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266 results for “Polyporales”
FIGURE 1. A in Sarcodontia crocea (Basidiomycota, Polyporales) is unrelated to Spongipellis
FIGURE 1. A phylogenetic tree obtained from Bayesian analysis of the LSU alignment. Numbers at branch nodes indicate Maximum Likelihood bootstrap proportions (left; values <50 are replaced with asterisk) and Bayesian posterior probability values (right). The bar indicates number of expected substitutions per position.
FIGURE 2. A in Sarcodontia crocea (Basidiomycota, Polyporales) is unrelated to Spongipellis
FIGURE 2. A phylogenetic tree obtained from Bayesian analysis of the ITS alignment. Numbers at branch nodes indicate Maximum Likelihood bootstrap proportions (left) and Bayesian posterior probability values (right). The bar indicates the number of expected substitutions per position.
FIGURE 1 in Morphological and molecular identification of a new species of Perenniporia (Polyporales, Basidiomycota) in North America
FIGURE 1. Maximum Parsimony strict consensus tree illustrating the phylogeny of Perenniporia bostonensis and related species based on ITS+nLSU sequences. Branches are labeled with maximum likelihood bootstrap higher than 70%, parsimony bootstrap proportions higher than 50% and Bayesian posterior probabilities more than 0.95 respectively.
FIGURE 1 in A new species of Antrodia (Basidiomycota, Polyporales) from juniper forest of Uzbekistan
FIGURE 1. Phylogeny of Antrodia inferred from ITS + nLSU dataset. Branches are labeled with maximum likelihood bootstrap higher than 75% and Bayesian posterior probabilities more than 0.95. The new species is shown in bold. Bar: 0.1 expected change per site.
FIGURE 3 in A new species of Antrodia (Basidiomycota, Polyporales) from juniper forest of Uzbekistan
FIGURE 3. Microscopic structures of Antrodia uzbekistanica (drawn from the holotype). a: Basidiospores; b: Chlamydospores; c: Basidia and basidioles; d: Hyphae from trama; e: Hyphae from subiculum.
FIGURE 3 in Morphological and molecular identification of a new species of Perenniporia (Polyporales, Basidiomycota) in North America
FIGURE 3. Microscopic structures of Perenniporia bostonensis (drawn from the holotype). a. Basidiospores. b. Basidia and basidioles. c. Cystidioles. d. Hyphae from trama. e. Hyphae from subiculum. Bars: a–5 μm; b–e–10 μm.
FIGURE 1 in Erratum: Gómez-Montoya, N., Drechsler-Santos, E.R., Ferreira-Lopes, V., Tomšovský, M., Urcelay, C. & Robledo, G.L. (2017) New insights on Trametopsis Tomšovský (Polyporales Gäum) based on phylogenetic evidences and morphological analyses of neotropical species. Phytotaxa 311 (2): 155-167.
FIGURE 1. Best-scored tree representing the phylogenetic relationships based on ITS and LSU rDNA. Bayesian Inference, Maximum Parsimony and Maximum Likelihood support values are given above the branches.
FIGURE 2 in Perenniporia punctata sp. nov. (Polyporales, Basidiomycota), a new species discovered from China
FIGURE 2. Basidiocarps of Perenniporia punctata species (Dai 17923 and Dai 17915, scale bars = 2 cm).
FIGURE 1 in Perenniporia punctata sp. nov. (Polyporales, Basidiomycota), a new species discovered from China
FIGURE 1. Phylogenetic tree inferred from maximum likelihood (ML) analysis based on the combined dataset of ITS and nrLSU. Only maximum likelihood (BS), maximum parsimony (BP) and Bayesian posterior probabilities (BPP) greater than or equal to 75% (BP), 50% (MPBS) and 0.95 (BPP) are reported on the branches.
FIGURE 3 in Perenniporia punctata sp. nov. (Polyporales, Basidiomycota), a new species discovered from China
FIGURE 3. Microscopic structures of Perenniporia punctata (drawn by Hai-Jiao Li from the holotype). a. Basidiospores. b. Basidia and basidioles. c. Hyphae from trama. d. Hyphae from context.
FIGURE 2 in New insights on Trametopsis Tomšovský (Polyporales Gäum) based on phylogenetic evidences and morphological analyses of neotropical species
FIGURE 2. Macroscopic features of Trametospis species. Trametopsis aborigena A–D [HOLOTYPE FCOS41, CORD(C 00005352], A) Pileus, B) Context, C) Reddish veins pileal surface, D) Pores. Trametopsis cervina E–G (FCOS-39), E) Pileus, F) Context, G) Pores. Trametopsis brasiliensis H–J (HOLOTYPE, HF C3637), H) Pileus, I) Context, J) Pores. Trametopsis luteocontexta K–M (HOLOTYPE, MBM 180795), K) Pileus, L) Context, M) Pores. Bars = 0.5 cm. Photos by: Nataly Gómez-Montoya and Gerardo Robledo
FIGURE 1 in New insights on Trametopsis Tomšovský (Polyporales Gäum) based on phylogenetic evidences and morphological analyses of neotropical species
FIGURE 1. Best-scored tree representing the phylogenetic relationships based on ITS and LSU rDNA. Bayesian Inference, Maximum Parsimony and Maximum Likelihood support values are given above the branches.
