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159 results for “Vulpes”
Figure 11 in A revision of the species of the Neoserica (sensu lato) vulpes group (Coleoptera: Scarabaeidae: Sericini)
Figure 11. Distribution of the species of the Neoserica (s.l.) vulpes group: N. baoshana, N. biuncinata, N. dundai, N. ganhaiziana, N. laocaiana, N. leiboensis, N. ningyuanensis, N. rubellula, N. shinkaisiensis, N. sichuanica, N. weishanensis, N. xiaguanensis and N. yangjiapingensis.
Figure 10 in A revision of the species of the Neoserica (sensu lato) vulpes group (Coleoptera: Scarabaeidae: Sericini)
Figure 10. Distribution of the species of the Neoserica (s.l.) vulpes group: N. baishuiensis, N. heishuiana, N. kereni, N. lateriuncinata, N. luzhouana, N. nykli, N. parausta, N. pseudovulpes, N. ruzickai, N. usta, N. vulpes and N. kunmingensis.
Figure 9. A–D in A revision of the species of the Neoserica (sensu lato) vulpes group (Coleoptera: Scarabaeidae: Sericini)
Figure 9. A–D: N. lateriuncinata Ahrens, Liu & Fabrizi sp. nov. (holotype), E–H: N. leiboensis Ahrens, Liu & Fabrizi sp. nov. (holotype). A, E: aedeagus, left side lateral view; C, G: aedeagus, right side lateral view; B, F: parameres, dorsal view; D, H: habitus (not to scale). Scale: 0.5 mm.
Figure 8. A–D in A revision of the species of the Neoserica (sensu lato) vulpes group (Coleoptera: Scarabaeidae: Sericini)
Figure 8. A–D: Neoserica xiaguanensis Ahrens, Liu & Fabrizi sp. nov. (holotype), E–H: N. baishuiensis Ahrens, Liu & Fabrizi sp. nov. (holotype). A, E: aedeagus, left side lateral view; C, G: aedeagus, right side lateral view; B, F: parameres, dorsal view; D, H: habitus (not to scale). Scale: 0.5 mm.
Figure 7. A–D in A revision of the species of the Neoserica (sensu lato) vulpes group (Coleoptera: Scarabaeidae: Sericini)
Figure 7. A–D: Neoserica sichuanica Ahrens, Liu & Fabrizi sp. nov. (holotype), E–H: N. dundai Ahrens, Liu & Fabrizi sp. nov. (holotype), I–L: N. luzhouana Ahrens, Liu & Fabrizi sp. nov. (holotype). A, E, I: aedeagus, left side lateral view; C, G, K: aedeagus, right side lateral view; B, F, J: parameres, dorsal view; D, H, L: habitus (not to scale). Scale: 0.5 mm.
Figure 3. A–D in A revision of the species of the Neoserica (sensu lato) vulpes group (Coleoptera: Scarabaeidae: Sericini)
Figure 3. A–D: Neoserica heishuiana Ahrens, Liu & Fabrizi sp. nov. (holotype), E–H: N. kereni Ahrens, Liu & Fabrizi sp. nov. (holotype), I–L: N. baoshana Ahrens, Liu & Fabrizi sp. nov. (holotype). A, E, I: aedeagus, left side lateral view; C, G, K: aedeagus, right side lateral view; B, F, J: parameres, dorsal view; D, H, L: habitus (not to scale). Scale: 0.5 mm.
Figure 2. A–D in A revision of the species of the Neoserica (sensu lato) vulpes group (Coleoptera: Scarabaeidae: Sericini)
Figure 2. A–D: Neoserica shinkaisiensis Ahrens, Liu & Fabrizi sp. nov. (holotype), E–H: N. weishanensis Ahrens, Liu & Fabrizi sp. nov. (holotype), I–L: N. ningyuanensis Ahrens, Liu & Fabrizi sp. nov. (holotype). A, E, I: aedeagus, left side lateral view; C, G, K: aedeagus, right side lateral view; B, F, J: parameres, dorsal view; D, H, L: habitus (not to scale). Scale: 0.5 mm.
Figure 4. A–D in A revision of the species of the Neoserica (sensu lato) vulpes group (Coleoptera: Scarabaeidae: Sericini)
Figure 4. A–D: Neoserica kunmingensis Ahrens, Liu & Fabrizi sp. nov. (holotype), E–H: N. parausta Ahrens, Liu & Fabrizi sp. nov. (holotype), I–L: N. rubellula Ahrens, Liu & Fabrizi sp. nov. (holotype). A, E, I: aedeagus, left side lateral view; C, G, K: aedeagus, right side lateral view; B, F, J: parameres, dorsal view; D, H, L: habitus (not to scale). Scale: 0.5 mm.
Figure 1. A–D in A revision of the species of the Neoserica (sensu lato) vulpes group (Coleoptera: Scarabaeidae: Sericini)
Figure 1. A–D: Neoserica vulpes (Arrow) (syntype 1), E–H: N. yangjiapingensis Ahrens, Liu & Fabrizi sp. nov. (holotype), I–L: N. ruzickai Ahrens, Liu & Fabrizi sp. nov. (holotype). A, E, I: aedeagus, left side lateral view; C, G, K: aedeagus, right side lateral view; B, F, J: parameres, dorsal view; D, H, L: habitus (not to scale). Scale: 0.5 mm.
Fig. 4 in Home Ranges Of The Red Fox, Vulpes Vulpes (Carnivora, Canidae) And European Badger, Meles Meles (Carnivora, Mustelidae), In Oak Forests Of Slobozhanshchyna, Ukraine
Fig. 4. Winter average monthly temperatures in Kharkiv City in 2007–2009 and 2011 (http://www.pogodaiklimat.ru).
