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341 results for “northern Madagascar”
Figure 1 from: Scherz MD, Köhler J, Rakotoarison A, Glaw F, Vences M (2019) A new dwarf chameleon, genus Brookesia, from the Marojejy massif in northern Madagascar. Zoosystematics and Evolution 95(1): 95-106. https://doi.org/10.3897/zse.95.32818
Figure 1 Molecular phylogenetic trees of species in the Brookesiaminima group, based on sequences of the mitochondrial 16S (480 bp) and ND2 (574 bp) genes, inferred under the Maximum Likelihood optimality criterion, and the GTR+G (16S) and HKY+I+G (ND2) substitution models. Values at nodes are support values from a bootstrap analysis in percent (500 replicates) and are shown only if >50%. The two gene fragments were analysed separately and not concatenated because partly different samples were available for each of them. The trees were rooted with Brookesiabrygooi (removed for better graphical representation).
Figure 3 from: Scherz MD, Köhler J, Rakotoarison A, Glaw F, Vences M (2019) A new dwarf chameleon, genus Brookesia, from the Marojejy massif in northern Madagascar. Zoosystematics and Evolution 95(1): 95-106. https://doi.org/10.3897/zse.95.32818
Figure 3 Map of northern Madagascar showing the localities of species of the Brookesiaminima group in this region, only representing records verified by molecular data (except the B.peyrierasi record from Masoala and the B.minima record from Nosy Be). Note that B.dentata, B.exarmata, and B.ramanantsoai occur further south and are not included in the map. Red (dry forest) and green (rainforest) show remaining primary vegetation in 2003–2006, modified from the Madagascar Vegetation Mapping Project (http://www.vegmad.org); see the project for a key to the other colours and the vegetation types they indicate.
Figure 2 from: Scherz MD, Köhler J, Rakotoarison A, Glaw F, Vences M (2019) A new dwarf chameleon, genus Brookesia, from the Marojejy massif in northern Madagascar. Zoosystematics and Evolution 95(1): 95-106. https://doi.org/10.3897/zse.95.32818
Figure 2 Molecular phylogeny of species in the Brookesiaminima group, based on the nuclear c-mos gene (405 bp, no missing data) and inferred under the Maximum Likelihood optimality criterion (K2 substitution model). Values at nodes are support values from a bootstrap analysis in percent (500 replicates) and are only shown if >50%. The tree was rooted with Brookesiabrygooi (removed for better graphical representation).
Figure 6 from: Scherz MD, Köhler J, Rakotoarison A, Glaw F, Vences M (2019) A new dwarf chameleon, genus Brookesia, from the Marojejy massif in northern Madagascar. Zoosystematics and Evolution 95(1): 95-106. https://doi.org/10.3897/zse.95.32818
Figure 6 The preserved hemipenes of Brookesiatedi sp. n. and its sister species, B.peyrierasi in sulcal view. Not to scale. Note that the spines of B.peyrierasi are equally visible in asulcal view, and in all studied individuals of this species (see Glaw et al. 1999).
Figure 5 from: Scherz MD, Köhler J, Rakotoarison A, Glaw F, Vences M (2019) A new dwarf chameleon, genus Brookesia, from the Marojejy massif in northern Madagascar. Zoosystematics and Evolution 95(1): 95-106. https://doi.org/10.3897/zse.95.32818
Figure 5 The holotype of Brookesiatedi sp. n. from Marojejy in lateral view (above), and dorsal (middle) and lateral (below) views of the heads of the types of B.tedi sp. n., in comparison with a representative male specimen of B.peyrierasi from the type locality Nosy Mangabe. The lateral view of the holotype (marked with an asterisk) has been mirrored to be in the same orientation as those of the other specimens. Scale bar: 1 mm.
Supplementary material 2 from: Gąsiorek P, Vončina K (2019) New Echiniscidae (Heterotardigrada) from Amber Mountain (Northern Madagascar). Evolutionary Systematics 3(1): 29-39. https://doi.org/10.3897/evolsyst.3.33580
: Data type: genetic data
Supplementary material 1 from: Gąsiorek P, Vončina K (2019) New Echiniscidae (Heterotardigrada) from Amber Mountain (Northern Madagascar). Evolutionary Systematics 3(1): 29-39. https://doi.org/10.3897/evolsyst.3.33580
: Data type: morphometric data
Linked collectors and determiners for: A new species of Pandanus-dwelling frog from northern Madagascar related to Guibemantis pulcher.
