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17 results for “Spalax”
Figure 3 in Spalax denizliensis sp. nov. (Spalacidae, Rodentia) from an Early Pleistocene-aged locality in the Denizli Basin (southwestern Turkey)
Figure 3. Occlusal views of Spalax denizliensis sp. nov. from Gökpınar (GOP): A) left M1 (GOP-7001); B) left M2 (GOP- 6002); C) right m1 (GOP-7003); D) left m1 (GOP-7004); E) right m2 (GOP-7005); F) right m3 (GOP-7007).
Figure 4 in Spalax denizliensis sp. nov. (Spalacidae, Rodentia) from an Early Pleistocene-aged locality in the Denizli Basin (southwestern Turkey)
Figure 4. Comparison of the upper and lower molars of Spalax denizliensis sp. nov. with Spalax odessanus. The length of teeth has been made the same in order to facilitate morphological comparison and to draw attention to differences in shape. Illustrations used in the chart are from: A) Spalax denizliensis sp. nov. (M1, M2), B) Spalax odessanus (M1, M2) (Topachevski, 1969, fig. 2), C) Spalax denizliensis sp. nov. (m1–m3), Spalax odessanus (m1–m3) (Topachevski, 1969, fig. 2).
Figure 1. A in Spalax denizliensis sp. nov. (Spalacidae, Rodentia) from an Early Pleistocene-aged locality in the Denizli Basin (southwestern Turkey)
Figure 1. A) Gökpınar location of the Denizli Basin in western Turkey (modified from Bozkurt, 2003); B) geological map of the Denizli Basin modified from Erten (2017) with the position of Gökpınar locality.
Subspecies and Distribution. H.a.argenteocinereusPeters,1846—Mozambique,NofZambeziRiver. H.a.eminiNoack,1894—mostofTanzania. H.a.marungensisNoack,1887—SEDRCongo,EZambia,andMalawi. H.a.kapitiHeller,1909—SKenya. H. a. spalax Thomas, 1910 — NE Tanzania (Kilimanjaro and Eastern Arc Mts: Usambara, Uluguru, and Ukaguru). in Bathyergidae
Subspecies and Distribution. H.a.argenteocinereusPeters,1846—Mozambique,NofZambeziRiver. H.a.eminiNoack,1894—mostofTanzania. H.a.marungensisNoack,1887—SEDRCongo,EZambia,andMalawi. H.a.kapitiHeller,1909—SKenya. H. a. spalax Thomas, 1910 — NE Tanzania (Kilimanjaro and Eastern Arc Mts: Usambara, Uluguru, and Ukaguru).
On following pages: 4. Manchurian Zokor (Myospalax psilurus); 5. Khingan Zokor (Myospalax epsilanus); 6. Fontanier's Zokor (Eospalax baileyi); 10. Rothschild's Zokor (Eospalax rothschildi); 11. Smith's Zokor (Eospalax smithi); 12. Chinese Bamboo sumatrensis); 15. Lesser Bamboo Rat (Cannomys badius); 16. African Root Rat (Tachyoryctes splendens); 17. Giant Root antiquus); 20. Bukovina Blind Mole-rat (Spalax graecus); 21. Podolsk Blind Mole-rat (Spalax zemni); 22. Sandy Blind Mole-rat giganteus); 25. Kazakhstan Blind Mole-rat (Spalax uralensis); 26. Lesser Blind Mole-rat (Nannospalax leucodon); 27. Anatolian (Eospalax fontanieril); 7. Gansu Zokor (Eospalax cansus); 8. Qinling Zokor (Eospalax rufescens); 9. Plateau Zokor Rat (Rhizomys sinensis); 13. Hoary Bamboo Rat (Rhizomys pruinosus); 14. Indomalayan Bamboo Rat (Rhizomys Rat (Tachyoryctes macrocephalus); 18. Oltenia Blind Mole-rat (Spalax istricus); 19. Mehely's Blind Mole-rat (Spalax (Spalax arenarius); 23. Greater Blind Mole-rat (Spalax microphthalmus); 24. Giant Blind Mole-rat (Spalax Blind Mole-rat (Nannospalax xanthodon); 28. Middle East Blind Mole-rat (Nannospalax ehrenbergi). in Spalacidae
On following pages: 4. Manchurian Zokor (Myospalax psilurus); 5. Khingan Zokor (Myospalax epsilanus); 6. Fontanier's Zokor (Eospalax baileyi); 10. Rothschild's Zokor (Eospalax rothschildi); 11. Smith's Zokor (Eospalax smithi); 12. Chinese Bamboo sumatrensis); 15. Lesser Bamboo Rat (Cannomys badius); 16. African Root Rat (Tachyoryctes splendens); 17. Giant Root antiquus); 20. Bukovina Blind Mole-rat (Spalax graecus); 21. Podolsk Blind Mole-rat (Spalax zemni); 22. Sandy Blind Mole-rat giganteus); 25. Kazakhstan Blind Mole-rat (Spalax uralensis); 26. Lesser Blind Mole-rat (Nannospalax leucodon); 27. Anatolian (Eospalax fontanieril); 7. Gansu Zokor (Eospalax cansus); 8. Qinling Zokor (Eospalax rufescens); 9. Plateau Zokor Rat (Rhizomys sinensis); 13. Hoary Bamboo Rat (Rhizomys pruinosus); 14. Indomalayan Bamboo Rat (Rhizomys Rat (Tachyoryctes macrocephalus); 18. Oltenia Blind Mole-rat (Spalax istricus); 19. Mehely's Blind Mole-rat (Spalax (Spalax arenarius); 23. Greater Blind Mole-rat (Spalax microphthalmus); 24. Giant Blind Mole-rat (Spalax Blind Mole-rat (Nannospalax xanthodon); 28. Middle East Blind Mole-rat (Nannospalax ehrenbergi).
