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378 results for “widespread species”
Linked collectors and determiners for: A fresh start in ambersnail (Gastropoda: Succineidae) taxonomy: finding a foothold using a widespread species of Oxyloma.
Natural history specimen data linked to collectors and determiners held within, "A fresh start in ambersnail (Gastropoda: Succineidae) taxonomy: finding a foothold using a widespread species of Oxyloma". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/34e2ec3d-4fec-4e92-8363-f55c0df0aee0">https://bionomia.net/dataset/34e2ec3d-4fec-4e92-8363-f55c0df0aee0</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/34e2ec3d-4fec-4e92-8363-f55c0df0aee0">https://gbif.org/dataset/34e2ec3d-4fec-4e92-8363-f55c0df0aee0</a>. Formatted as a Frictionless Data package.
Fig. 8 in A fresh start in ambersnail (Gastropoda: Succineidae) taxonomy: finding a foothold using a widespread species of Oxyloma
Fig. 8. Oxyloma salleanum (L. Pfeiffer, 1850). Spring Garden Lake, Volusia County, Florida [O. effusum (L. Pfeiffer, 1853) topotypes]. A–B. Reproductive organs of specimen 2737 (NMV F 304258, shell height 11.0 mm) in ventral view, and male genitalia. C –D. Reproductive organs of specimen 2745 (NMV F 304259, 11.7 mm) in ventral view, and male genitalia. Details of the male genitalia of specimens 2737 and 2745 (B, D), with penial sheath opened to expose the epiphallus and penis with proximal appendix. Penis opened to show the spatial relationships of appendix and epiphallus openings to proximal penis, and the longitudinal folds bearing calcite rosettes embedded in the epithelium. Abbreviations: see Material and methods.
Fig. 7 in A fresh start in ambersnail (Gastropoda: Succineidae) taxonomy: finding a foothold using a widespread species of Oxyloma
Fig. 7. Oxyloma salleanum (L. Pfeiffer, 1850). Intracoastal waterway at Lake Salvador, near Jean Lafitte, Louisiana. A–B. Reproductive organs of specimen 2789 (NMV F 304257, shell height 10.55 mm), in ventral view, and male genitalia. C–D. Reproductive organs of specimen 2788 (NMV F 304256, 10.1 mm), in ventral view, and male genitalia. Details of the male genitalia (B, D), with penial sheath opened to expose the epiphallus and penis with proximal appendix. Penis opened to show the spatial relationships of appendix and epiphallus openings to proximal penis, and the longitudinal folds bearing calcite rosettes embedded in the epithelium. Abbreviations: see Material and methods.
Fig. 5 in A fresh start in ambersnail (Gastropoda: Succineidae) taxonomy: finding a foothold using a widespread species of Oxyloma
Fig. 5. Apertural and reverse view of shell of Oxyloma salleanum (L. Pfeiffer, 1850) and O. effusum (L. Pfeiffer, 1853). A. Photograph of Oxyloma effusum shell taken from the type locality in eastern Florida. Shell is 11.28 mm total height. B. Photograph of Oxyloma salleanum shell taken from the type locality near New Orleans, Louisiana. Shell is 13.11 mm total height. C. Syntypes of Oxyloma salleanum (NHMUK # 20170302). D. Syntypes of Oxyloma effusum (NHMUK # 20170303). Scale bars = 1 mm.
Fig. 3. Maximum likelihood phylogeny from 882 in A fresh start in ambersnail (Gastropoda: Succineidae) taxonomy: finding a foothold using a widespread species of Oxyloma
Fig. 3. Maximum likelihood phylogeny from 882 bp alignment of 15 LSU sequences presenting only the focal taxa and localities. Ultra-fast bootstrap values indicated behind the nodes supported. Full 51-individual analysis reported in Supp. file 2, Supp. file 3. Type localities indicated with an *.
Fig. 6 in A fresh start in ambersnail (Gastropoda: Succineidae) taxonomy: finding a foothold using a widespread species of Oxyloma
Fig. 6. Oxyloma salleanum (L. Pfeiffer, 1850). Intracoastal waterway at Lake Salvador, near Jean Lafitte, Louisiana, specimen 2789 (NMV F 304257, shell height 10.55 mm). A. Dissected animal, with mantle reflected to right to show general layout of organs within body cavity, and organs of mantle cavity in ventral view. B. Genitalia in situ, showing route of right band of the columellar muscle, over male genitalia to reach right ocular peduncle, with branch passing under male genitalia to reach right inferior tentacle, and a lateral branch to insert on vagina. Abbreviations: see Material and methods.
Fig. 4. A in A fresh start in ambersnail (Gastropoda: Succineidae) taxonomy: finding a foothold using a widespread species of Oxyloma
Fig. 4. A. Plot of principal component analysis on Oxyloma effusum (L. Pfeiffer, 1853) (n = 19) and O. salleanum (L. Pfeiffer, 1850) (n = 46) shells collected from the type localities. Landmarked types and original figures are included for each species. Convex hulls are drawn from non-type shells examined. The centroid means of each species shown with oversize symbol. Outline drawings represent the mean form of each nominal species compared to the overall mean shape. B. The outlines of the two nominal species superimposed with O. salleanum in black and O. effusum in gray. The heat map deformation grid shows the shape change from the mean form of O. effusum to the mean form of O. salleanum. Vectors on landmarks show the direction and magnitude of change.
Fig. 1 in A fresh start in ambersnail (Gastropoda: Succineidae) taxonomy: finding a foothold using a widespread species of Oxyloma
Fig. 1. Map of North America showing confirmed localities for Oxyloma salleana (L. Pfeiffer, 1850). Shown in gray are major rivers (USGS 2004).
