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8 results for “Artibeus jamaicensis”
FIGURE 2 in Taxonomic status of Andersen's fruit-eating bat (Artibeus jamaicensis aequatorialis) and revised classification of Artibeus (Chiroptera: Phyllostomidae)
FIGURE 2. Unrooted neighbor-joining phylogram based on 414 AFLP bands. Numbers along branches indicate bootstrap support values (top score) and Bayesian posterior probabilities (bottom score). Bold clade identifies specimens traditionally recognized as Artibeus jamaicensis aequatorialis.
FIGURE 3 in Taxonomic status of Andersen's fruit-eating bat (Artibeus jamaicensis aequatorialis) and revised classification of Artibeus (Chiroptera: Phyllostomidae)
FIGURE 3. Map of the distribution of Artibeus aequatorialis. Star indicates the type locality of A. aequatorialis (Zaruma [3°40'60"S, 79°37'0"W], Ecuador). The distributional range is based on literature references (hollow squares; Andersen 1906 and Marques-Aguiar 2008) and specimens examined in the Species Account (star and solid squares). The northernmost (western Colombia; Valle del Cauca, Cali [3°26'14"N, 76°31'21"W], and Rio Raposo [3°43'0"N, 77°7'60"W]) and southernmost (western Peru; Tumbes, Faical [3°44'57"S, 80°45'2"W]) extent of A. aequatorialis remains to be defined. Shaded areas represent areas of the Andes Mountains higher than 1800 meters.
On following pages: 190. Hairy Fruit-eating Bat (Artibeus hirsutus); 191. Fringed Fruit-eating Bat (Artibeus fimbriatus); 192. Ecuadorian Fruit-eating Bat (Artibeus aequatorialis); 193. Jamaican Fruit-eating Bat (Artibeus jamaicensis); 194. Dark Fruit-eating Bat (Artibeus obscurus); 195. Schwartz's Fruit-eating Bat (Artibeus schwartz); 196. Great Fruit-eating Bat (Artibeus lituratus); 197. Large Fruit-eating Bat (Artibeus amplus); 198. Flat-faced Fruit-eating Bat (Artibeus planirostris); 199. Rosenberg's Fruit-eating Bat (Artibeus rosenbergi); 200. Thomas's Fruit-eating Bat (Artibeus watson); 201. Toltec Fruit-eating Bat (Artibeus toltecus); 202. Pygmy Fruit-eating Bat (Artibeus phaeotis); 203. Gervais's Fruit-eating Bat (Artibeus cinereus); 204. Andersen's Fruit-eating Bat (Artibeus anderseni); 205. Little Fruit-eating Bat (Artibeusravus); 206. Aztec Fruit-eating Bat (Artibeus aztecus); 207. Bogota Fruit-eating Bat (Artibeus bogotensis); 208. Silvery Fruit-eating Bat (Artibeus glaucus); 209. Dwarf Fruit-eating Bat (Artibeus gnomus); 210. Jamaican Fig-eating Bat (Ariteus flavescens); 211. Tree Bat (Ardops nicholls); 212. Red Fruit Bat (Stenoderma rufum); 213. Wrinkle-faced Bat (Centurio senex): 214. Ipanema Broad-nosed Bat (Pygoderma bilabiatum); 215. Visored Bat (Sphaeronycteris toxophyllum); 216. Little White-shouldered Bat (Ametrida centurio); 217. Cuban Fig-eating Bat (Phyllops falcatus). in Phyllostomidae
On following pages: 190. Hairy Fruit-eating Bat (Artibeus hirsutus); 191. Fringed Fruit-eating Bat (Artibeus fimbriatus); 192. Ecuadorian Fruit-eating Bat (Artibeus aequatorialis); 193. Jamaican Fruit-eating Bat (Artibeus jamaicensis); 194. Dark Fruit-eating Bat (Artibeus obscurus); 195. Schwartz's Fruit-eating Bat (Artibeus schwartz); 196. Great Fruit-eating Bat (Artibeus lituratus); 197. Large Fruit-eating Bat (Artibeus amplus); 198. Flat-faced Fruit-eating Bat (Artibeus planirostris); 199. Rosenberg's Fruit-eating Bat (Artibeus rosenbergi); 200. Thomas's Fruit-eating Bat (Artibeus watson); 201. Toltec Fruit-eating Bat (Artibeus toltecus); 