Figure 1 in Old views and new insights: taxonomic revision of the Bukovina blind mole rat, Spalax graecus (Rodentia: Spalacinae)
Figure 1. Distribution of Spalax species (capitals) and the geographic origin of the investigated tissue samples (numerals). Distribution areas are based on the International Union for Conservation of Nature (IUCN) Red List maps, Chis¸amera et al. (2013), and our own data. A, Spalax uralensis; B, Spalax giganteus; C, Spalax microphthalmus; D, Spalax arenarius; E, Spalax zemni; F, Spalax graecus s.s.; G, Spalax antiquus; H, Spalax istricus. 1, Novomoszkovsz; 2, Krivij Rig; 3, Kherson Province; 4, Tzurupinsk District; 5, David Valley, Iasi; 6, Dealul lui Dumnezeu; 7, Budes¸ti; 8, Aiton; 9, Sândules¸ti.
Figure 4. Maximum-likelihood tree reconstructed from a 4507 in Old views and new insights: taxonomic revision of the Bukovina blind mole rat, Spalax graecus (Rodentia: Spalacinae)
Figure 4. Maximum-likelihood tree reconstructed from a 4507-bp alignment of six mitochondrial sequencesof Spalax species [cytochrome b, NADH1, 12S rRNA, 16S rRNA, tRNA-Leu (UUR), tRNA-Val]. Acomys cahirinus and Nannospalax judaei were used as out-groups. The percentage of trees in which the associated taxa clustered together (after 10 000 replications) is shown next to the branches. The bar represents the number of substitutions per site.
Figure 5 in Old views and new insights: taxonomic revision of the Bukovina blind mole rat, Spalax graecus (Rodentia: Spalacinae)
Figure 5. Dorsal view of skull of Spalax graecus s.s. (topotype from Chernovcy, Ukraine, ZMUAS 32). Abbreviations: f, frontal bone; p, parietal bone; pm, premaxilla; n, nasal bone.
Figure 3 in Old views and new insights: taxonomic revision of the Bukovina blind mole rat, Spalax graecus (Rodentia: Spalacinae)
Figure 3. Maximum-likelihood tree reconstructed from an 844-bp alignment of cytochrome b sequences of Spalax species. Acomys cahirinus and Nannospalax judaei were used as out-groups. The percentage of trees in which the associated taxa clustered together (after 10 000 replications) is shown next to the branches. The bar represents the number of substitutions per site.
Figure 2 in Old views and new insights: taxonomic revision of the Bukovina blind mole rat, Spalax graecus (Rodentia: Spalacinae)
Figure 2. Live specimen of Spalax graecus from David Valley, Iasi, Romania (photo: G. Csorba).
Spalax galili and Spalax carmeli Placenta Transcriptomes
GEO Series GSE68763. Spalax carmeli; Nannospalax galili. 2 samples. Type: Expression profiling by high throughput sequencing.
Figure 2 in Spalax denizliensis sp. nov. (Spalacidae, Rodentia) from an Early Pleistocene-aged locality in the Denizli Basin (southwestern Turkey)
Figure 2. Dental terminology of Spalax (Spalacidae) upper (M1) and lower (m1) molars.
Hypoxia transcriptome sequencing of blind mole rat (BMR, Spalax galili) and rat (Rattus norvegicus)
GEO Series GSE49485. Nannospalax galili; Rattus norvegicus. 12 samples. Type: Expression profiling by high throughput sequencing.
Spalax gene expression profiling of muscle and brain under hypoxia
GEO Series GSE37619. Nannospalax galili; Rattus norvegicus. 28 samples. Type: Expression profiling by array.
Expression Profiling of Spalax ehrenbergi: bioprospecting for hypoxia tolerance
GEO Series GSE3763. Nannospalax judaei; Mus musculus; Nannospalax ehrenbergi; Nannospalax galili. 12 samples. Type: Expression profiling by array.
Figure 7 in Old views and new insights: taxonomic revision of the Bukovina blind mole rat, Spalax graecus (Rodentia: Spalacinae)
Figure 7. Dorsal view of skulls showing the rostral structure of (A) Spalax antiquus (from Leorint, Romania, HNHM 23530), (B) Spalax graecus s.s. (topotype from Chernovcy, Ukraine, ZMUAS 11214), (C) Spalax istricus (paralectotype from Horezu Poenari, Romania, HNHM 2522.4), and (D) Spalax zemni (from Krivij Rig, Ukraine, HNHM 2009.37.9.). Not to scale.
Figure 6 in Old views and new insights: taxonomic revision of the Bukovina blind mole rat, Spalax graecus (Rodentia: Spalacinae)
Figure 6. Caudal view of left mandible of Spalax antiquus (Leorint, Romania, HNHM 23530). The plane is determined by the axis of the coronoid process. Abbreviations: cp, coronoid process; se, sella externa; si = sella interna.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
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