FIGURE 3 in New insights on Trametopsis Tomšovský (Polyporales Gäum) based on phylogenetic evidences and morphological analyses of neotropical species
FIGURE 3. Microscopic characters of Trametopsis aborigena A–C, F [HOLOTYPE FCOS41, CORD(C) 00005352]. A–C) Clamped generative hyphae, F) Basidiospores. Trametopsis cervina D–E, G (FCOS39) D) Generative hyphae clamped, E) Metachromatic, clamped generative hyphae, G) Basidiospores. Trametopsis.brasiliensis (HOLOTYPE, HF C3637) H) Basidiospores. Trametopsis luteocontexta (HOLOTYPE, MBM 180795) I) Basidiospores. Bars = 5 μm. Photos by: Nataly Gómez-Montoya
FIGURE 4 in New insights on Trametopsis Tomšovský (Polyporales Gäum) based on phylogenetic evidences and morphological analyses of neotropical species
FIGURE 4. Microscopic features of Trametopsis aborigena [HOLOTYPE FCOS41, CORD(C) 00005352]. A) Sporogram from the basidiospores in equatorial and polar view, (el = equatorial lateral view; ead = equatorial adaxial view; eab = equatorial abaxial view; dp = distal polar view and pp = proximal polar view). B) Basidia, C) Thick and thin-walled generative hyphae from the context, D) Skeletal hyphae in the trama of the tubes. Drawings by Nataly Gómez-Montoya.
FIGURE 3 in A new species of Obba (Polyporales, Basidiomycota) from Thailand
FIGURE 3. Microscopic structures of Obba thailandica (drawn from the holotype). a. Basidiospores. b. Basidioles. c. Basidia. d. Cystidioles. e. Hyphae from trama. F. Hyphae from subiculum.
FIGURE 1. The phylogram inferred from a in A new species of Obba (Polyporales, Basidiomycota) from Thailand
FIGURE 1. The phylogram inferred from a Maximum Likelihood analysis of ITS sequences of Obba and related genera to show the phylogenetic position of Obba thailandica. The voucher number and origin, if available, of each taxon of Obba are labeled. The topology is inferred from the maximum likelihood algorithms, and the statistical values labeled on the branches are calculated from the maximum likelihood and Bayesian inference algorithms. The newly sequenced taxa are in boldface.
FIGURE 4 in Phlebia ailaoshanensis sp. nov. (Polyporales, Basidiomycota) evidenced by morphological characters and phylogenetic analyses
FIGURE 4. Microscopic structures of Phlebia ailaoshanensis (drawn from the holotype). a. Basidiospores. b. A section of basidiocarps. Bars: a–5 μm; b–10 μm.
FIGURE 2 in Phlebia ailaoshanensis sp. nov. (Polyporales, Basidiomycota) evidenced by morphological characters and phylogenetic analyses
FIGURE 2. Maximum Parsimony strict consensus tree illustrating the phylogeny of Phlebia ailaoshanensis and related species in Phlebia based on ITS+nLSU sequences. Branches are labeled with maximum likelihood bootstrap higher than 70%, parsimony bootstrap proportions higher than 50% and Bayesian posterior probabilities more than 0.95 respectively.
FIGURE 1 in Phlebia ailaoshanensis sp. nov. (Polyporales, Basidiomycota) evidenced by morphological characters and phylogenetic analyses
FIGURE 1. Maximum Parsimony strict consensus tree illustrating the phylogeny of Phlebia ailaoshanensis and related species in Polyporales based on ITS+nLSU sequences. Branches are labeled with maximum likelihood bootstrap higher than 70%, parsimony bootstrap proportions higher than 50% and Bayesian posterior probabilities more than 0.95 respectively. Clade names follow Binder et al. (2013).
FIGURE 3. A in Podoscypha yunnanensis sp. nov. (Polyporales, Basidiomycota) evidenced by morphological characters and phylogenetic analyses
FIGURE 3. A basidiomata of Podoscypha yunnanensis (holotype). Scale bars: a–b–2 cm. Photos by: Chang-Lin Zhao
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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International Brain Laboratory public data
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OpenNeuro
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