unrelated, leaf-litter species
FIGURE 7. Left: General habitat of Tytthoscincus monticolus sp. nov. and T. keciktuek sp. nov. from the Sekayu region of Hulu Terengganu. Photograph by L. L. Grismer. Upper right: microhabitat at the type locality of T. monticolus sp. nov. near Sungai Bubu, Sekayu, Hulu Terengganu, Terengganu State, Peninsular Malaysia. Photograph by M. Afiq-Shuhaimi. Lower right: microhabitat at the type locality of T. keciktuek sp. nov. from Sungai Peres, Sekayu, Hulu Terengganu, Terengganu State, Peninsular Malaysia. Photograph by M. Aqmal-Naser.
FIGURE 2 in Two new Tytthoscincus Linkem, Diesmos, & Brown (Squamata; Scincidae) from Peninsular Malaysia and another case of microsyntopy between ecologically specialized, unrelated, leaf-litter species
FIGURE 2. Type localities for Tytthoscincus keciktuek sp. nov. and T. monticolus sp. nov. and their closest relatives T. perhentianensis and Tytthoscincus sp. nov., respectively, in Peninsular Malaysia.
FIGURE 6 in Two new Tytthoscincus Linkem, Diesmos, & Brown (Squamata; Scincidae) from Peninsular Malaysia and another case of microsyntopy between ecologically specialized, unrelated, leaf-litter species
FIGURE 6. Upper: type specimen (LSUHC 13858) of Tytthoscincus monticolus sp. nov. collected from a hilly area near Sungai Bubu, Sekayu, Hulu Terengganu, Terengganu State, Peninsular Malaysia. Photograph by A. B. Ahmad. Middle: type specimen (LSUHC 13859) of Tytthoscincus keciktuek sp. nov. collected along a small tributary of the Sungai Peres, Sekayu, Hulu Terengganu, Terengganu State, Peninsular Malaysia. Photograph by A. B. Ahmad. Lower: Tytthoscincus butleri (LUSHC 13860) from a new lowland locality at Bukit Mertajam, Penang, Peninsular Malaysia. Photograph by E.S.H. Quah.
FIGURE 3 in Two new Tytthoscincus Linkem, Diesmos, & Brown (Squamata; Scincidae) from Peninsular Malaysia and another case of microsyntopy between ecologically specialized, unrelated, leaf-litter species
FIGURE 3. Generalized illustration of head scale terminology of Tytthoscincus adapted from Grismer et al. (2017a) and Taylor (1935). cs = chinshield; fn = frontonasal; il = infralabial; lo = loreal; m = mental; n = nasal; p = parietal; pf = prefrontal; pm = postmental; po = preorbital; psc = postsuperciliary; psl = postsupralabial; pt = primary temporal; r = rostral; sc = superciliary; sl = supralabial; so = supraorbital; st = secondary temporal; asterisk = subocular; and star = postocular.
FIGURES 4–8. Antillobisium tomasi n in A new Antillobisium species (Arachnida: Pseudoscorpiones: Bochicidae) from Cuba, with biogeographical and ecological remarks on the genus
FIGURES 4–8. Antillobisium tomasi n. sp., male holotype. 4, carapace; 5, reticular surface magnified; 6, right chelicera; 7, distal parts of right cheliceral fingers; 8, left cheliceral rallum.
FIGURES 14–21. Antillobisium tomasi n in A new Antillobisium species (Arachnida: Pseudoscorpiones: Bochicidae) from Cuba, with biogeographical and ecological remarks on the genus
FIGURES 14–21. Antillobisium tomasi n. sp., female paratype, SEM images. 14, dental row in basal half of fixed finger (finger accidentally cracked longitudinally), ventral view; 15, dental row in apical part of fixed finger, arrow points to sensillum (se) partially hidden by debris, ventral view; 16, dental row, portion of distal half, with inset at higher magnification, dorsal view; 17–19, dental row, portion of distal half, at successively higher magnifications, ventro-antiaxial view; 20, apex of leg IV, with inset of distal end of subterminal seta at higher magnification, antiaxial view; 21, right cheliceral rallum. Abbreviation: se, sensillum.
FIGURES 9–13. Antillobisium tomasi n in A new Antillobisium species (Arachnida: Pseudoscorpiones: Bochicidae) from Cuba, with biogeographical and ecological remarks on the genus
FIGURES 9–13. Antillobisium tomasi n. sp., male holotype, right pedipalp. 9, trochanter and femur, dorsal view; 10, patella, dorsal view; 11, chela, near-dorsal view; 12, chela, antiaxial view; 13, tips of chelal fingers, paraxial view. Abbreviation: se, sensillum.
FIGURES 1–2. 1 in A new Antillobisium species (Arachnida: Pseudoscorpiones: Bochicidae) from Cuba, with biogeographical and ecological remarks on the genus
FIGURES 1–2. 1, known distribution of the genus Antillobisium in Cuba. Triangles: A. vachoni, squares: A. mitchelli, circle: A. tomasi n. sp. 2, map of Cueva del Pirata, Sancti Spiritus province (modified from Núñez-Jiménez et al. 1968).
