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14,185 results for “phylogenies”
Figs. 28–38 in Molecular phylogeny and classification of Lyropaeini (Coleoptera: Lycidae) with description of larvae and new species of Lyropaeus
Figs. 28–38. Male genitalia of Lyropaeus s. str.: 28, L. aurantiacus Bourgeois; 29, L. biguttatus Gorham; 30, L. ceylonicus Bocak & Bocakova; 31, L. cinnamomi Kleine; 32, L. contrarius Kleine; 33, L. densepilosus Kleine; 34, L. fallax Walker; 35, L. grandissimus Kleine; 36, L. granulosus Kleine; 37, L. nepalensis, new species; 38, L. kejvali, new species. Scale bars = 0.25 mm.
Fig. 1. Phylogenetic hypothesis for Lyropaeus Waterhouse, 1878 in Molecular phylogeny and classification of Lyropaeini (Coleoptera: Lycidae) with description of larvae and new species of Lyropaeus
Fig. 1. Phylogenetic hypothesis for Lyropaeus Waterhouse, 1878 based on a maximum likelihood analysis of five fragments 18S and 28S rDNA, cox1, nad5 and rrnl mtDNA. Numbers at the branches are Bayesian frequencies and likelihood and parsimony bootstrap values.
Figs. 2–16 in Molecular phylogeny and classification of Lyropaeini (Coleoptera: Lycidae) with description of larvae and new species of Lyropaeus
Figs. 2–16. Adult male, general appearance: 2, Lyropaeus (s. str.) aurantiacus Bourgeois; 3, L. (s. str.) ceylonicus Bocak & Bocakova; 4, L. (Lyroneces) rubrostriatus Kleine; 5, L. (Lyroneces) optabilis Kleine; 6, L. (Lyroneces) philippinensis Kleine; 7, L. (Lyroneces) ritsemae Gorham; 8, L. (Lyroneces) waterhousei Gorham; 9, L. (Lyroneces) dominator Kleine; 10, L. (s. str.) kejvali, new species; 11, L. (s. str.) nepalensis, new species. Larva, general appearance: 12, Lyropaeus (s. str.) sp. A; 13–14, Lyropaeus (s. str.) sp. B; 15, Lyropaeus (s. str.) sp. C. Scale bars = 2 mm.
Figs. 17–26 in Molecular phylogeny and classification of Lyropaeini (Coleoptera: Lycidae) with description of larvae and new species of Lyropaeus
Figs. 17–26. Larva of Lyropaeus (s. str.) sp. A: 17, head in lateral view; 18, ditto in dorsal view; 19–20, general appearance in ventral view; 21, abdominal sternite and pleurites of segment 1; 22, abdominal tergite 1; 23, mesothoracic spiracular plate; 24, abdominal spiracle of the segment 1 from Fig. 21. Larva of Platerodrilus sp.: 25, spiracular plate of the segment 1 from Fig. 26; 26, abdominal sternite and pleurites of segment 1. Scale bars = 2 mm (Figs. 17–23, 25–26); scale bar = 0.25 mm (Fig. 24).
Fig. 79. A in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 79. A, Reconstructed major jaw muscles of Rhombomylus. B, Estimated working lines of masticatory muscles.
Fig. 78 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 78. Estimated areas of origin (A) and insertion (B, C) of jaw muscles in Rhombomylus. A, Lateral view of the skull (the skull being slightly transversely compressed). B, Lateral view of the mandible. C, Medial view of the mandible.
Fig. 77 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 77. Phylogenetically constrained distributions of selected taxa. Fine lines represent cladistic relationships of figure 74. Solid lines are geological distributions of taxa (based on McKenna and Bell, 1997).
Fig. 71 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 71. Dorsal and ventral views of metatarsals and phalanges of the left pes of Rhombomylus (IVPP V 7428). MtI–MtIV, first to fifth metatarsals; pph1, proximal phalange of hallux; pph5, proximal phalange of fifth digit; sesa, sesamoid bones; and tph1, terminal phalange of hallux.
Fig. 70 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 70. Distal, proximal, medial, and lateral views of the left mesocuneiform of Rhombomylus (IVPP V 7428). McMtII, facet for the metatarsal II; and NMe, facet for navicular.
Fig. 68 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 68. Proximal, distal, dorsal, lateral, medial, and ventral views of the left cuboid of Rhombomylus (IVPP V 7428). Acu, astragalocuboid facet; CaCu, calcaneocuboid facet; CuEc, facet for ectocuneiform; CuM45, facet for metatarsals IV and V; hook, hook extending laterally from plantar process; and pp, plantar process.
Fig. 65 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 65. Dorsal, lateral, ventral, medial, distal, and posterior views of the right astragalus of Rhombomylus (IVPP V7428). ACu, astagalocuboid facet; AFi, astragalofibular facet; Alp, lateral process of astragalus; AmT, astragalomediotarsal facet; AN, astragalonavicular facet; ATil, lateral astragalotibial facet; ATim, medial astragalotibial facet; CaA, calcaneoastragalar facet; sa, sulcus astragali; su, sustentacular facet; suh, sustentacular hinge; trlr, lateral rim of astragalar trochlea; trmr, medial rim of astragalar trochlea.