Fig. 2. Maximum likelihood phylogeny from 690 in A fresh start in ambersnail (Gastropoda: Succineidae) taxonomy: finding a foothold using a widespread species of Oxyloma
Fig. 2. Maximum likelihood phylogeny from 690 bp alignment of 34 COI sequences presenting only the focal taxa and localities. Ultra-fast bootstrap values indicated behind the nodes supported. Full 142-individual analysis reported in Supp. file 2, Supp. file 3. Type localities indicated with an *. Species supported by species delimitation analyses indicated with a hollow circle.
The widespread trade in stingless beehives may introduce them into novel places and could threaten species
<p>Dataset used in <strong>The widespread trade in stingless beehives may introduce them into novel places and could threaten species </strong>published in <em>Journal of Applied Ecology</em> (<a href="https://doi.org/10.1111/1365-2664.14108">https://doi.org/10.1111/1365-2664.14108</a>).</p>
Figs. 20–24. Zimiris diffusa, new species. 20. Left male palp, prolateral view. 21. Same, ventral view. 22. Same, retrolateral view. 23. Epigynum, ventral view. 24 in A Revision of the Widespread Spider Genus Zimiris (Araneae, Prodidomidae)
Figs. 20–24. Zimiris diffusa, new species. 20. Left male palp, prolateral view. 21. Same, ventral view. 22. Same, retrolateral view. 23. Epigynum, ventral view. 24. Same, dorsal view.
Figure 6 in Systematics and biogeography of the widespread Neotropical gekkonid genus Thecadactylus (Squamata), with the description of a new cryptic species
Figure 6. Majority rule consensus summary of trees sampled by the BI analysis of the total evidence data set including all OTUs (A) and including only those OTUs for which a majority of the data was available (B). Posterior probabilities are presented below the branches. SWA indicates the south-western Amazonian clade, which herein is described as T. solimoensis.
Figure 7 in Systematics and biogeography of the widespread Neotropical gekkonid genus Thecadactylus (Squamata), with the description of a new cryptic species
Figure 7. Photographs of the holotype of Thecadactylus solimoensis [QCAZ-6691 (= OMNH-36431)] (A), and the neotype of T. rapicauda (RMNH-16267) (B).
Figure 4 in Systematics and biogeography of the widespread Neotropical gekkonid genus Thecadactylus (Squamata), with the description of a new cryptic species
Figure 4. Summary of PCA results from analysis of the residual morphometric data set. A, plot of PC-1 and PC-2 with 95% locality centroids plotted. B, distribution of within- (unfilled) and between- (filled) clade (SWA and the remainder) Euclidean distances calculated based on the first eight PC factor scores.
Figure 3 in Systematics and biogeography of the widespread Neotropical gekkonid genus Thecadactylus (Squamata), with the description of a new cryptic species
Figure 3. Majority rule consensus summary of trees sampled by the BI analysis of the morphological data set. Posterior probabilities are presented below branches. SWA indicates the south-western Amazonian clade, which is described herein as T. solimoensis.
Figure 1 in Systematics and biogeography of the widespread Neotropical gekkonid genus Thecadactylus (Squamata), with the description of a new cryptic species
Figure 1. Distribution of Thecadactylus, showing ranges of the two constituent species, T. rapicauda (diagonal lines) and T. solimoensis sp. nov. (cross hatching). Modified from Russell & Bauer (2002a).
Figure 2 in Systematics and biogeography of the widespread Neotropical gekkonid genus Thecadactylus (Squamata), with the description of a new cryptic species
Figure 2. Distribution of localities sampled for the morphological, morphometric and molecular data sets. Localities denoted with * appear in the morphometric data set and have elevated sample sizes; those with # also appear in this data set, but have very low sample sizes; those with ^ are included in the molecular data set (also see Kronauer et al., 2005); those without a symbol are included in the morphological data set only. X^ denotes the localitiy of Acre, Brazil, which was only sampled for the molecular data set. Locality numbers correspond to those in Appendix 2.
Figure 5 in Systematics and biogeography of the widespread Neotropical gekkonid genus Thecadactylus (Squamata), with the description of a new cryptic species
Figure 5. Majority rule bootstrap consensus tree of cladograms produced by MP analysis of the total evidence data set. Bootstrap values are presented below branches. SWA indicates the south-western Amazonian clade, which herein is described as T. solimoensis.
Figure 9 in Combined phylogenetic analysis of a new North American fossil species confirms widespread Eocene distribution for stem rollers (Aves, Coracii)
Figure 9. Strict consensus cladogram of 24 most parsimonious trees (length = 345; consistency index = 0.499; retention index = 0.474; rescaled consistency index = 0.237) from the analysis using the morphological data set. Bootstrap support values are presented above and Bremer support values are presented below the branch they refer to. Note that the crown clade Coracioidea (Coraciidae + Brachypteraciidae) is not labelled; the position of Geranopterus alatus with respect to this clade is unresolved. †, extinct taxa; NA, North American Coracii.
Figure 6 in Combined phylogenetic analysis of a new North American fossil species confirms widespread Eocene distribution for stem rollers (Aves, Coracii)
Figure 6. Distal wing elements of Paracoracias in dorsal view. Anatomical abbreviations: I:1, left manual phalanx I:1; II:1, manual phalanx II:1; II:2, manual phalanx II:2; cmc, carpometacarpus; r, radius; u, ulna; ul, ulnare.
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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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