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6 results for “Plecotus auritus”
Data from: Andriollo T., Gillet F., Michaux J.R., Ruedi M. (2019). The menu varies with metabarcoding practices: A case study with the bat Plecotus auritus. PLoS ONE 14(7)
<p><strong>Supporting data for: </strong>Andriollo T., Gillet F., Michaux J.R., Ruedi M. (2019). The menu varies with metabarcoding practices: a case study with the bat <em>Plecotus auritus</em>. PLoS ONE 14(7): e0219135. https://doi.org/10.1371/journal.pone.0219135</p> <p>Raw DNA sequences of prey of <em>Plecotus auritus</em>. Sampling information separated by semicolums as folows:</p> <p>>Sequence number; Colony; Date; Sample name; Dataset; Is the sequence attributable to the diet or not (Diet); Read numbers (Size); DNA sequence</p>
Text-fig. 6. Lower jaw fragments of different fossil and recent Plecotini, occlusal view. a, b –Plecotus aff. atavus, fragment of left mnd with p4, Gritsev: a – specimen Ch/G-096; b – specimen Ch/G-104; c – P. cf. atavus, SNSB-BSPG 1962 XIX 4201, right p4, Erkertshofen 1, occlusal view; d – P. auritus, ZMMU S-174773, fragment of right mnd with p4, recent; e – P. schoepfelii, NMA P28/0478, fragment of right mnd with p4, Petersbuch 28. in The Early Miocene Bats (Chiroptera, Mammalia) From The Karstic Sites Of Erkertshofen And Petersbuch 2 (Southern Germany)
Text-fig. 6. Lower jaw fragments of different fossil and recent Plecotini, occlusal view. a, b –Plecotus aff. atavus, fragment of left mnd with p4, Gritsev: a – specimen Ch/G-096; b – specimen Ch/G-104; c – P. cf. atavus, SNSB-BSPG 1962 XIX 4201, right p4, Erkertshofen 1, occlusal view; d – P. auritus, ZMMU S-174773, fragment of right mnd with p4, recent; e – P. schoepfelii, NMA P28/0478, fragment of right mnd with p4, Petersbuch 28.
Text-fig. 5. Upper molars of different fossil and recent Plecotini, occlusal view. a – Plecotus cf. atavus, PCMRCh3, left M1, Petersbuch 2; b – P. aff. atavus, Ch/G-175, left M1, Gritsev; c – P. auritus, ZMMU S-174773, right M1, recent; d – P. schoepfelii, NMA P62/0114, right M2, Petersbuch 62; e – Corynorhinus townsendii, ZMMU S-105677, right M1, recent; f – Barbastella maxima, Ch/G-001, right M1, Gritsev. in The Early Miocene Bats (Chiroptera, Mammalia) From The Karstic Sites Of Erkertshofen And Petersbuch 2 (Southern Germany)
Text-fig. 5. Upper molars of different fossil and recent Plecotini, occlusal view. a – Plecotus cf. atavus, PCMRCh3, left M1, Petersbuch 2; b – P. aff. atavus, Ch/G-175, left M1, Gritsev; c – P. auritus, ZMMU S-174773, right M1, recent; d – P. schoepfelii, NMA P62/0114, right M2, Petersbuch 62; e – Corynorhinus townsendii, ZMMU S-105677, right M1, recent; f – Barbastella maxima, Ch/G-001, right M1, Gritsev.
On following pages: 228. Christie's Long-eared Bat (Plecotus christii); 229. Mediterranean Long-eared Bat (Plecotus turkmenicus); 232. Strelkov's Long-eared Bat (Plecotus strelkovi); 233. Ognev's Long-eared Bat (Plecotus ognevi); Long-eared Bat (Plecotus homochrous); 237. Taiwan Long-eared Bat (Plecotus taivanus); 238. Japanese Long-eared macrobullaris); 241. Sardinian Long-eared Bat (Plecotus sardus); 242. Brown Long-eared Bat (Plecotus auritus); 243 245. Rafinesque's Big-eared Bat (Corynorhinus rafinesquii); 246. Townsend's Big-eared Bat (Corynorhinus townsendii kolombatovici); 230. Ethiopian Long-eared Bat (Plecotus balensis); 231. Turkmen Long-eared Bat (Plecotus 234. Kozlov's Long-eared Bat (Plecotus kozlovi); 235. Sichuan Long-eared Bat (Plecotus ariel); 236. Himalayan Bat (Plecotus sacrimontis); 239. Ward's Long-eared Bat (Plecotus ward): 240. Alpine Long-eared Bat (Plecotus. Desert Long-eared Bat (Otonycteris hemprichii); 244. Turkestani Long-eared Bat (Otonycteris leucophaea) '); 247. Mexican Big-eared Bat (Corynorhinus mexicanus); 248. Allen's Big-eared Bat (/dionycteris phyllotis). in Vespertilionidae
On following pages: 228. Christie's Long-eared Bat (Plecotus christii); 229. Mediterranean Long-eared Bat (Plecotus turkmenicus); 232. Strelkov's Long-eared Bat (Plecotus strelkovi); 233. Ognev's Long-eared Bat (Plecotus ognevi); Long-eared Bat (Plecotus homochrous); 237. Taiwan Long-eared Bat (Plecotus taivanus); 238. Japanese Long-eared macrobullaris); 241. Sardinian Long-eared Bat (Plecotus sardus); 242. Brown Long-eared Bat (Plecotus auritus); 243 245. Rafinesque's Big-eared Bat (Corynorhinus rafinesquii); 246. Townsend's Big-eared Bat (Corynorhinus townsendii kolombatovici); 230. Ethiopian Long-eared Bat (Plecotus balensis); 231. Turkmen Long-eared Bat (Plecotus 234. Kozlov's Long-eared Bat (Plecotus kozlovi); 235. Sichuan Long-eared Bat (Plecotus ariel); 236. Himalayan Bat (Plecotus sacrimontis); 239. Ward's Long-eared Bat (Plecotus ward): 240. Alpine Long-eared Bat (Plecotus. Desert Long-eared Bat (Otonycteris hemprichii); 244. Turkestani Long-eared Bat (Otonycteris leucophaea) '); 247. Mexican Big-eared Bat (Corynorhinus mexicanus); 248. Allen's Big-eared Bat (/dionycteris phyllotis).
Data from: Aerodynamics of manoeuvring flight in brown long-eared bats (Plecotus auritus)
In this study, we explicitly examine the aerodynamics of manoeuvring flight in animals. We studied brown long-eared bats flying in a wind tunnel while performing basic sideways manoeuvres. We used particle image velocimetry in combination with high-speed filming to link aerodynamics and kinematics to understand the mechanistic basis of manoeuvres. We predicted that the bats would primarily use the downstroke to generate the asymmetries for the manoeuvre since it has been shown previously that the majority of forces are generated during this phase of the wingbeat. We found instead that the bats more often used the upstroke than they used the downstroke for this. We also found that the bats used both drag/thrust-based and lift-based asymmetries to perform the manoeuvre and that they even frequently switch between these within the course of a manoeuvre. We conclude that the bats used three main modes: lift asymmetries during downstroke, thrust/drag asymmetries during downstroke and thrust/drag asymmetries during upstroke. For future studies, we hypothesize that lift asymmetries are used for fast turns and thrust/drag for slow turns and that the choice between up- and downstroke depends on the timing of when the bat needs to generate asymmetries.
Data from: Aerodynamics of manoeuvring flight in brown long-eared bats (Plecotus auritus)
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