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183 results for “Eulipotyphla”

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FIGURE 4 in A new species of small-eared shrew of the genus Cryptotis (Mammalia, Eulipotyphla, Soricidae) from the northernmost Peruvian Andes

FIGURE 4. Anterior aspect of the left humerus. From left to right: Cryptotis montivaga (Chimborazo, Ecuador), C. montivaga (Azuay, Ecuador), C. evaristoi (Cajamarca, Peru) and C. montivaga (Piura, Peru). Scale bar = 1 mm.

opennotspecifiedJan 2018View details →
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FIGURE 5 in A new species of small-eared shrew of the genus Cryptotis (Mammalia, Eulipotyphla, Soricidae) from the northernmost Peruvian Andes

FIGURE 5. Results of principal components analyses, performed with seven humerus measurements (Table 3), illustrating the dispersion of specimen scores for Cryptotis sp. nov. (open circles); C. niausa (filled circles); C. equatoris (open stars); C. osgoodi (open triangles), C. montivaga of Ecuador (filled triangles); and C. peruviensis (filled squares).

opennotspecifiedJan 2018View details →
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FIGURE 6. Cytochrome b in A new species of small-eared shrew of the genus Cryptotis (Mammalia, Eulipotyphla, Soricidae) from the northernmost Peruvian Andes

FIGURE 6. Cytochrome b phylogenetic trees for Cryptotis genus. Bootstrap supports are indicated at each node for Maximum Likelihood (left); and Posterior Probability values for Bayesian Inference (right).

opennotspecifiedJan 2018View details →
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FIGURE 3 in A new species of small-eared shrew of the genus Cryptotis (Mammalia, Eulipotyphla, Soricidae) from the northernmost Peruvian Andes

FIGURE 3. Results of principal components analyses, performed with 20 cranial and mandibular measurements (Table 1), illustrating the dispersion of specimen scores for Cryptotis sp. nov. (filled circles); C. niausa (open squares); C. equatoris (open diamonds); C. osgoodi (filled triangles); C. montivaga from Ecuador (open circles); C. montivaga from Peru (filled squares) and C. peruviensis (filled star).

opennotspecifiedJan 2018View details →
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FIGURE 2 in A new species of small-eared shrew of the genus Cryptotis (Mammalia, Eulipotyphla, Soricidae) from the northernmost Peruvian Andes

FIGURE 2. Comparison of external measurements among seven species of Cryptotis from Peru, Ecuador and Mexico. The average and standard deviation are given for: A. head and body length; B. tail length; C. weight; and D. condylobasal length.

opennotspecifiedJan 2018View details →
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FIGURE 1 in A new species of small-eared shrew of the genus Cryptotis (Mammalia, Eulipotyphla, Soricidae) from the northernmost Peruvian Andes

FIGURE 1. Known localities of Peruvian and Ecuadorian species of the Cryptotis genus. Records are based on Vivar et al. (1997), Moreno and Albuja (2014), and specimens observed in this study (see Appendix I for locality details).

opennotspecifiedJan 2018View details →
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Supplementary material 2 from: Bego F, Saçdanaku E, Pacifici M, Rondinini C (2018) Small terrestrial mammals of Albania: distribution and diversity (Mammalia, Eulipotyphla, Rodentia). ZooKeys 742: 127-163. https://doi.org/10.3897/zookeys.742.22364

Table S2. List of species with numbers of records by year of publication and/or year of data collection :

opencc-zeroApr 2018View details →
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Supplementary material 1 from: Bannikova AA, Jenkins PD, Solovyeva EN, Pavlova SV, Demidova TB, Simanovsky SA, Sheftel BI, Lebedev VS, Fang Y, Dalen L, Abramov AV (2019) Who are you, Griselda? A replacement name for a new genus of the Asiatic short-tailed shrews (Mammalia, Eulipotyphla, Soricidae): molecular and morphological analyses with the discussion of tribal affinities. ZooKeys 888: 133-158. https://doi.org/10.3897/zookeys.888.37982

: Explanation note: Figure S1. The phylogenetic relationships in Blarinella as reconstructed in MrBayes based on the extended alignment of cytb. Figure S2. The phylogenetic relationships in Blarinella as reconstructed in MrBayes based on the alignment of ApoB. Table S1. GenBank accession numbers of sequences retrieved from GenBank and newly collected sequences used in the study (marked in bold). Table S2. Primers for cytb amplification and sequencing. Table S3. The best-fit substitution models employed for each of the five partitions found by IQTREE.

opencc-zeroNov 2019View details →
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Fig. 6 in Whole mitogenomes of Turkish white-toothed shrews, genus Crocidura (Eulipotyphla: Soricidae), with new insights into the phylogenetic positions of Crocidura leucodon and the Crocidura suaveolens group

Fig. 6 Median-joining haplotype network of C. leucodon based on CYTB sequences. Bold indicates Turkish samples in the current study

opennotspecifiedAug 2022View details →
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Fig. 4 in Whole mitogenomes of Turkish white-toothed shrews, genus Crocidura (Eulipotyphla: Soricidae), with new insights into the phylogenetic positions of Crocidura leucodon and the Crocidura suaveolens group