Supplementary material 2 from: Dickey JWE, Cuthbert RN, Rea M, Laverty C, Crane K, South J, Briski E, Chang X, Coughlan NE, MacIsaac HJ, Ricciardi A, Riddell GE, Xu M, Dick JTA (2018) Assessing the relative potential ecological impacts and invasion risks of emerging and future invasive alien species. NeoBiota 40: 1-24. https://doi.org/10.3897/neobiota.40.28519
Table S2. Summary of the GB online survey outlining which of the four species of turtle was being sold :
FIGURES 1. Ecological images. 1A in Revision of the genus Theopea Baly (Coleoptera: Chrysomelidae: Galerucinae) of East Asia: species lacking modified clypeus in males and the T. sauteri species group
FIGURES 1. Ecological images. 1A. Female of Theopea cheni sp. nov. visiting flowers; 1B. Left: female of T. cheni sp. nov., right: male of T. sauteri; 1C. Adults of T. collaris feeding on leaves of Neolitsea parvigemma; 1D. Female of T. irregularis; 1E. A couple of T. kanmiyai; 1F. Female of T. sauteri.
Fig 10 in Morphological and ecological convergence at the lower size limit for vertebrates highlighted by five new miniaturised microhylid frog species from three different Madagascan genera
Fig 10. Rhombophryne proportionalis sp. nov., holotype ZSM 1826/2010, in life. (a) dorsolateral, (b) dorsal, and (c) ventral view. https://doi.org/10.1371/journal.pone.0213314.g010
Fig 8 in Morphological and ecological convergence at the lower size limit for vertebrates highlighted by five new miniaturised microhylid frog species from three different Madagascan genera
Fig 8. Osteology of Mini scule gen. et sp. nov. holotype (ZSM 5943/2005). (a, b) Whole skeleton in (a) dorsal and (b) ventral view. (c-f) Skull in (c) lateral, (d) ventral, (e) anterior, and (f) dorsal view. (g) Foot in ventral view. (h) Hand in ventral view. For abbreviations, see Fig 6. https://doi.org/10.1371/journal.pone.0213314.g008
Fig 6 in Morphological and ecological convergence at the lower size limit for vertebrates highlighted by five new miniaturised microhylid frog species from three different Madagascan genera
Fig 6. Osteology of Mini mum gen. et sp. nov. holotype (ZSM 861/2014). (a-c) Whole skeleton in (a) dorsal, (b) lateral, and (c) ventral view. (d-g) Skull in (d) lateral, (e) ventral, (f) anterior, and (g) dorsal view. (h) Foot in ventral view. (i) Hand in ventral view. Abbreviations for all osteological figures: angspl, angulosplenial; col.pip, pars interna plectra of columella; col.pmp, pars media plectra of columella; cpl(s), carpal(s); den, dentary; exoc, exoccipital; exoc.occ, occipital condyle of exoccipital; fpar, frontoparietal; max, maxilla; max.fp, facial process of maxilla; mmk, mentomeckelian; n, nasal; n.mp, maxillary process of nasal; npl, neopalatine; oc, otic capsule; prsph. ap, parasphenoid alary process; prsph.cp, parasphenoid cultriform process; prsph.pmp, parasphenoid posteromedial process; pmx, premaxilla; pmx.ap, premaxilla ascending process; pmx.lp, premaxilla lateral process; pmx.pp, premaxilla palatine process; povom, postchoanal portion of vomer; pro, prootic; prvom, prechoanal portion of vomer; pt.ar, pterygoid anterior ramus; pt.mr, pterygoid medial ramus; pt.vr, pterygoid ventral ramus; qj, quadratojugal; smx, septomaxilla; spheth, sphenethmoid; sq. or, squamosal otic ramus; sq.vr, squamosal ventral ramus; sq.zr, squamosal zygomatic ramus; tsl(s), tarsals; vt, vomerine teeth. https://doi.org/10.1371/journal.pone.0213314.g006
Fig 4 in Morphological and ecological convergence at the lower size limit for vertebrates highlighted by five new miniaturised microhylid frog species from three different Madagascan genera
Fig 4. Mini mum gen. et sp. nov. in life and its habitat in Manombo Special Reserve. (a-c) ZSM 861/2014, holotype, in (a) anterolateral view on a thumbnail, (b) dorsolateral view on a leaf, (c) ventral view. (d, e) ZSM 862/2014, paratype, in (d) ventral view, and (e) lateral view on a thumbnail. (f, g) ZMB 83194, paratype, in (f) dorsolateral view, and (g) ventral view. (h) ZMB 81993, paratype, in dorsolateral view. (i) ZMA 20172 in posterodorsolateral view. (j) Habitat of the new species in Manombo Special Reserve. https://doi.org/10.1371/journal.pone.0213314.g004
Fig 2 in Morphological and ecological convergence at the lower size limit for vertebrates highlighted by five new miniaturised microhylid frog species from three different Madagascan genera
Fig 2. Holotypes of the new species described in this paper and their hands. Whole specimens in dorsal (left) and ventral (right) view. Hand images not to scale. https://doi.org/10.1371/journal.pone.0213314.g002
Fig 5 in Morphological and ecological convergence at the lower size limit for vertebrates highlighted by five new miniaturised microhylid frog species from three different Madagascan genera
Fig 5. One-second spectrograms and oscillograms of the calls of the new species described here. Insets represent the respective species but not the calling specimens. (a) Mini mum gen. et sp. nov., paratype ZMB 81993 from Manombo, (b) Mini scule gen. et sp. nov., ZSM 265/2018 from Sainte Luce, (c) Rhombophryne proportionalis sp. nov., part of a call (note series) of a specimen from Bepia campsite, Tsaratanana (not collected), (d) Anodonthyla eximia sp. nov., specimen not collected, from Maharira (Ranomafana). https://doi.org/10.1371/journal.pone.0213314.g005
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.