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15 results for “Glis”
Glis Ratz (r2387)
<b>-- <a href="https://doi.org/10.5281/zenodo.11582199">Documentation</a> --</b><br><br><u>Name</u>: Glis Ratz<br><u>musiXplora-ID</u>: r2387<br><u>musiXplora-URI</u>: <a href="https://musixplora.de/mxp/r2387">https://musixplora.de/mxp/r2387</a><br><u>Gender</u>: m<br><u>First Mentioned</u>: 1700<br><u>Sectors</u>: Instrumentenbau, Kirche<br><u>Professions (Historical)</u>: Erfinder der Angelika<br><u>Professions (Musical)</u>: Orgelbauer<br><u>Other Places of Activity</u>: Mühlhausen/Elsass<br><br><br><br><u>Changelog</u>:<br> - v0.0.1: Initial Upload.<br>
Fig. 3 in Body Measurements And Harversting Dynamics Of The Fat Dormouse (Glis Glis L.) In The Mountainous Part Of Croatia
Fig. 3. Correlation between the body mass of caught fat dormice (Glis glis L.) and the days of hunting for the locality of Vrbovsko during the autumn of 1994
Fig. 6 in Body Measurements And Harversting Dynamics Of The Fat Dormouse (Glis Glis L.) In The Mountainous Part Of Croatia
Fig. 6. Correlation between the number of caught fat dormice (Glis glis L.) and the days in the hunting season for the locality of Gerovo during the autumn of 1999
Fig. 5 in Body Measurements And Harversting Dynamics Of The Fat Dormouse (Glis Glis L.) In The Mountainous Part Of Croatia
Fig. 5. Correlation between the number of caught fat dormice (Glis glis L.) and the days in the hunting season for the locality of Vrbovsko during the autumn of 1994
Fig. 4 in Body Measurements And Harversting Dynamics Of The Fat Dormouse (Glis Glis L.) In The Mountainous Part Of Croatia
Fig. 4. Correlation between the body mass of caught fat dormice (Glis glis L.) and the days of hunting for the locality of Gerovo during the autumn of 1999
Fig. 1 in Body Measurements And Harversting Dynamics Of The Fat Dormouse (Glis Glis L.) In The Mountainous Part Of Croatia
Fig. 1. The area of protection, permitted hunting and research of the fat dormouse (Glis glis L.) in Croatia
Fig. 2 in Body Measurements And Harversting Dynamics Of The Fat Dormouse (Glis Glis L.) In The Mountainous Part Of Croatia
Fig. 2. Trends in harvesting the fat dormouse (Glis glis L.) in the municipalities of Gerovo (1), Tršće (2) and Prezid (3) between 1991 and 2001
Figure. Distribution of body mass of 22 edible dormouse juveniles at the last weighing before hibernation. in Changes in body mass of postweaning juveniles of the edible dormouse, Glis glis (L.), in captivity
Figure. Distribution of body mass of 22 edible dormouse juveniles at the last weighing before hibernation.
Direct evidence for nest predation by the edible dormouse (Glis glis, Rodentia) in open-cup nesting songbirds
<p>Here we provide the first direct evidence, with the use of time-lapse video surveillance, that edible dormouse (Glis glis), depredated eggs and nestlings of two open-nesting passerine species, the Eurasian blackcap (Sylvia atricapilla), and the common blackbird (Turdus merula) in a central European woodland. In the blackcap, we detected three predation events. In the first two cases, edible dormouse flushed away incubating/brooding females and preyed upon either the eggs or the nestlings. The third case documents egg predation on an abandoned nest. The fourth case (two files and b) documents an attempt to forage on eggs in an abandoned nest of song thrush (Turdus philomelos). Note that an Apodemus mouse brought an egg into this nest before. In the blackbird (files Case 5a,b), we document a single case of dormouse attacking a brooding female. The female and nestlings managed to escape. Our data bring another piece of evidence for dormice predation on Passerine birds and they highlight the value of direct nest surveillance for documenting rodent predatory impact on birds.</p> <p> </p> <p>File names match the order of the cases as desribed in the paper published in Journal of Vertebrate Biology <a href="https://doi.org/10.25225/jvb.24090">https://doi.org/10.25225/jvb.24090</a>. Files labelled as "edited" contain scenes with the predations events only.</p>
Fig. 1 in Main Functions Of Loud Vocalization In Populations Of Edible Dormouse Glis Glis
Fig. 1. Mean number of "performances" (a) and loud calls (b) found in all studied edible
Data from: The insensitive dormouse: reproduction skipping is not caused by chronic stress in Glis glis
Entire populations of edible dormice (Glis glis) can skip reproduction in years without mast seeding of deciduous trees (particularly beech or oak seed), because juveniles require high caloric seeds for growth and fattening prior to hibernation. We hypothesized that, in mast failure years, female dormice may be forced to spend larger amounts of time foraging for low-quality food, which should increase their exposure to predators, mainly owls. This may lead to chronic stress, i.e., long-term increased secretion of Glucocorticoids (GC), which can have inhibitory effects on reproductive function in both female and male mammals. We monitored reproduction in free-living female dormice over three years with varying levels of food availability, and performed a supplemental feeding experiment. To measure stress hormone levels, we determined fecal GC metabolite (GCM) concentrations collected during the day, which reflect hormone secretion rates in the previous nocturnal activity phase. We found that year-to-year differences in beech mast significantly affected fecal GCM levels and reproduction. However, contrary to our hypothesis, GCM levels were lowest in a non-mast year without reproduction, and significantly elevated in full-mast and intermediate years, as well as under supplemental feeding. Variation in owl density in our study area had no influence on GCM levels. Consequently, we conclude that down-regulation of gonads and reproduction skipping in mast-failure years in this species is not caused by chronic stress. Thus, in edible dormice, delayed reproduction apparently is profitable in response to the absence of energy-rich food in non-mast years, but not in response to chronic stress.