Natural history specimen data linked to collectors and determiners held within, "A new species of Pandanus-dwelling frog from northern Madagascar related to Guibemantis pulcher". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/cf4f6d5e-e9dc-4686-9e7a-dcf309f1023b">https://bionomia.net/dataset/cf4f6d5e-e9dc-4686-9e7a-dcf309f1023b</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/cf4f6d5e-e9dc-4686-9e7a-dcf309f1023b">https://gbif.org/dataset/cf4f6d5e-e9dc-4686-9e7a-dcf309f1023b</a>. Formatted as a Frictionless Data package.
Figure 2 from: Glaw F, Rösler H, Ineich I, Gehring P, Köhler J, Vences M (2014) A new species of nocturnal gecko (Paroedura) from karstic limestone in northern Madagascar. Zoosystematics and Evolution 90(2): 249-259. https://doi.org/10.3897/zse.90.8705
Figure 2 - Paratypes of Paroedura hordiesi: (A) adult male ZSM 531/2000 (SVL 53.5 mm) in dorsolateral view; (B) adult female ZSM 2113/2007 (SVL 46.1 mm) in dorsal view; (C) subadult ZSM 2107/2007 in lateral view; (D) juvenile (ZSM 2106/2007, SVL 28.1 mm) and subadult (ZSM 2107/2007, SVL 35.2 mm) in dorsolateral view.
Figure 1 from: Glaw F, Rösler H, Ineich I, Gehring P, Köhler J, Vences M (2014) A new species of nocturnal gecko (Paroedura) from karstic limestone in northern Madagascar. Zoosystematics and Evolution 90(2): 249-259. https://doi.org/10.3897/zse.90.8705
Figure 1 - Maximum Likelihood tree inferred from 664 bp of the mitochondrial cytochrome oxidase subunit 1 (cox1) gene, showing the differentiation between Paroedura species. Note that this single-gene tree is not suitable to reconstruct the basal relationships of these geckos but is rather shown to document the large genetic divergences among all of them, and of Paroedura hordiesi to its relatives. Numbers behind species names are sample numbers as given in Nagy et al. (2012) and Koubová et al. (2014), as well as GenBank accession numbers of the respective sequences.
Figure 5 from: Glaw F, Rösler H, Ineich I, Gehring P, Köhler J, Vences M (2014) A new species of nocturnal gecko (Paroedura) from karstic limestone in northern Madagascar. Zoosystematics and Evolution 90(2): 249-259. https://doi.org/10.3897/zse.90.8705
Figure 5 - Paroedura karstophila from its type locality Tsingy de Namoroka (A), observed in the night of 10 September 2012 around 22:50 (not collected), and Paroedura homalorhina from its type locality Ankarana (B).
Figure 4 from: Glaw F, Rösler H, Ineich I, Gehring P, Köhler J, Vences M (2014) A new species of nocturnal gecko (Paroedura) from karstic limestone in northern Madagascar. Zoosystematics and Evolution 90(2): 249-259. https://doi.org/10.3897/zse.90.8705
Figure 4 - Drawings of hemipenis of Paroedura hordiesi (ZSM 343/2004): (A) asulcal view; (B) lateral view; (C) detailed view on cranial lobe.
Figure 1 from: Scherz MD, Rakotoarison A, Hawlitschek O, Vences M, Glaw F (2015) Leaping towards a saltatorial lifestyle? An unusually long-legged new species of Rhombophryne (Anura, Microhylidae) from the Sorata massif in northern Madagascar. Zoosystematics and Evolution 91(2): 105-114. https://doi.org/10.3897/zse.91.4979
Figure 1 - Measurement scheme used to measure Rhombophryne longicrus sp. n. and congeners for this study. Abbreviations are explained in Materials and Methods, as are cumulative measures such as forelimb and hindlimb length. * indicates IMCL.
Figure 3 from: Scherz MD, Rakotoarison A, Hawlitschek O, Vences M, Glaw F (2015) Leaping towards a saltatorial lifestyle? An unusually long-legged new species of Rhombophryne (Anura, Microhylidae) from the Sorata massif in northern Madagascar. Zoosystematics and Evolution 91(2): 105-114. https://doi.org/10.3897/zse.91.4979
Figure 3 - Rhombophryne longicrus sp. n. in life. Holotype ZSM 1630/2012 in (a) dorsolateral and (c) ventral view. Paratype UADBA-A 60271 in (b) dorsolateral and (d) ventral view.
