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157 results for “Microtus”
Figure 2 from: Holicová T, Sedláček F, Mácová A, Vlček J, Robovský J (2018) New record of Microtus mystacinus in eastern Kazakhstan: phylogeographical considerations. ZooKeys 781: 67-80. https://doi.org/10.3897/zookeys.781.25359
Figure 2 Time of the most recent common ancestor (TMRCA) for Microtus species and lineages of Microtusmystacinus using fossil calibrations. Nodes are plotted on a mean air temperature curve in last 800 thousand years (based on Gates 1993). See Table 2 for time estimates.
Figure 2. Relationships between activity concentrations for 226 in Microtus guentheri (Danford & Alston, 1880) (Rodentia: Cricetidae) as a biomonitor for radionuclides in Mersin Province of Turkey
Figure 2. Relationships between activity concentrations for 226Ra, 228Ac, and 137Cs as a function of altitude (nonsignificant).
Figure 2 in Inferring phylogenetic relationships in the common vole (Microtus arvalis) based on mitochondrial and nuclear sequence diversities
Figure 2. Median-joining network obtained from CYTB haplotypes of Anatolian, Asian and European populations of M. arvalis. Number of mutations are shown by black lines on the branches.
Figure 5. Male C in Sex chromosome polymorphism in Bulgarian populations of Microtus guentheri (Danford & Alston, 1880)
Figure 5. Male C-banded karyotype of the Guenther's vole from Rodop Mountains.
Figure 4 in Sex chromosome polymorphism in Bulgarian populations of Microtus guentheri (Danford & Alston, 1880)
Figure 4. Female metaphase plate and its karyotype of the Guenther's vole from Rodop Mountains.
Figure 2 in Sex chromosome polymorphism in Bulgarian populations of Microtus guentheri (Danford & Alston, 1880)
Figure 2. Female metaphase plate and its karyotype of the Guenther's vole from Strandzha Mountain.
Figure 3. Male C in Sex chromosome polymorphism in Bulgarian populations of Microtus guentheri (Danford & Alston, 1880)
Figure 3. Male C-banded karyotype of the Guenther's vole from Strandzha Mountain.
Data from: Maternal effects and population regulation: maternal density-induced reproduction suppression impairs offspring capacity in response to immediate environment in root voles Microtus oeconomus
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Data from: Voluntary locomotor activity mitigates oxidative damage associated with isolation stress in the prairie vole (Microtus ochrogaster)
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MicroRNA expression profiles associated with anti-schistosome features in Microtus fortis
GEO Series GSE38802. Cricetulus griseus; Mus musculus; Rattus norvegicus; Alexandromys fortis. 18 samples. Type: Non-coding RNA profiling by array.
Towards an understanding of the mechanism of hypoevolution of Schistosoma japonicum schistosomula from Microtus fortis
GEO Series GSE25728. Schistosoma japonicum. 4 samples. Type: Expression profiling by array.
Figure 1 from: Holicová T, Sedláček F, Mácová A, Vlček J, Robovský J (2018) New record of Microtus mystacinus in eastern Kazakhstan: phylogeographical considerations. ZooKeys 781: 67-80. https://doi.org/10.3897/zookeys.781.25359
Figure 1 Median Joining Network based on the cyt b sequences of Microtusmystacinus.
Figure 3. C in Comparison of the chromosome banding patterns in three species of social voles (Microtus irani karamani, M. schidlovskii, M. anatolicus) from Turkey
Figure 3. C-banded karyotypes of M. irani karamani (1), M. schidlovskii (2), and M. anatolicus (3).
Human macrophages exhibit high activity to clear intracellular biovar Microtus strain of Y. pestis
GEO Series GSE121084. Homo sapiens. 7 samples. Type: Expression profiling by high throughput sequencing.
Genome wide identification of enhancer regions in the retrosplenial cortex of the prairie vole, Microtus ochrogaster.
GEO Series GSE73670. Microtus ochrogaster. 2 samples. Type: Genome binding/occupancy profiling by high throughput sequencing.
