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684 results for “Phylogenetic placement”
Figure 4 from: Lamb T, Marais E, Bond JE (2017) A second locality for the Namib darkling beetle Onymacris brainei (Tenebrionidae, Coleoptera) and first report on its molecular phylogenetic placement. ZooKeys 687: 63-72. https://doi.org/10.3897/zookeys.687.13660
Figure 4 - ML consensus topology of Onymacris, with bootstrap support indicated by black (> 95%), gray (> 90%), and white (> 70%) nodes. Inset at lower left is a ML tree showing branch lengths.
Figure 3 from: Lamb T, Marais E, Bond JE (2017) A second locality for the Namib darkling beetle Onymacris brainei (Tenebrionidae, Coleoptera) and first report on its molecular phylogenetic placement. ZooKeys 687: 63-72. https://doi.org/10.3897/zookeys.687.13660
Figure 3 - Specimens of Onymacris brainei from the second locality, illustrating variation in degree of elytral striping.
Figure 1 from: Lamb T, Marais E, Bond JE (2017) A second locality for the Namib darkling beetle Onymacris brainei (Tenebrionidae, Coleoptera) and first report on its molecular phylogenetic placement. ZooKeys 687: 63-72. https://doi.org/10.3897/zookeys.687.13660
Figure 1 - Color variation among members of the 'white' Onymacris clade, as represented by: (top row, left to right) Onymacris bicolor, O. marginipennis, O. candidipennis, and (bottom row, left to right) O. langi visseri, O. langi cornelii, and O. langi meridionalis.
Figure 2 from: Lamb T, Marais E, Bond JE (2017) A second locality for the Namib darkling beetle Onymacris brainei (Tenebrionidae, Coleoptera) and first report on its molecular phylogenetic placement. ZooKeys 687: 63-72. https://doi.org/10.3897/zookeys.687.13660
Figure 2 - Map illustrating the type locality for Onymacris brainei (star), surveyed sites with appropriate habitat (white circles), and the second locality for O. brainei (red circle).
Supplementary material 3 from: Kanda K, Gomez AR, Van Driesche R, Miller KB, Maddison DR (2016) Phylogenetic placement of the Pacific Northwest subterranean endemic diving beetle Stygoporus oregonensis Larson & LaBonte (Dytiscidae, Hydroporinae). ZooKeys 632: 75-91. https://doi.org/10.3897/zookeys.632.9866
Table 1 : Explanation note: Collection and specimen data for material examined in this study.
Supplementary material 4 from: Kanda K, Gomez AR, Van Driesche R, Miller KB, Maddison DR (2016) Phylogenetic placement of the Pacific Northwest subterranean endemic diving beetle Stygoporus oregonensis Larson & LaBonte (Dytiscidae, Hydroporinae). ZooKeys 632: 75-91. https://doi.org/10.3897/zookeys.632.9866
Table 2 : Explanation note: PCR primers and amplification conditions for sampled gene fragments.
Figure 3 from: Wood KR, Appelhans MS, Wagner WL (2017) Melicope stonei, section Pelea (Rutaceae), a new species from Kaua'i, Hawaiian Islands: with notes on its distribution, ecology, conservation status, and phylogenetic placement. PhytoKeys 83: 119-132. https://doi.org/10.3897/phytokeys.83.13442
Figure 3 - Map of Kaua'i, Hawaiian Islands, with polygon indicating distribution of Melicope stonei in the Kōke'e forests.
Figure 4 from: Wood KR, Appelhans MS, Wagner WL (2017) Melicope stonei, section Pelea (Rutaceae), a new species from Kaua'i, Hawaiian Islands: with notes on its distribution, ecology, conservation status, and phylogenetic placement. PhytoKeys 83: 119-132. https://doi.org/10.3897/phytokeys.83.13442
Figure 4 - Phylogenetic placement of Melicope stonei K.R. Wood, Appelhans & W.L. Wagner based on four nuclear and two plastid markers (modified from Appelhans et al. 2014c). The phylogenetic tree only shows the Hawaiian radiation of Melicope. The terms Apocarpa, Cubicarpa, Megacarpa and Pelea refer to the former Hawaiian sections of Melicope/Pelea (Hartley & Stone 1989). The support values are displayed above the branches and the first value represents the Bayesian posterior probability values (pp), followed by the bootstrap values (bs) from the Maximum Likelihood analysis.
Figure 2 from: Wood KR, Appelhans MS, Wagner WL (2017) Melicope stonei, section Pelea (Rutaceae), a new species from Kaua'i, Hawaiian Islands: with notes on its distribution, ecology, conservation status, and phylogenetic placement. PhytoKeys 83: 119-132. https://doi.org/10.3897/phytokeys.83.13442
Figure 2 - Melicope stonei K.R. Wood, Appelhans & W.L. Wagner. A Male flower, lateral view with sepals and petals cut away to show antisepalous and antipetalous stamens B Male flower, top view C Female flower, lateral view with sepals and petals cut away to show staminodes and pistil D Female flower, top view E–F abaxial leaf surface along midvein of M. stonei showing variability of leaf vestiture G Melicope barbigera A. Gray abaxial leaf surface along midvein A–D from Wood 15101 (PTBG) E from Wagner & Wood 6891 (US) F from Wood 8432 (US) G from Wagner & Wood 6896 (US) (Illustration by Alice Tangerini).