On following pages: 17. Fat Dormouse (Glis glis); 18. Hazel Dormouse (Muscardinus avellanarius); 19. Roach''s Mouse-tailed Dormouse (Myomimus roachi); 20. Setzer's Mouse-tailed Dormouse (Myomimus setzeri); 21. Ognev's Mouse-tailed Dormouse (Myomimus personatus); 22. Desert Dormouse (Selevinia betpakdalaensis); 23. Sichuan Dormouse (Chaetocauda sichuanensis); 24. Eurasian Forest Dormouse (Dryomys nitedula); 25. Woolly Forest Dormouse (Dryomys lanigen; 26. Niethammer's Forest Dormouse (Dryomys niethammeri); 27. Black-tailed Garden Dormouse (Eliomys melanurus); 28. European Garden Dormouse (Eliomys quercinus); 29. Maghreb Garden Dormouse (Eliomys munbyanus). in Gliridae
On following pages: 17. Fat Dormouse (Glis glis); 18. Hazel Dormouse (Muscardinus avellanarius); 19. Roach''s Mouse-tailed Dormouse (Myomimus roachi); 20. Setzer's Mouse-tailed Dormouse (Myomimus setzeri); 21. Ognev's Mouse-tailed Dormouse (Myomimus personatus); 22. Desert Dormouse (Selevinia betpakdalaensis); 23. Sichuan Dormouse (Chaetocauda sichuanensis); 24. Eurasian Forest Dormouse (Dryomys nitedula); 25. Woolly Forest Dormouse (Dryomys lanigen; 26. Niethammer's Forest Dormouse (Dryomys niethammeri); 27. Black-tailed Garden Dormouse (Eliomys melanurus); 28. European Garden Dormouse (Eliomys quercinus); 29. Maghreb Garden Dormouse (Eliomys munbyanus).
Data from: Edible dormice (Glis glis) avoid areas with a high density of their preferred food plant - the European beech
Open the record for dataset details and reuse information.
Data from: The insensitive dormouse: reproduction skipping is not caused by chronic stress in Glis glis
Open the record for dataset details and reuse information.
On following pages: 4. Northern Treeshrew (Tupaia belangeri); 5. Lesser Treeshrew (Tupaia minon; 6. Common Treeshrew (Tupaia glis); 7. Nicobar Treeshrew (Tupaia nicobarica); 8. Sumatran Treeshrew (Tupaia ferruginea); 9. Golden-bellied Treeshrew (Tupaia chrysogasten:; 10. Banka Island Treeshrew (Tupaia discolon; 11. Horsfield's Treeshrew (Tupaia javanica); 12. Javan Treeshrew (Tupaia hypochrysa); 13. Large Treeshrew (Tupaia tana); 14. Long-footed Treeshrew (Tupaia longipes); 15. Slender Treeshrew (Tupaia gracilis); 16. Mountain Treeshrew (Tupaia montana); 17. Striped Treeshrew (Tupaia dorsalis); 18. Painted Treeshrew (Tupaia picta); 19. Kalimantan Treeshrew (Tupaia salatana); 20. Splendid Treeshrew (Tupaia splendidula); 21. Mindanao Treeshrew (Tupaia everett), 22. Palawan Treeshrew (Tupaia palawanensis). in Tupaiidae
On following pages: 4. Northern Treeshrew (Tupaia belangeri); 5. Lesser Treeshrew (Tupaia minon; 6. Common Treeshrew (Tupaia glis); 7. Nicobar Treeshrew (Tupaia nicobarica); 8. Sumatran Treeshrew (Tupaia ferruginea); 9. Golden-bellied Treeshrew (Tupaia chrysogasten:; 10. Banka Island Treeshrew (Tupaia discolon; 11. Horsfield's Treeshrew (Tupaia javanica); 12. Javan Treeshrew (Tupaia hypochrysa); 13. Large Treeshrew (Tupaia tana); 14. Long-footed Treeshrew (Tupaia longipes); 15. Slender Treeshrew (Tupaia gracilis); 16. Mountain Treeshrew (Tupaia montana); 17. Striped Treeshrew (Tupaia dorsalis); 18. Painted Treeshrew (Tupaia picta); 19. Kalimantan Treeshrew (Tupaia salatana); 20. Splendid Treeshrew (Tupaia splendidula); 21. Mindanao Treeshrew (Tupaia everett), 22. Palawan Treeshrew (Tupaia palawanensis).
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