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33 results for “Stumpffia”
FIGURE 1 in The advertisement call of Stumpffia be Köhler, Vences, D'Cruze & Glaw, 2010 (Anura: Microhylidae: Cophylinae)
FIGURE 1. Calling specimen of Stumpffia be in (a) lateral and (b) dorsal view, with arrows indicating the diagnostic orangish-red colour on the hidden portions of the leg; Spectrograms of (c) a single call and (d) the full recorded call series; Waveforms (e) of a single call and (f) of the full recorded call; (g) Frequency spectrum of one call (FFT size 1024, Hanning window). (c), (e), and (g) refer to the same call (third in the series).
FIGURE 7 in A new Stumpffia (Amphibia: Anura: Microhylidae) from the Ranomafana region, south-eastern Madagascar
FIGURE 7. Habitats of Stumpffia miery sp. nov.; a & b type locality Ambolo forest fragment; small creek where the holotype ZMB 77453 was found (a) and terrestrial forest part (b) where the paratype UADBA_A62121 was collected; c & d banana plantations in Andalangina where the paratypes ZMB 77454 (c), ZSM 121/2011 and UADBA_A62123 (both d) were found.
FIGURE 3 in A new Stumpffia (Amphibia: Anura: Microhylidae) from the Ranomafana region, south-eastern Madagascar
FIGURE 3. Dorsal (left) and ventral (right) view of preserved male holotype (ZMB 77453) of Stumpffia miery sp. nov.
FIGURE 4. 50 in A new Stumpffia (Amphibia: Anura: Microhylidae) from the Ranomafana region, south-eastern Madagascar
FIGURE 4. 50%-majority rule consensus tree from a Bayesian Inference analysis of 895 bp of the 16S rRNA gene, including all nominal Stumpffia species. Scaphiophryne calcarata was used as outgroup. Two asterisks mark posterior probabilities of 0.99-1.0.
FIGURE 5. 50 in A new Stumpffia (Amphibia: Anura: Microhylidae) from the Ranomafana region, south-eastern Madagascar
FIGURE 5. 50%-majority rule consensus tree from a Bayesian Inference analysis of 341 bp of the nuclear RAG1 gene. Scaphiophryne calcarata was used as outgroup. Asterisks mark posterior probabilities of 0.95-0.98 (one asterisk) and 0.99-1.0 (two asterisks).
FIGURE 2 in A new Stumpffia (Amphibia: Anura: Microhylidae) from the Ranomafana region, south-eastern Madagascar
FIGURE 2. Hand (a) and foot (b) of male holotype (ZMB 77453) of Stumpffia miery sp. nov., ventral view.
FIGURE 1 in A new Stumpffia (Amphibia: Anura: Microhylidae) from the Ranomafana region, south-eastern Madagascar
FIGURE 1. Stumpffia miery sp. nov. from the Ranomafana region, southeastern Madagascar, in life; a, b, g: male holotype (ZMB 77453); c, e: male paratype (ZSM 2447/2007); d, f: male paratype (UADBA_A 62120); h: male specimen from type locality which was not collected; i: male paratype (ZMB 77454).
FIGURE 6 in A new Stumpffia (Amphibia: Anura: Microhylidae) from the Ranomafana region, south-eastern Madagascar
FIGURE 6. Sonagram and oscillograms of parts of a call (note series) of Stumpffia miery sp. nov., recorded from holotype specimen (ZMB 77453) on 1 March 2011 (15:00h, 20.5°C) at the type locality. The upper sonagram and oscillogram show a single note at a 100 ms scale whereas the lower oscillogram shows a 4-note section of a call at a 10 s scale.
FIGURE 8 in Molecular, morphological and osteological differentiation of a new species of microhylid frog of the genus Stumpffia from northwestern Madagascar
FIGURE 8. Spectrogram (top) and corresponding oscillogram (bottom) of the advertisement call of Stumpffia analamaina sp. nov., recorded from a glass terrarium (air temperature 23°C).
FIGURE 7 in Molecular, morphological and osteological differentiation of a new species of microhylid frog of the genus Stumpffia from northwestern Madagascar
FIGURE 7. Ventral views of feet of different species of Stumpffia of the north/northwestern clade and S. tridactyla and S. tetradactyla, showing various degrees of external reduction of digits on the right, and CT scans of the feet of the same individuals on the left. External reduction of toes is only partly paralleled by reduction of the skeletal elements (especially in S. tridactyla; see text). Scale bar=1 mm. Formulae show the number of phalanges on toes I–V.
FIGURE 6 in Molecular, morphological and osteological differentiation of a new species of microhylid frog of the genus Stumpffia from northwestern Madagascar
FIGURE 6. Ventral views of left hands of different species of Stumpffia of the north/northwestern clade and S. tridactyla and S. tetradactyla, showing various degrees of external reduction of digits on the right, and CT scans of the hands of the same individuals on the left. External reduction of fingers is only partly paralleled by reduction of the skeletal elements (especially in S. tridactyla; see text). Scale bar=0.5 mm. Asterisks mark right hands in mirrored view. Formulae show the number of phalanges on fingers I–IV.