On following pages: 149. Meadow Vole (Microtus pennsyivanicus); 150. Long-tailed Vole (Microtus longicaudus); 151. Creeping Vole (Microtus oregoni); 152. Major's Pine Vole (Microtus majori); 153. Common Pine Vole (Microtus subterraneus); 154. Caucasian Pine Vole (Microtus daghestanicus); 155. Alpine Pine Vole (Microtus multiplex); 156. Liechtenstein's Pine Vole (Microtus liechtensteini); 157. Tatra Pine Vole (Microtus tatricus): 158. Mediterranean Pine Vole (Microtus duodecimcostatus); 159. Lusitanian Pine Vole (Microtus lusitanicus); 160. Pyrenean Pine Vole (Microtus gerbil); 161. Savi's Pine Vole (Microtus savii): 162. Calabria Pine Vole (Microtus brachycercus); 163. Sicilian Pine Vole (Microtus nebrodensis); 164. Thomas's Pine Vole (Microtus thomasi); 165. Balkan Pine Vole (Microtus felteni); 166. Schelkovnikov's Pine Vole (Microtus schelkovnikovi): 167. Harting's Vole (Microtus hartingi); 168. Levant Vole (Microtus guentheri); 169. Dogramaci's Vole (Microtus dogramacii); 170. Cyrenaica Vole (Microtus mustersi); 171. Social Vole (Microtus socialis): 172. Anatolian Vole (Microtus anatolicus): 173. Iranian Vole (Microtus iran); 174. Kopet Dag Pine Vole (Microtus paradoxus); 175. Common Vole (Microtus arvalis); 176. Altai Vole (Microtus obscurus); 177. East European Vole (Microtus mystacinus); 178. Kerman Vole (Microtus kermanensis); 179. Transcaspian Vole (Microtus transcaspicus); 180. Tian Shan Vole (Microtus ilaeus). in Cricetidae
On following pages: 149. Meadow Vole (Microtus pennsyivanicus); 150. Long-tailed Vole (Microtus longicaudus); 151. Creeping Vole (Microtus oregoni); 152. Major's Pine Vole (Microtus majori); 153. Common Pine Vole (Microtus subterraneus); 154. Caucasian Pine Vole (Microtus daghestanicus); 155. Alpine Pine Vole (Microtus multiplex); 156. Liechtenstein's Pine Vole (Microtus liechtensteini); 157. Tatra Pine Vole (Microtus tatricus): 158. Mediterranean Pine Vole (Microtus duodecimcostatus); 159. Lusitanian Pine Vole (Microtus lusitanicus); 160. Pyrenean Pine Vole (Microtus gerbil); 161. Savi's Pine Vole (Microtus savii): 162. Calabria Pine Vole (Microtus brachycercus); 163. Sicilian Pine Vole (Microtus nebrodensis); 164. Thomas's Pine Vole (Microtus thomasi); 165. Balkan Pine Vole (Microtus felteni); 166. Schelkovnikov's Pine Vole (Microtus schelkovnikovi): 167. Harting's Vole (Microtus hartingi); 168. Levant Vole (Microtus guentheri); 169. Dogramaci's Vole (Microtus dogramacii); 170. Cyrenaica Vole (Microtus mustersi); 171. Social Vole (Microtus socialis): 172. Anatolian Vole (Microtus anatolicus): 173. Iranian Vole (Microtus iran); 174. Kopet Dag Pine Vole (Microtus paradoxus); 175. Common Vole (Microtus arvalis); 176. Altai Vole (Microtus obscurus); 177. East European Vole (Microtus mystacinus); 178. Kerman Vole (Microtus kermanensis); 179. Transcaspian Vole (Microtus transcaspicus); 180. Tian Shan Vole (Microtus ilaeus).
Microtus fortis liver RNA-Seq during Schistosoma japonicum infection
GEO Series GSE101654. Alexandromys fortis. 18 samples. Type: Expression profiling by high throughput sequencing.
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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.