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157 results for “Microtus”
Figure 1 in Diet and reproductive outputs of common barn-owl (Tyto alba) during the common vole (Microtus arvalis) outbreak and crash
Figure 1. Study area in Baranya County (Hungary), showing the location of sampled nesting pairs (settlements).
Fig. 5 in Morphometric Differences Among Root Vole (Muridae: Microtus Oeconomus) Populations In Hungary
Fig. 5. Distribution of centroid sizes among the studied populations calculated from landmarks: a (top) = on the dorsal view of the cranium, b (bottom) = on the mandibule. Non-parametric median test
Fig. 2 in Morphometric Differences Among Root Vole (Muridae: Microtus Oeconomus) Populations In Hungary
Fig. 2. Collection localities of Microtus oeconomus méhelyi specimens used in the study. 1a = Csallóköz (Slovakia), 1b = Szigetköz, 2 = Fertő–Hanság area, 3 = Kis-Balaton, 4 = Dél-Balaton, 5 = Kiskunság)
Fig. 1 in Morphometric Differences Among Root Vole (Muridae: Microtus Oeconomus) Populations In Hungary
Fig. 1. Distribution of Microtus oeconomus in Europe (from MITCHELL-JONES et al. 1999) (A= main population, B= Dutch populations, C= Norwegian populations, D= Central European populations)
Fig. 7 in Morphometric Differences Among Root Vole (Muridae: Microtus Oeconomus) Populations In Hungary
Fig. 7. Minimum spanning tree showing morphometric similarity among populations calculated from pair-wise procrustes distances between consensus configuration of each populations. a = simi-
Fig. 6 in Morphometric Differences Among Root Vole (Muridae: Microtus Oeconomus) Populations In Hungary
Fig. 6. Scatterplots of the first two canonical variate scores calculated from landmarks: a (top) = on the dorsal view of the cranium, b (bottom) = on the mandible. Lines connect the closest laying centroids of each group. Deformation grids were generated using tpsRegr (ROHLF 2000) and show the
Рис. 4. Нора поΑземной поΛевки (компΛекс KS-11, октябрь 1984 г., «Αес на ВорскΛе»). А — горизонтаΛьная проекция; Б — боковая реконструкция Fig. 4. A common pine vole burrow (complex No. KS-11, October, 1984; "Forest on the Vorskla"). A — horizontal projection; Б — lateral projection in Spatial Organization Of Common Pine Vole (Microtus Subterraneus Selys-Longchamps, 1836) Colonies
Рис. 4. Нора поΑземной поΛевки (компΛекс KS-11, октябрь 1984 г., «Αес на ВорскΛе»). А — горизонтаΛьная проекция; Б — боковая реконструкция Fig. 4. A common pine vole burrow (complex No. KS-11, October, 1984; "Forest on the Vorskla"). A — horizontal projection; Б — lateral projection
Рис. 1. Пространственное распреΑеΛение скопΛений земΛяных выбросов поΑземной поΛевки в преΑеΛах пΛощаΑи поΛигона 1 га (октябрь 1985 г., «Αес на ВорскΛе») in Spatial Organization Of Common Pine Vole (Microtus Subterraneus Selys-Longchamps, 1836) Colonies
Рис. 1. Пространственное распреΑеΛение скопΛений земΛяных выбросов поΑземной поΛевки в преΑеΛах пΛощаΑи поΛигона 1 га (октябрь 1985 г., «Αес на ВорскΛе»)
Figure 3 in A new species of voles, Microtus elbeyli sp. nov., from Turkey with taxonomic overview of social voles distributed in southeastern Anatolia
Figure 3. Dentition of M. elbeyli sp. nov. A) Upper tooth row, B) lower tooth row. M1: First upper molars, M2: second upper molars, M3: third upper molars. M1: First lower molars, M2: second lower molars, M3: third lower molars. La.: Labial side, Li.: lingual side. Type specimen, No: 2919, ♂, collected 10 km east of Kilis.