Fig. 63 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 63. Tibia and fibula of Rhombomylus (A, B, D, E, IVPP V7428; C, IVPP V7498). A1–5, Lateral, anterior, medial, posterior, and proximal views of the proximal part of a left tibia. B1–4, Posterior, anterior, medial, and distal views of the distal part of a left tibia. C, Proximal parts of right tibia and fibula in anterolateral view. D, Left tibia and fibular in distal view. E1–3, Medial, lateral, and distal views of a distal left fibula. AFi, astragalofibular facet; ATid, distal astragalotibial facet; ATil, lateral astragalotibial facet; ATim, medial astragalotibial facet; CaFi, calcaneofibular facet; Fip, proximal part
Fig. 66 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 66. Medial, dorsal, lateral, ventral, and distal views of the right calcaneus of Rhombomylus (IVPP V7428). at, anterior plantar tubercle; CaA, calcaneoastragalar facet; CaCu, calcaneocuboid facet; CaFi, calcaneofibular facet; gtff, groove for the tendon of M. flexor fibularis; gtpb, groove for the tendon of M. peroneus brevis; gtpl, groove for the tendon of M. peroneus longus; pp, peroneal process; ptca, calcaneal protuberance; su, sustentacular facet; suh, facet for the sustentacular hinge of astragalus; and sus, sustentaculum talus.
Fig. 67 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 67. Proximal, distal, lateral, medial, dorsal, and ventral views of the left navicular of Rhombomylus (IVPP V 7428). AN, astragalonavicular facet on navicular; napp, plantar process of navicular; NCs, articular facet for cuneiforms on the distal surface of navicular body; and NCu, naviculocuboid facet on the lateral surface of navicular body.
Fig. 69 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 69. Left ectocuneiform of Rhombomylus (IVPP V 7428). A, Proximal view (right up); B, medial view; C, distal view; D, lateral view. CuEc, facet for cuboid; EcMt, articular facet for metatarsal III; NEc, facet for navicular.
Fig. 59 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 59. Manus of Rhombomylus (IVPP V7518). A1–2, dorsal and ventral views of a partial left manus; B1–2, dorsal and ventral views of a proximal phalange. McII, McIII, McIV, and McV, second to fifth metacarpals; patu, palmar tubercle; pph3, proximal phalange of third finger; and sesa, sesamoid bones.
Fig. 60 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 60. Pelvic girdle of Rhombomylus (A, IVPP V7428; B, IVPP V7457; C, IVPP V7460; D, IVPP V7459). A1–2, lateral and medial views of a partial left innominate; B1–2, lateral and medial views of the middle part of a left innominate; C1–2, lateral and medial views of the partial right ischium and pubis; D, lateral view of the middle part of a right innominate.
Fig. 64 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 64. Left tarsal bones of Rhombomylus (IVPP V7428), entocuneiform missed. A, Distal view of astragalus and calcaneus; B, distal view of cuboid and navicular; C–F, dorsal, medial, lateral, and ventral views of tarsal bones. ACu, astragalocuboid joint; Afi, astragalofibular facet on astragalus; AMt, astragalomediotarsal facet on the head of astragalus; AN, astragalonavicular joint; As, astragalus; at, anterior planter process of calcaneus; Ca, calcaneus; CaA, calcaneoastragalur joint; CaCu, calcaneocuboid joint; CaCu1, calcaneocuboid facet of calcaneus; CaFi, calcaneofibular facet on calcaneus; Cu, cuboid; CuEc, ectocuneiform facet on cuboid; cupp, plantar process of cuboid; Ecu, ectocuneiform; Mcu, mesocuneiform; Na, navicular; napp, plantar process of navicular; and pp, peroneal process of calcaneus.
Fig. 73 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 73. The strict consensus of 440 MPT (MPT TL = 501, CI = 0.3952, HI = 0.6048, and RI = 0.7200) derived from the skeletal matrix with all characters unordered. The strict consensus has TL=
Fig. 55 in The Osteology Of Rhombomylus (Mammalia, Glires): Implications For Phylogeny And Evolution Of Glires
Fig. 55. Partial vertebral column and pelvic girdle of Rhombomylus (A, IVPP V5269.3; B, V5271). A, Last two lumbar vertebrae, sacral series, first two caudal vertebrae, and posteroventral part of pelvic girdle: A1 ventral view; A2, dorsal view; B, last two lumbar vertebrae, sacral series, first caudal vertebra, and ilium: B1, ventral view; B2, dorsal view. C1, first caudal vertebra; C2, second caudal vertebra; Lla, last lumbar vertebra; postzy, postzygaphosis; S1, S2, S3, first to third sacral vertebrae; sp pro, spinal process; and tran pro, transverse process.
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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
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.
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