Figure 1 from: Wood KR, Appelhans MS, Wagner WL (2017) Melicope stonei, section Pelea (Rutaceae), a new species from Kaua'i, Hawaiian Islands: with notes on its distribution, ecology, conservation status, and phylogenetic placement. PhytoKeys 83: 119-132. https://doi.org/10.3897/phytokeys.83.13442
Figure 1 - Melicope stonei K.R. Wood, Appelhans & W.L. Wagner. A Flowering branch B Adaxial leaf surface near margin toward apex C Abaxial leaf surface near margin toward apex D Ramiflorous inflorescence arising below leaves on stem E Female flower, lateral view F Immature fruit and flowers G Dehisced fruit, showing seeds. A-C from Wagner & Wood 6891 (US) D from Wood 8431 (US) E from Wood 15101 (PTBG) F from Wood & Lee 16729 (photo) G from Lorence et al. 6454 (photo) (Illustration by Alice Tangerini).
Figure 9 from: Petersen RH, Hughes KW (2016) Micromphale sect. Perforantia (Agaricales, Basidiomycetes); Expansion and phylogenetic placement. MycoKeys 18: 1-122. https://doi.org/10.3897/mycokeys.18.10007
Figure 9 - Gymnopus bulliformis. Caulocystidia from lower stipe. Standard bars = 10 µm. WTU-F-51955.
Figure 87 from: Petersen RH, Hughes KW (2016) Micromphale sect. Perforantia (Agaricales, Basidiomycetes); Expansion and phylogenetic placement. MycoKeys 18: 1-122. https://doi.org/10.3897/mycokeys.18.10007
Figure 87 - PhyML analysis of Gymnopus perforans and Gymnopus sequoiae ITS sequences. Distance measurements percent base pair differences for the ITS region only. Bootstrap support greater than 70% is given to the left of the supported node. Haplotypes are indicated as h1 or h2; clones are indicated as c1, c2, etc. North American locations are indicated by postal codes.
Figure 81 from: Petersen RH, Hughes KW (2016) Micromphale sect. Perforantia (Agaricales, Basidiomycetes); Expansion and phylogenetic placement. MycoKeys 18: 1-122. https://doi.org/10.3897/mycokeys.18.10007
Figure 81 - Gymnopus sublaccatus. A Subbasidial hyphae appearing beaded B Effete hymenial structures without collapse ("husking") C Stipe medullary hyphae. Standard bars = 10 µm. UBC 25212.
Figure 80 from: Petersen RH, Hughes KW (2016) Micromphale sect. Perforantia (Agaricales, Basidiomycetes); Expansion and phylogenetic placement. MycoKeys 18: 1-122. https://doi.org/10.3897/mycokeys.18.10007
Figure 80 - Gymnopus sublaccatus. Hymenial elements. A–D Pleurocystidia E Basidiole F–H Basidia. Standard bars = 10 µm. UBC 15356.
Figure 79 from: Petersen RH, Hughes KW (2016) Micromphale sect. Perforantia (Agaricales, Basidiomycetes); Expansion and phylogenetic placement. MycoKeys 18: 1-122. https://doi.org/10.3897/mycokeys.18.10007
Figure 79 - Gymnopus sublaccatus. Pileipellis elements. A–E Pileal hairs F Secondary septa of pileipellis hypha. Standard bars = 10 µm. UBC 25212.
Figure 77 from: Petersen RH, Hughes KW (2016) Micromphale sect. Perforantia (Agaricales, Basidiomycetes); Expansion and phylogenetic placement. MycoKeys 18: 1-122. https://doi.org/10.3897/mycokeys.18.10007
Figure 77 - Gymnopus sequoiae. Lower stipe structures. A Stipe surface free-form cells with one caulocystidium B–F Individual caulocystidia showing broad-based origin and secondary septa. Standard bars = 10 µm. TFB 14620 (TENN-F-69325).
Figure 76 from: Petersen RH, Hughes KW (2016) Micromphale sect. Perforantia (Agaricales, Basidiomycetes); Expansion and phylogenetic placement. MycoKeys 18: 1-122. https://doi.org/10.3897/mycokeys.18.10007
Figure 76 - Gymnopus sequoiae. Stipe apex structures. A Stipe medullary hyphae C Strongly incrusted cortical hyphae C Young caulocystidium with shagreened surface B, E Individual caulocystidia. Standard bars = 10 µm. TFB 14620 (TENN-F-69325).
Figure 86 from: Petersen RH, Hughes KW (2016) Micromphale sect. Perforantia (Agaricales, Basidiomycetes); Expansion and phylogenetic placement. MycoKeys 18: 1-122. https://doi.org/10.3897/mycokeys.18.10007
Figure 86 - PhyML phylogeny of Gymnopus section Perforantia based on nrITS plus nrLSU sequences. Distance measurements percent base pair differences for the ITS region only. Bootstrap support greater than 70% is given to the left of the supported node. Haplotypes are indicated as h1 or h2; clones are indicated as c1, c2, etc. North American locations are indicated by postal codes.
Figure 78 from: Petersen RH, Hughes KW (2016) Micromphale sect. Perforantia (Agaricales, Basidiomycetes); Expansion and phylogenetic placement. MycoKeys 18: 1-122. https://doi.org/10.3897/mycokeys.18.10007
Figure 78 - Gymnopus sublaccatus. A Basidiomata showing adventitious rhizomorphs and stipe insertion to pileus B Basidiospores C Substrate scales with back spots and rhizomorphs. Standard bars: A = 20 mm; B = 5 µm; C = not to scale. UBC 25212.
Figure 73 from: Petersen RH, Hughes KW (2016) Micromphale sect. Perforantia (Agaricales, Basidiomycetes); Expansion and phylogenetic placement. MycoKeys 18: 1-122. https://doi.org/10.3897/mycokeys.18.10007
Figure 73 - Gymnopus sequoiae. Pileipellis structures. A Hyphae with subgelatinized walls in slime matrix B Clamp connection C Secondary septa. Standard bars = 10 µm. TFB 14620 (TENN-F-69325).
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