Figure 4 from: Scherz MD, Rakotoarison A, Hawlitschek O, Vences M, Glaw F (2015) Leaping towards a saltatorial lifestyle? An unusually long-legged new species of Rhombophryne (Anura, Microhylidae) from the Sorata massif in northern Madagascar. Zoosystematics and Evolution 91(2): 105-114. https://doi.org/10.3897/zse.91.4979
Figure 4 - Osteology of the holotype of Rhombophryne longicrus, ZSM 1630/2012. Skull in (a) lateral, (b) dorsal, and (c) ventral view. Skeleton in (d) dorsal and (e) ventral view. Note: figures display only calcified structures; cartilages are omitted due to limitations of micro-CT scanning. Abbreviations: angspl = angulosplenial, col = columella, exoc = exoccipital, fpar = frontoparietal, max = maxillary, mmk = mentomeckelian, pmax = premaxilla, povom = postchoanal vomer+neopalatine, proot = prootic, prsph = parasphenoid, prvom = prechoanal vomer, pter = pterygoid, qj = quadratojugal, smax = septomaxilla, spheth = sphenethmoid, sq = squamosal.
Figure 2 from: Scherz MD, Rakotoarison A, Hawlitschek O, Vences M, Glaw F (2015) Leaping towards a saltatorial lifestyle? An unusually long-legged new species of Rhombophryne (Anura, Microhylidae) from the Sorata massif in northern Madagascar. Zoosystematics and Evolution 91(2): 105-114. https://doi.org/10.3897/zse.91.4979
Figure 2 - Majority-rule consensus tree derived from Bayesian inference analysis of the genus Rhombophryne based on the mitochondrial 16S rRNA gene. Numbers at nodes represent posterior probability (PP). PP values greater than 0.95 are bolded. Values lower than 0.8 are not shown.
Figure 3 from: Brannoch SK, Svenson GJ (2016) A new genus and species (Cornucollis gen. n. masoalensis sp. n.) of praying mantis from northern Madagascar (Mantodea, Iridopterygidae, Tropidomantinae). ZooKeys 556: 65-81. https://doi.org/10.3897/zookeys.556.6906
Figure 3 - Illustration of dorsal perspective of the pronotum of Cornucollis masoalensis gen.n., sp. n., male (scale bar = 1 mm).
Figure 4 from: Brannoch SK, Svenson GJ (2016) A new genus and species (Cornucollis gen. n. masoalensis sp. n.) of praying mantis from northern Madagascar (Mantodea, Iridopterygidae, Tropidomantinae). ZooKeys 556: 65-81. https://doi.org/10.3897/zookeys.556.6906
Figure 4 - Illustration of the cervical sclerites of Cornucollis masoalensis gen.n., sp. n., male (scale bar = 1 mm). Abbreviations: ics = intercervical sclerites; lcs = lateral cervical sclerites; vcs = ventral cervical sclerite.
Figure 6 from: Brannoch SK, Svenson GJ (2016) A new genus and species (Cornucollis gen. n. masoalensis sp. n.) of praying mantis from northern Madagascar (Mantodea, Iridopterygidae, Tropidomantinae). ZooKeys 556: 65-81. https://doi.org/10.3897/zookeys.556.6906
Figure 6 - Cornucollis masoalensis gen.n., sp.n male genital complex. Right phallomeric lobe and dorsal sclerotization of the left phallomeric complex (i.e., the left phallomere) are pictured in the ventral perspective; the ventral sclerotization of the left phallomere complex (i.e., the ventral phallomere) (L4A) is shown in the dorsal perspective (scale bar = 1 mm). Abbreviations: an = anterior apodeme; ap = anterior process; bm = right arm; L1, L2, L4B = a sub-sclerite of the dorsal sclerotization of the left phallomeric complex; L4A = the ventral sclerotization of the left phallomeric complex; loa = lobo membranoso; paa = apical process; pda = distal process; pia = piastra ventrale; pva = processo ventrale sclerificato; R1 = a sub-sclerite of the right phallomere; R3 = a sub-sclerite of the right phallomere.
Figure 5 from: Brannoch SK, Svenson GJ (2016) A new genus and species (Cornucollis gen. n. masoalensis sp. n.) of praying mantis from northern Madagascar (Mantodea, Iridopterygidae, Tropidomantinae). ZooKeys 556: 65-81. https://doi.org/10.3897/zookeys.556.6906
Figure 5 - Arrow indicates procumbent posteroventral foretibial spine arrangement of Cornucollis masoalensis gen.n., sp. n., male (scale bar = 1 mm).
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International Brain Laboratory public data
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OpenNeuro
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