Fig. 4 Median-joining haplotype network of the C. suaveolens group based on CYTB sequences. Bold indicates Turkish samples in the current study

opennotspecifiedAug 2022View details →
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Fig. 2 in Whole mitogenomes of Turkish white-toothed shrews, genus Crocidura (Eulipotyphla: Soricidae), with new insights into the phylogenetic positions of Crocidura leucodon and the Crocidura suaveolens group

Fig. 2 Phylogenetic tree reconstructed using Bayesian analysis of Turkish white-toothed shrews based on mitogenomes minus the D-loop region and the GTR+ G + I model

opennotspecifiedAug 2022View details →
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Fig. 1 in Whole mitogenomes of Turkish white-toothed shrews, genus Crocidura (Eulipotyphla: Soricidae), with new insights into the phylogenetic positions of Crocidura leucodon and the Crocidura suaveolens group

Fig. 1 Graphical maps showing the mitogenomes of three Crocidura species from Turkey: A C. gueldenstaedtii; B C. mimula; C C. leucodon

opennotspecifiedAug 2022View details →
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Fig. 3 in Whole mitogenomes of Turkish white-toothed shrews, genus Crocidura (Eulipotyphla: Soricidae), with new insights into the phylogenetic positions of Crocidura leucodon and the Crocidura suaveolens group

Fig. 3 Phylogenetic tree reconstructed using Bayesian analysis of C. suaveolens group and C. leucodon based CYTB sequences and the HKY+ G + I model. Asterisk indicates Turkish samples in the current study

opennotspecifiedAug 2022View details →
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Figure 3 in Multilocus phylogeny and morphological analyses illuminate overlooked diversity of Soriculus (Mammalia: Eulipotyphla: Soricidae), with descriptions of two new endemic species from the eastern Himalayas

Figure 3. Phylogenetic trees of the genus Soriculus based on (A) the concatenated mtDNA and (B) the concatenated nDNA using the ML and BI methods. Node numbers indicate Bayesian posterior probabilities (PP) and ultrafast bootstrap supports (UFBoot).

opennotspecifiedSep 2023View details →
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Figure 4 in Multilocus phylogeny and morphological analyses illuminate overlooked diversity of Soriculus (Mammalia: Eulipotyphla: Soricidae), with descriptions of two new endemic species from the eastern Himalayas

Figure 4. Bayesian phylogenetic tree of genus Soriculus based on the concatenated sequences of 13 mitochondrial PCGs, 12S rRNA, and 16S rRNA genes. Node numbers indicate Bayesian posterior probabilities (PP).

opennotspecifiedSep 2023View details →
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Figure 2 in Multilocus phylogeny and morphological analyses illuminate overlooked diversity of Soriculus (Mammalia: Eulipotyphla: Soricidae), with descriptions of two new endemic species from the eastern Himalayas

Figure 2. Results of the principal components (A) and discriminant function analysis (B) analysis of Soriculus based on the 18 log10- transformed craniomandibular variables.

opennotspecifiedSep 2023View details →
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FIGURE 5 in C-heterochromatin variation in the karyotype reflects species level distinction between Erinaceus roumanicus and E. concolor (Eulipotyphla: Erinaceidae) in Turkey

FIGURE 5. NORs distribution in karyotypes of Turkish hedgehogs. A, female of E. concolor from Sinop in northern Anatolia; B, male of E. concolor from Konya and Antalya in central and southern Anatolia; C. male of E. roumanicus from Edirne in Thrace.

opennotspecifiedDec 2008View details →
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FIGURE 4. C in C-heterochromatin variation in the karyotype reflects species level distinction between Erinaceus roumanicus and E. concolor (Eulipotyphla: Erinaceidae) in Turkey

FIGURE 4. C-banded karyotypes of Turkish hedgehogs. A, male of Erinaceus concolor from Konya in central Anatolia; B, male of E. roumanicus from Edirne in Thrace.

opennotspecifiedDec 2008View details →
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FIGURE 1 in C-heterochromatin variation in the karyotype reflects species level distinction between Erinaceus roumanicus and E. concolor (Eulipotyphla: Erinaceidae) in Turkey

FIGURE 1. Collecting localities. () 1. Sinop, 2. Trabzon (north-eastern Turkey – northern Anatolia); () 3, K₁r₁kkale, 4. Konya, 5. Antalya, 6. Gaziantep, 7. Şanl₁urfa (central and southern Anatolia); () 8. Edirne, 9. Tekirdaǧ (European Turkey –Thrace).

opennotspecifiedDec 2008View details →
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FIGURE 2. The Neighbor-Joining tree for the cytochrome oxidase c subunit 1 in Mitochondrial diversity of the white-toothed shrews (Mammalia, Eulipotyphla, Crocidura) in Vietnam

FIGURE 2. The Neighbor-Joining tree for the cytochrome oxidase c subunit 1 (COI) gene fragment. The bootstrap values (≥ 50 %) obtained from 1000 pseudoreplications are presented above the branches. Crocidura olivieri is used as outgroup.

opennotspecifiedApr 2011View details →

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