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Fig. 3. Maximum Likelihood tree for the 35 haplotypes identified from 39 in Molecular confirmation of Hymenolepis hibernia in field mice (Apodemus sylvaticus) from St Kilda has potential to resolve a host-parasite relationship

Fig. 3. Maximum Likelihood tree for the 35 haplotypes identified from 39 mt-cox-1 sequences of Hymenolepis species. Of these, 19, 5, 2 and 8 haplotypes are identified in the Genbank database as H. diminuta, H. hibernia, H. microstoma and H. nana, respectively, and one haplotype (H-HA25) was identified here from the faeces of St Kilda mice 9 and X. Branches with bootstrap values (1000 replications) represented at the base of the nodes. The phylogeny is rooted with mt-cox-1 sequence of parasitic nematode H. contortus.

opencc-by-4.0Dec 2018View details →
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Figure 3 in Determination of genetic variations between Apodemus mystacinus populations distributed in Turkey inferred from mtDNA PCR-RFLP

Figure 3. Restriction patterns of HinfI inferred from D-loop digestion (M: Marker–100bp DNA Ladder, 1. Ordu, 2. Trabzon, 3. Rize, 4. Artvin, 5–6. Erzincan, 7–8. Kahramanmaraş, 9. Adıyaman, 10–11. Adana, 12. Muğla, 13. Burdur, 14. Konya, 15. Antalya, 16. Mersin, 17. Kastamonu, 18. Zonguldak, 19. Düzce, 20. Balıkesir, 21. İzmir, 22. Aydın, 23. A. uralensis, 24. A. witherbyi, 25. D-loop PCR products).

opencc-by-4.0Feb 2015View details →
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Figure 2 in Determination of genetic variations between Apodemus mystacinus populations distributed in Turkey inferred from mtDNA PCR-RFLP

Figure 2. Restriction patterns of MboI, HaeIII, and RsaI inferred from cytb digestion (M: Marker–100bp DNA Ladder, 1. Ordu, 2. Trabzon, 3. Rize, 4. Artvin, 5. Erzincan, 6. Kahramanmaraş, 7. Adıyaman, 8. Adana, 9. Muğla, 10. Burdur, 11. Konya, 12. Antalya, 13. Mersin, 14. Kastamonu, 15. Zonguldak, 16. Düzce, 17. Balıkesir, 18. İzmir, 19. Aydın, 20. A. uralensis, 21. A. witherbyi, 22. Cytb PCR product).

opencc-by-4.0Feb 2015View details →
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Figure 5 in Determination of genetic variations between Apodemus mystacinus populations distributed in Turkey inferred from mtDNA PCR-RFLP

Figure 5. PCoA analysis of A. mystacinus clades. The scatter plot is of the scores of three principal eigenvalues inferred from NTSYS software. Each scatter point represents a specimen of A. mystacinus.

opencc-by-4.0Feb 2015View details →
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Figure 1 in Determination of genetic variations between Apodemus mystacinus populations distributed in Turkey inferred from mtDNA PCR-RFLP

Figure 1. Sampling localities of A. mystacinus specimens. Table 2. Restriction enzymes and their digestion sites with reaction procedures.

opencc-by-4.0Feb 2015View details →
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Figure 2 in First record of a flavistic black-striped field mouse (Apodemus agrarius) in Slovakia

Figure 2. Anomalously colored (flavism) female of the black-striped field mouse (Apodemus agrarius) trapped in the New Jewish Cemetery of Košice City, Slovakia. (a) Dorsal and (b) ventral view. Photos by the author.

opencc-by-4.0Mar 2016View details →
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Figure 1 in First record of a flavistic black-striped field mouse (Apodemus agrarius) in Slovakia

Figure 1. Location of coloration anomalies of black-striped mouse (Apodemus agrarius) trapped in the New Jewish Cemetery of Košice City, Slovakia. (Source: ©2015 Google, Image ©2015 CNES/Astrium).

opencc-by-4.0Mar 2016View details →
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Figure 3 in Occlusal surface variations in genetically-identified specimens of the genus Apodemus (Mammalia: Rodentia) distributed in the Northern Anatolia region and three Turkish islands: Gökçeada, Marmara Island, and Bozcaada

