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11 results for “Arvicolines”
Fig. 4 in Morphotype And Multivariate Analysis Of The Occlusal Pattern Of The First Lower Molar In European And Asian Arvicoline Species (Rodentia, Microtus, Alexandromys)
Fig. 4. Differentiation on 16 Microtus samples by the morphotypic variation of the occlusal pattern.
Fig. 3 in Morphotype And Multivariate Analysis Of The Occlusal Pattern Of The First Lower Molar In European And Asian Arvicoline Species (Rodentia, Microtus, Alexandromys)
Fig. 3. Differentiation on six East Asian vole samples by the morphotypic variation of the occlusal pattern.
Fig. 1 in Morphotype And Multivariate Analysis Of The Occlusal Pattern Of The First Lower Molar In European And Asian Arvicoline Species (Rodentia, Microtus, Alexandromys)
Fig. 1. Elements of the occlusal surface of m1 (the terminology follows van der Meulen, Zagwijn, 1974; Maul et al., 2007).
Fig. 5 in New species of Kontrimavichusia Makarikov & Binkienė, 2022 (Eucestoda: Hymenolepididae) from arvicoline rodents (Rodentia: Cricetidae) from the North Caucasus
Fig. 5. Maximum likelihood phylogenetic tree of Kontrimavichusia Makarikov & Binkienė, 2022 and Hymenolepis Weinland, 1858 based on analysis of partial sequences of the 28S rRNA gene. Bootstrap support given for maximum likelihood analysis based on 1000 replicates. Bootstrap support values lower than 70% are not shown.
Fig. 4 in New species of Kontrimavichusia Makarikov & Binkienė, 2022 (Eucestoda: Hymenolepididae) from arvicoline rodents (Rodentia: Cricetidae) from the North Caucasus
Fig. 4. Kontrimavichusia hobergi sp. nov. A. Paratype (ISEA AM17-236#1), cirrus and vagina, ventral view. B. Holotype (ISEA AM17-236#3), pregravid proglottis, showing appearance of uterine diverticula, dorsal view. C. Holotype, gravid proglottis, showing labyrinthine uterus, dorsal view. D. Holotype, egg. E. Holotype, embryonic hooks. Abbreviations: al = anterolateral; m = median; pl = postero-lateral. Scale bars: A = 50 µm; B–C = 300 µm; D = 20 µm; E = 10 µm.
Fig. 1 in New species of Kontrimavichusia Makarikov & Binkienė, 2022 (Eucestoda: Hymenolepididae) from arvicoline rodents (Rodentia: Cricetidae) from the North Caucasus
Fig. 1. Kontrimavichusia testiculata sp. nov. A. Holotype (ISEA AM14-134#1), scolex, dorso-ventral view. B. Paratype (ISEA AM14-147#2), scolex, sub-lateral view. C. Paratype (ISEA AM14-142#2), rostellar hooks in profile and frontal view (note narrow hook guard). D. Holotype, male mature proglottides, dorsal view. E. Holotype, hermaphroditic mature proglottis, dorsal view. F. Paratype (ISEA AM14-147#2), genital ducts, dorsal view. Scale bars: A–B, F = 100 µm; C = 10 µm; D–E = 300 µm.
Fig. 6 in New species of Kontrimavichusia Makarikov & Binkienė, 2022 (Eucestoda: Hymenolepididae) from arvicoline rodents (Rodentia: Cricetidae) from the North Caucasus
Fig. 6. Maximum likelihood phylogenetic tree of species of Kontrimavichusia Makarikov & Binkienė, 2022 based on analysis of partial sequences of the nad1 gen. Bootstrap support given for maximum likelihood analysis based on 1000 replicates. Bootstrap support values lower than 70% are not shown.
Fig. 3 in New species of Kontrimavichusia Makarikov & Binkienė, 2022 (Eucestoda: Hymenolepididae) from arvicoline rodents (Rodentia: Cricetidae) from the North Caucasus
Fig. 3. Kontrimavichusia hobergi sp. nov. A. Paratype (ISEA AM17-242), scolex, dorso-ventral view. B. Paratype (ISEA AM1 17-243#3), scolex, sub-lateral view. C. Holotype (ISEA AM17-236#3) (left) and paratype (ISEA AM 17-236#2) (centre, right), rostellar hooks in profile and frontal view (note narrow hook guard). D. Holotype, male mature proglottides, dorsal view. E. Holotype, hermaphroditic mature proglottis, dorsal view. F. Holotype, genital ducts, dorsal view. Scale bars: A–B, F = 100 µm; C = 10 µm; D–E = 300 µm.
Fig. 2 in New species of Kontrimavichusia Makarikov & Binkienė, 2022 (Eucestoda: Hymenolepididae) from arvicoline rodents (Rodentia: Cricetidae) from the North Caucasus
Fig. 2. Kontrimavichusia testiculata sp. nov. A. Paratype (ISEA AM14-147#2), cirrus and vagina, ventral view. B. Holotype (ISEA AM14-134#1), pregravid proglottis, showing appearance of uterine diverticula, dorsal view. C. Holotype, gravid proglottis, showing labyrinthine uterus, dorsal view. D. Holotype, egg. E. Holotype, embryonic hooks. Abbreviations: al = anterolateral; m = median; pl = postero-lateral. Scale bars: A = 50 µm; B–C = 300 µm; D = 20 µm; E = 10 µm.
Data from: Patterns and processes of dispersal behaviour in arvicoline rodents
A good understanding of mammalian societies requires measuring patterns and comprehending processes of dispersal in each sex. We investigated dispersal behaviour in arvicoline rodents, a sub-family of mammals widespread in northern temperate environments and characterised by a multivoltine life cycle. In arvicoline rodents, variation in life history strategies occurs along a continuum from precocial to delayed maturation that reflects seasonal and ecological fluctuations. We compared dispersal across and within species focusing on the effects of external (condition-dependence) and internal factors (phenotype-dependence). Our data revealed substantial, unexplained variation between species for dispersal distances and a strong variation within species for both dispersal distance and fraction. Some methodological aspects explained variation across studies, which cautions against comparisons that do not control for them. Overall, the species under consideration display frequent short-distance dispersal events and extremely flexible dispersal strategies, but they also have hitherto unexpected capacity to disperse long distances. Female arvicolines are predominantly philopatric relative to males, but we found no clear association between the mating system and the degree of sex-bias in dispersal across species. Dispersal is a response to both various proximate and ultimate factors, including competition, inbreeding avoidance, mate searching, and habitat quality. In particular, our review suggests that costs and benefits experienced during transience and settlement are prime determinants of condition-dependence. Patterns of phenotype-dependent dispersal are idiosyncratic, except for a widespread association between an exploration/activity syndrome and natal dispersal. Consequences for population dynamics and genetic structures are discussed.
Data from: Patterns and processes of dispersal behaviour in arvicoline rodents
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