Figure 4 in A new species of voles, Microtus elbeyli sp. nov., from Turkey with taxonomic overview of social voles distributed in southeastern Anatolia
Figure 4. The metaphase plate (A) and karyotype (B) of the type specimen of M. elbeyli sp. nov. 2n = 46, NF = 50, NFa = 46.
Figure 1 in A new species of voles, Microtus elbeyli sp. nov., from Turkey with taxonomic overview of social voles distributed in southeastern Anatolia
Figure 1. Record locations of the specimens evaluated: M. elbeyli (●10 km east of Kilis and ⦿ Elbeyli), M. cfr. irani (▲ Ermenek, ✸ Nusaybin), M. guentheri (■ Türkoğlu and △ Nemrut), M. socialis (□ Muş), M. irani (★ Shiraz/Iran).
Figure 2 in A new species of voles, Microtus elbeyli sp. nov., from Turkey with taxonomic overview of social voles distributed in southeastern Anatolia
Figure 2. Skulls (dorsal and lateral views) and mandible (labial views) of species: A) M. elbeyli, B) M. cfr. irani, C) M. guentheri.
Figure 4 in Microtus guentheri (Danford & Alston, 1880) (Rodentia: Cricetidae) as a biomonitor for radionuclides in Mersin Province of Turkey
Figure 4. Distributions of the radiation hazard index values by locality (values around the circle show the numbers of localities).
Figure 3. Relationship between activity concentrations for 40K in Microtus guentheri (Danford & Alston, 1880) (Rodentia: Cricetidae) as a biomonitor for radionuclides in Mersin Province of Turkey
Figure 3. Relationship between activity concentrations for 40K as a function of altitude (significant).
Figure 4 in Comparison of the chromosome banding patterns in three species of social voles (Microtus irani karamani, M. schidlovskii, M. anatolicus) from Turkey
Figure 4. Silver-stained karyotypes of M. irani karamani (1), M. schidlovskii (2), and M. anatolicus (3).
Figure 1 in Comparison of the chromosome banding patterns in three species of social voles (Microtus irani karamani, M. schidlovskii, M. anatolicus) from Turkey
Figure 1. Collecting sites of M. irani karamani (1), M. schidlovskii (2), and M. anatolicus (3) in Turkey. The numbering of sampling localities corresponds to data in Table 1. Table 1. Studied localities of three Microtus species in Turkey. The numbering of the sampling sites corresponds to data in Figure 1.
Figure S2 in Inferring phylogenetic relationships in the common vole (Microtus arvalis) based on mitochondrial and nuclear sequence diversities
Figure S2. ABGD results of COXI gene. The histogram shows distribution of genetic distances among M. arvalis samples; yellow columns show mean intralineage distances and red columns show interlineage distances. The diagram implies the lineages according to initial partitions = Group 1 (n: 21): Anatolia, China, Asian and European parts of Russia; Group 2 (n: 16): Serbia, Hungary.
Figure S1 in Inferring phylogenetic relationships in the common vole (Microtus arvalis) based on mitochondrial and nuclear sequence diversities
Figure S1. ABGD results of CYTB gene region. The histogram shows distribution of genetic distances among M. arvalis samples; yellow columns show mean intralineage distances and red columns show interlineage distances. The diagram implies the lineages according to initial partitions = Group 1 (n: 56): Anatolia, Georgia, Armenia, Iran, Siberia, China, Asian parts of Russia and one sample from Ukraine; Group 2 (n: 31): European parts of Russia, three samples from Ukraine, Western, Central and Eastern Europe.
Figure 7 in Inferring phylogenetic relationships in the common vole (Microtus arvalis) based on mitochondrial and nuclear sequence diversities
Figure 7. Bayesian tree obtained from IRBP sequences based on HKY + G parameter (Hasegawa et al., 1985). Numbers on branches show posterior probability (pb) values above 50%.
Figure 6 in Inferring phylogenetic relationships in the common vole (Microtus arvalis) based on mitochondrial and nuclear sequence diversities
Figure 6. Median-joining network obtained from IRBP haplotypes of Anatolian, Asian and European populations of M. arvalis. Number of mutations are shown by black lines on the branches.
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