Figure 3. The variations observed in the left upper teeth and their locations. D1: Presence of a bis structure immediately adjacent to the t2 cusp in UM1, D2: Presence of the t12 cusp in UM1, D3: Presence of a spur structure extending posteriorly from the t3 cusp in UM1 but not merging with the t5 cusp, D4: Existence of a bridge between the t1 cusp and t5 cusp in UM1, D5: Connection through a bridge between the t4 cusp and t7 cusp in UM1, D6: Structural swelling and island-like condition of the t7 cusp in UM1, D7: Structural line-like condition of the t7 cusp in UM1, D8: Structural swelling and island-like condition of the t7 cusp in UM2, D9: Line-like structural condition of t7 in UM2, D10: Presence or absence of the t12 cusp in UM2, D11: Presence of a bridge-like structure between the t1 cusp and t5 cusp in UM2, D12: Presence of a bridge between the t4 cusp and t7 cusp in UM2, D13: Existence of a bridge structure between the t1 cusp and t5 cusp in UM3, D14: Presence of a connection between the t6 cusp and t8 cusp in UM3.

opencc-by-4.0Apr 2024View details →
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Figure 4 in Occlusal surface variations in genetically-identified specimens of the genus Apodemus (Mammalia: Rodentia) distributed in the Northern Anatolia region and three Turkish islands: Gökçeada, Marmara Island, and Bozcaada

Figure 4. The intra- and interspecies schematic diagram of left lower dental variations. Diagram A: refers to the island population of A. sylvaticus, while B: refers to the mainland population of A. sylvaticus. Numbers represent species; 1: A. flavicollis, 2: A. witherbyi, 3: A. sylvaticus, 4: A. uralensis, 5: A. mystacinus. Lowercase letters have been selected as variation characteristics; a: number of cingula in LM1, b: tma in LM1, c: central distoconid in LM1, d: aneroconid complex in LM1, e: number of cingula in LM2, f: central distoconid in LM2.

opencc-by-4.0Apr 2024View details →
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Figure 1 in Occlusal surface variations in genetically-identified specimens of the genus Apodemus (Mammalia: Rodentia) distributed in the Northern Anatolia region and three Turkish islands: Gökçeada, Marmara Island, and Bozcaada

Figure 1. Map of the locations where the samples were collected and main locations (modified from Çolak et al., 2013) A: The Dardanelles, B: The Bosphorus, C: Kızılırmak, D: Melet River, E: Çoruh River, a: Marmara Adası, b: Gökçeada, c: Bozcaada, 1-Ardahan, 2-Artvin, 3-Rize, 4-Trabzon, 5-Giresun, 6-Ordu, 7-Tokat, 8-Samsun, 9-Sinop, 10-Çorum, 11-Kastamonu, 12-Zonguldak, 13-Bolu, 14-Düzce, 15-Kocaeli, 16-İstanbul, 17-Bursa, 18-Tekirdağ, 19-Kırklareli, 20-Balıkesir, 21-Edirne, 22-Çanakkale.

opencc-by-4.0Apr 2024View details →
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Fig. 1 in Borrelia miyamotoi infection in Apodemus spp. mice populating an urban habitat (Warsaw, Poland)

Fig. 1. Scheme of the study area (city of Warsaw, Poland) showing the arrangement of mice-trapping locations. Black points – locations where B. miyamotoi infected mice were present; White points – locations where none of the captured mice were B. miyamotoi infected; N1–N3 – locations within northern suburbs; C1–C5 - locations within city centre; S1–S2 – locations within southern suburbs; numbers in boxes – B. miyamotoi prevalence in mice inhabiting respective areas.

opencc-by-4.0Apr 2021View details →
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Fig. 2 in Infestation and distribution of chigger mites on Chevrieri's field mouse (Apodemus chevrieri) in Southwest China

Fig. 2. Theoretical curve fitting for the species abundance distribution of chigger mite community on Chevrieri's field mice (Apodemus chevrieri) in southwest China (2001–2019).

opencc-by-4.0Apr 2022View details →
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Fig. 1. The 91 in Infestation and distribution of chigger mites on Chevrieri's field mouse (Apodemus chevrieri) in Southwest China

Fig. 1. The 91 investigation sites and the captured sites where Chevrieri's field mice (Apodemus chevrieri) were captured in southwest China (2001–2019).

opencc-by-4.0Apr 2022View details →
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Text-fig. 2. Definition of the metric characters applied in this study, for non-metric characters see Appendix 1. in Genus Apodemus In The Pleistocene Of Central Europe: When Did The Extant Taxa Appear?