Maintenance of a narrow hybrid zone between native and introduced red foxes (Vulpes vulpes) despite conspecificity and high dispersal capabilities
<p>Human-facilitated introductions of nonnative populations can lead to secondary contact between previously allopatric lineages, resulting in either homogenization of the lineages or stable hybrid zones that are maintained by pre-zygotic (e.g., behavioral) or post-zygotic (e.g., reduced hybrid fitness) reproductive barriers. We investigated patterns of gene flow between the native Sacramento Valley red fox (<em>Vulpes vulpes patwin</em>) and an introduced conspecific population of captive-bred (fur-farm) origin in California's Central Valley. Considering their recent divergence (i.e., ~50 kya), we hypothesized that pre-zygotic mechanisms primarily impede gene flow, rather than post-zygotic barriers. Additionally, some genes originating in nonnative foxes may confer higher fitness in the currently human-dominated landscape resulting in selective introgression into the native population. Genetic analysis of 682 red foxes (255 native, 427 nonnative) at both mitochondrial (cytB + Dloop) and nuclear loci (~19,000 SNPs) revealed significantly narrower cline widths than expected under a simulated model of unrestricted gene flow, consistent with the existence of pre- or post-zygotic reproductive barriers. We identified several loci with reduced introgression linked to behavioral divergence in captive bred foxes, which supports pre-zygotic mechanisms as a putative driver of the narrow hybrid zone. Additionally, several loci with elevated gene flow from the nonnative into the native population, were near genes associated with adaptation to human dominated landscapes. Overall, this study contributes to our understanding of hybrid zone dynamics in vertebrates, particularly in the context of species introductions and landscape changes, underscoring the importance of considering multiple mechanisms that may be at play in maintaining lineages at both the species and subspecies level.</p>
Fig. 2 in Diet Composition Of The Red Fox, Vulpes Vulpes Linnaeus, 1758 (Canidae, Carnivora) In Western Ukraine
Fig. 2. Cluster analysis. sa – summer-autumn season, ws – winter-spring season; LV – Lviv region, VO – Volyn region, ZA – Zakarpattia region, N/A – Western Ukraine (exact data on region of origin are not available), KH – Khmelnytskyi region, TE – Ternopil region, RI – Rivne region, IV – Ivano-Frankivsk region; d – stomach contents (dissection), f – faeces sample.
Fig. 1 in Golden jackal (Canis aureus Linnaeus, 1758) and Red fox (Vulpes vulpes Linnaeus, 1758) population dynamics in Sarnena Sredna Gora Mts., Bulgaria based on hunting statistics
Fig. 1. Golden jackal (Canis aureus L.) and Red fox (Vulpes vulpes L.) population dynamics trends in Sarnena Sredna Gora Mts., Bulgaria, for a period of 11 years based on the analysis of the hunting data base (number of shot individuals)
Fig. 1 in Living with the enemy: activity rhythms of the red fox Vulpes vulpes (Carnivora, Canidae) and some potential preys in an urban environment
Fig. 1 - Satellite view of the municipal area of Padua and location of the camera traps. / Immagine satellitare del territorio comunale di Padova e posizione delle trappole fotografiche (Image/Immagine: Google Satellite).
Fig. 2 in Living with the enemy: activity rhythms of the red fox Vulpes vulpes (Carnivora, Canidae) and some potential preys in an urban environment
Fig. 2 - Temporal activity overlap between the red fox and its potential preys. The shaded area under the two density estimates represents the overlap coefficient. / Sovrapposizione dell'attività temporale tra la volpe rossa e le sue potenziali prede. L'area ombreggiata sotto le due stime di densità rappresenta il coefficiente di sovrapposizione.
Fig. 3 in Circadian activity patterns of the Red fox (Vulpes vulpes) and the Stone marten (Martes foina) in agricultural landscape of Northwestern Bulgaria during autumn-winter period
Fig. 3. Stone marten (Martes foina) and Red fox (Vulpes vulpes) daily activity patterns in protected area "Zlatiyata", Northwestern Bulgaria.
Fig. 2 in Circadian activity patterns of the Red fox (Vulpes vulpes) and the Stone marten (Martes foina) in agricultural landscape of Northwestern Bulgaria during autumn-winter period
Fig. 2. Stone marten, Martes foina (left) and Red fox, Vulpes vulpes (right) captured in protected area "Zlatiyata", Northwestern Bulgaria.
Fig. 2 in On the activity of two medium-sized canids: the Golden Jackal (Canis aureus) and the Red Fox (Vulpes vulpes) in the Natural Bark "Sinite Kamani" (Bulgaria) revealed by camera traps
Fig. 2. Number of all pictures of Red Fox (Vulpes vulpes) taken during 24h (expressed for one hour time interval) during seasons.
Fig. 4 in On the activity of two medium-sized canids: the Golden Jackal (Canis aureus) and the Red Fox (Vulpes vulpes) in the Natural Bark "Sinite Kamani" (Bulgaria) revealed by camera traps
Fig. 4. Daytime activity (feeding on dog food) of the Red Fox and the Golden Jackal registered by camera traps at the Sinite Kamani Natural Park.
Fig. 1 in On the activity of two medium-sized canids: the Golden Jackal (Canis aureus) and the Red Fox (Vulpes vulpes) in the Natural Bark "Sinite Kamani" (Bulgaria) revealed by camera traps
Fig. 1. Location of Sinite Kamani Natural Park and schematic position of the camera traps through the park (black circles).
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.