202. Pygmy Fruit-eating Bat (Artibeus phaeotis); 203. Gervais's Fruit-eating Bat (Artibeus cinereus); 204. Andersen's Fruit-eating Bat (Artibeus anderseni); 205. Little Fruit-eating Bat (Artibeusravus); 206. Aztec Fruit-eating Bat (Artibeus aztecus); 207. Bogota Fruit-eating Bat (Artibeus bogotensis); 208. Silvery Fruit-eating Bat (Artibeus glaucus); 209. Dwarf Fruit-eating Bat (Artibeus gnomus); 210. Jamaican Fig-eating Bat (Ariteus flavescens); 211. Tree Bat (Ardops nicholls); 212. Red Fruit Bat (Stenoderma rufum); 213. Wrinkle-faced Bat (Centurio senex): 214. Ipanema Broad-nosed Bat (Pygoderma bilabiatum); 215. Visored Bat (Sphaeronycteris toxophyllum); 216. Little White-shouldered Bat (Ametrida centurio); 217. Cuban Fig-eating Bat (Phyllops falcatus).
3D models of Artibeus jamaicensis and Rhinolophus pusillus hyoid apparatus and tympanic bones
<p>The morphology of the stylohyal-tympanic bone articulation found in laryngeally echolocating 7 bats is highly indicative of a function associated with signal production. One untested hypothesis is that 8 this morphology allows the transfer of a sound signal from the larynx to the tympanic bones (auditory 9 bulla) via the hyoid apparatus during signal production by the larynx. We used µCT data and finite 10 element analysis (FEA) to model the propagation of sound through the hyoid chain into the tympanic 11 bones to test this hypothesis. We modeled sound pressure (dB) wave propagation from the basihyal to the 12 tympanic bones, vibratory behavior (m) of the stylohyal – tympanic bone unit, and the stylohyal and 13 tympanic bones when the stylohyal bone is allowed to pivot on the tympanic bone. Sound pressure wave 14 propagation was modeled using the harmonic acoustics solver in ANSYS and vibratory behavior was 15 modeled using coupled modal and harmonic response analyses in ANSYS. For both analyses (harmonic 16 acoustics and harmonic response), the input excitation on the basihyal and thyrohyals was modeled as the 17 estimated pressure (Pa) imposed by the collision of the vibrating thyroid cartilage of the larynx against 18 these bones during signal production. Our models support the hypothesis that this stereotypical hyoid 19 morphology found in laryngeally echolocating bats can transfer sound to the auditory bullae at an 20 amplitude that is likely heard for the species Artibeus jamaicensis and Rhinolophus pusillus</p>
3D models of Artibeus jamaicensis and Rhinolophus pusillus hyoid apparatus and tympanic bones
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Cell restriction factors, and not receptor compatibility, block Jamaican fruit bat (Artibeus jamaicensis) susceptibility to mucosal inoculation with SARS-CoV-2 Delta variant.
GEO Series GSE254409. Artibeus jamaicensis. 54 samples. Type: Expression profiling by high throughput sequencing.
Transcriptome Profiling of a Pathogenic Response to a Viral Infection in Jamaican Fruit Bats Artibeus jamaicensis Experimentally Infected With Tacaribe Virus
GEO Series GSE75771. Artibeus jamaicensis. 12 samples. Type: Expression profiling by high throughput sequencing.
Jamaican fruit bats’ (Artibeus jamaicensis) competence for Ebola virus but not Marburg virus is driven by intrinsic differences in viral entry and IFN-I signaling antagonism
GEO Series GSE288891. Artibeus jamaicensis. 12 samples. Type: Expression profiling by high throughput sequencing.
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