FIGURE 9 in Molecular, morphological and osteological differentiation of a new species of microhylid frog of the genus Stumpffia from northwestern Madagascar
FIGURE 9. Map of northern Madagascar showing the known distribution records of species and candidate species in the north/ northwestern clade of Stumpffia. Shades in the map show remaining primary vegetation in 2003–2006, modified from the Madagascar Vegetation Mapping Project (http://www.vegmad.org).
FIGURE 4 in Molecular, morphological and osteological differentiation of a new species of microhylid frog of the genus Stumpffia from northwestern Madagascar
FIGURE 4. Specimens and habitat of Stumpffia analamaina sp. nov. (A) Paratype specimen ZSM 2831/2010 (ZCMV 10037) in life (scale bar=1 mm). (B) Frame from a video showing prey capture of S. analamaina, showing partially lateral tongue protrusion as also known from other microhylids. The whitish structure on the right side of the head (arrow) is the tongue which is protruded at an angle of 40–50° relative to the body axis. (C) Dry forest and (D) stream at type locality, specimens were found in the leaf litter at the border of the stream. (E) Foam nest produced by S. analamaina in captivity. (F) Additional specimen (catalogue number uncertain) showing color variation (beige ground color).
FIGURE 5 in Molecular, morphological and osteological differentiation of a new species of microhylid frog of the genus Stumpffia from northwestern Madagascar
FIGURE 5. Skull in oblique right lateral view (above) and ventral view (below), and presacral vertebral column in dorsal view (right) of Stumpffia analamaina sp. nov., paratype specimen ZSM 2831/2010 (ZCMV 10037). Abbreviations: Den, dentary; FP, frontoparietals; Max, maxilla; Na, nasals; Npl—neopalatinum; ParSph, parasphenoid; PrMax, premaxilla; Pt—pterygoid; Qj—quadratojugale; Sac, sacrum; Sq, squamosal (Sq-AP and Sq-PP—anterior and posterior process of squamosal); Ur, urostyle (incompletely shown); V—Vomer; V1-V8, presacral vertebrae (V1+V2 includes atlas and axis).
FIGURE 3 in Molecular, morphological and osteological differentiation of a new species of microhylid frog of the genus Stumpffia from northwestern Madagascar
FIGURE 3. Holotype (ZSM 542/2009) of Stumpffia analamaina sp. nov. in preservative in (A) dorsal view, (B) foot and (C) hand in ventral view, and (D) living holotype in dorsolateral view. Scale bar=1 mm.
FIGURE 2 in Molecular, morphological and osteological differentiation of a new species of microhylid frog of the genus Stumpffia from northwestern Madagascar
FIGURE 2. Haplotype network based on DNA sequences of a fragment of the nuclear RAG1 gene of species and candidate species of the north/northwestern clade of Stumpffia. Circles represent distinct haplotypes, with sizes proportional to the number of individuals within each haplotype. Colors represent species (or candidate species) assignment of individuals on the basis of the mtDNA tree (Fig. 1). Haplotypes connected by a simple line are separated by one nucleotide difference, small black dots represent additional substitutional steps. Note that the Stumpffia sp. 31 cluster contains a number of samples not sequenced for 16S and therefore not reliably assigned to a mtDNA lineage.
FIGURE 1 in Molecular, morphological and osteological differentiation of a new species of microhylid frog of the genus Stumpffia from northwestern Madagascar
FIGURE 1. Phylogenetic tree of 210 individuals of Stumpffia, showing in detail the north/northwestern clade, based on DNA sequences of a fragment of the mitochondrial 16S rRNA gene (50% majority rule consensus tree from a Bayesian inference analysis). Rhombophryne minuta was used as outgroup (not shown). All Stumpffia species and subclades not belonging to the north/northwestern clade are collapsed since they are not the subject of the present study. Bayesian support values are given above branches (only values of 0.95 and higher are shown). Scale bar represents changes per site.
FIGURE 4 in Beautiful bright belly: A distinctive new microhylid frog (Amphibia: Stumpffia) from eastern Madagascar
FIGURE 4. Sonagram and oscillogram of two calls of Stumpffia kibomena sp. nov. (recorded on 20 March 1995 at 15:15 h and 24°C air temperature).
FIGURE 3 in Beautiful bright belly: A distinctive new microhylid frog (Amphibia: Stumpffia) from eastern Madagascar
FIGURE 3. Comparative Stumpffia species in dorsolateral and ventral view. (A–B) Stumpffia aff. kibomena from Masoala (photos: J. E. Randrianirina); (C–D) S. grandis from its type locality Marojejy (photos: F. Glaw & M. Vences); (E–F) S. roseifemoralis from its type locality Marojejy (photos: F. Glaw & M. Vences).
FIGURE 1 in Beautiful bright belly: A distinctive new microhylid frog (Amphibia: Stumpffia) from eastern Madagascar
FIGURE 1. Stumpffia kibomena sp. nov. in life, in dorsolateral and ventral view, respectively. (A–B) One or two individuals (not collected) from Andasibe used for DNA sequencing (photos: D. Edmonds); (C–D) female specimen from An'Ala (photos: F. Glaw); (E–F) male paratype NMBE 1034211 from near Andasibe (photos: D. Vallan).
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