Text-fig. 2. Definition of the metric characters applied in this study, for non-metric characters see Appendix 1.

opencc-by-4.0Dec 2017View details →
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Text-fig. 9. Mean individual differences in non-metric and metric variables of M1 from respective mean values of extant A. flavicollis, A. sylvaticus and A. uralensis in the Recent samples (left) and fossils of particular Pleistocene biozones (right), superimposed to variation ranges and centroids of the former ones. in Genus Apodemus In The Pleistocene Of Central Europe: When Did The Extant Taxa Appear?

Text-fig. 9. Mean individual differences in non-metric and metric variables of M1 from respective mean values of extant A. flavicollis, A. sylvaticus and A. uralensis in the Recent samples (left) and fossils of particular Pleistocene biozones (right), superimposed to variation ranges and centroids of the former ones.

opencc-by-4.0Dec 2017View details →
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Text-fig. 1. Geographical position and stratigraphic context of the Pleistocene sites from the Czech Republic and Slovakia containing Apodemus material analyzed in this paper. in Genus Apodemus In The Pleistocene Of Central Europe: When Did The Extant Taxa Appear?

Text-fig. 1. Geographical position and stratigraphic context of the Pleistocene sites from the Czech Republic and Slovakia containing Apodemus material analyzed in this paper.

opencc-by-4.0Dec 2017View details →
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Text-fig. 7. Plot of discriminant scores (R1/R2) of individual M1 of Apodemus spp. from particular Pleistocene biozones superimposed onto a plot of variation ranges for the respective variables for the Recent Apodemus sample (based on the discrimination analysis of total set of characters, both metric and non-metric). in Genus Apodemus In The Pleistocene Of Central Europe: When Did The Extant Taxa Appear?

Text-fig. 7. Plot of discriminant scores (R1/R2) of individual M1 of Apodemus spp. from particular Pleistocene biozones superimposed onto a plot of variation ranges for the respective variables for the Recent Apodemus sample (based on the discrimination analysis of total set of characters, both metric and non-metric).

opencc-by-4.0Dec 2017View details →
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Text-fig. 8. Plot of discriminant scores (R1/R2) of individual m1 of Apodemus spp. from particular Pleistocene biozones superimposed onto a plot of variation ranges for the respective variables for the Recent Apodemus sample (standardized discrimination scores based on nine most significant variables). in Genus Apodemus In The Pleistocene Of Central Europe: When Did The Extant Taxa Appear?

Text-fig. 8. Plot of discriminant scores (R1/R2) of individual m1 of Apodemus spp. from particular Pleistocene biozones superimposed onto a plot of variation ranges for the respective variables for the Recent Apodemus sample (standardized discrimination scores based on nine most significant variables).

opencc-by-4.0Dec 2017View details →
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Text-fig. 4. Frequency diagram of metric variation (M1 length = M1U) in samples of Apodemus spp. representing particular Pleistocene biozones (MN 17 – Q 3), compared to variation span in the Recent samples of A. uralensis, A. sylvaticus and A. flavicollis (a heading strip). in Genus Apodemus In The Pleistocene Of Central Europe: When Did The Extant Taxa Appear?

Text-fig. 4. Frequency diagram of metric variation (M1 length = M1U) in samples of Apodemus spp. representing particular Pleistocene biozones (MN 17 – Q 3), compared to variation span in the Recent samples of A. uralensis, A. sylvaticus and A. flavicollis (a heading strip).

opencc-by-4.0Dec 2017View details →
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Text-fig. 6. Plot of discriminant scores (R1/R2) of individual m1 and M1 teeth of Apodemus spp. from particular Pleistocene biozones superimposed onto a plot of variation ranges for the respective variables for the Recent Apodemus sample (based on the discrimination analysis of metric variables of M1 and m1). in Genus Apodemus In The Pleistocene Of Central Europe: When Did The Extant Taxa Appear?

Text-fig. 6. Plot of discriminant scores (R1/R2) of individual m1 and M1 teeth of Apodemus spp. from particular Pleistocene biozones superimposed onto a plot of variation ranges for the respective variables for the Recent Apodemus sample (based on the discrimination analysis of metric variables of M1 and m1).

opencc-by-4.0Dec 2017View details →

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