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15 results for “Amauroderma”
FIGURE 7 in Delimitation of taxa in Amauroderma (Ganodermataceae, Polyporales) based in morphology and molecular phylogeny of Brazilian specimens
FIGURE 7. Amauroderma laccatostipitatum (URM 83238). A. Basidioma. B. Hymenial surface. C. Basidiospores in KOH. D. Basidiospores in SEM. Scale: A–B = 1 cm; C = 10 μm; D = 2 μm. Photos: A.C. Gomes-Silva.
FIGURE 4. Amauroderma brasiliense. A in Delimitation of taxa in Amauroderma (Ganodermataceae, Polyporales) based in morphology and molecular phylogeny of Brazilian specimens
FIGURE 4. Amauroderma brasiliense. A. Basidiomata (INPA 101986). B. Fresh basidioma (URM 83578). C. Dried basidioma (URM 83578). D. Context and tubes (URM 83578). E. Pores (URM 83578). F. Basidiospores in Melzer's reagent (INPA 101986). G. Basidiospores in SEM (INPA 101986). Scale: A–C = 1 cm; D = 2 mm; E, G = 2.5 μm; F = 5 μm. Photos: A.C. Gomes-Silva.
FIGURE 1 in Delimitation of taxa in Amauroderma (Ganodermataceae, Polyporales) based in morphology and molecular phylogeny of Brazilian specimens
FIGURE 1. Phylogenetic reconstruction of the Amauroderma based on alignment of 567 nucleotides of the ITS regions. Bootstrap values (%) were generated from maximum parsimony (MP) and maximum likelihood (ML) analysis and posterior probabilities (PP) from Bayesian algorithm (BA), respectively. Clade stabilities were calculated from MP (≥50 %), ML (≥50 %) and BA (≥0.70). For maximum parsimony: Consistency Index (CI) = 0.4355 and Retention Index (RI) = 0.7658. Species in bold type were sequenced in this study. Figure: N.C. de Lima-Júnior.
FIGURE 3 in Delimitation of taxa in Amauroderma (Ganodermataceae, Polyporales) based in morphology and molecular phylogeny of Brazilian specimens
FIGURE 3. Amauroderma albostipitatum (URM 83242). A. Abhymenial surface. B. Hymenial surface. C. Basidiospores in KOH. D. Basidiospores in Melzer's reagent. Scale: A–B = 1 cm; C, D = 10 μm. Photos: A.C. Gomes-Silva.
FIGURE 6 in Delimitation of taxa in Amauroderma (Ganodermataceae, Polyporales) based in morphology and molecular phylogeny of Brazilian specimens
FIGURE 6. Amauroderma floriformum (URM 83250) A. Basidioma. B. Basidiospores in Melzer's reagent. C, D. Basidiospores in KOH. Scale: A = 1 cm; B–D = 10 μm. Photos: T.B. Gibertoni.
FIGURE 10. Amauroderma schomburgkii. A in Delimitation of taxa in Amauroderma (Ganodermataceae, Polyporales) based in morphology and molecular phylogeny of Brazilian specimens
FIGURE 10. Amauroderma schomburgkii. A (URM 83228), D (URM 84228). Basidiomata. B (URM 83228), C (URM 83228), E (URM 84228). Hymenial surface. Scale: A = 0.5 cm; B = 1 mm; C, E = 0.1 mm; D = 1 cm. Photos: R.F.R. Melo.
FIGURE 5. Amauroderma corneri. A in Delimitation of taxa in Amauroderma (Ganodermataceae, Polyporales) based in morphology and molecular phylogeny of Brazilian specimens
FIGURE 5. Amauroderma corneri. A. Abhymenial surface (SP 212007). B. Hymenial surface (SP 212007). C. Context and tubes (SP 212007). D. Pores (SP 212007). E. Basidiospores in SEM (SP 213543). Scale: A, B = 2.5 cm; C = 3 mm; D = 2.5 μm; E = 7.5 μm. Photos: A.C. Gomes-Silva.
FIGURE 9. Amauroderma partitum. A in Delimitation of taxa in Amauroderma (Ganodermataceae, Polyporales) based in morphology and molecular phylogeny of Brazilian specimens
FIGURE 9. Amauroderma partitum. A (URM 83233), C (URM 82882), D (URM 82884). Basidiomata. B (URM 83233), E (URM 82882). Hymenial surface. F. Pores with hyphal pegs (URM 82884). Scale: A = 1 cm; B, E, F = 1 mm; C = 0.5 cm; D = 0.25 cm. Photos: R.F.R. Melo.
FIGURE 2 in Delimitation of taxa in Amauroderma (Ganodermataceae, Polyporales) based in morphology and molecular phylogeny of Brazilian specimens
FIGURE 2. Phylogenetic reconstruction of the Amauroderma based on alignment of 819 nucleotides of the LSU region. Bootstrap values (%) were generated from maximum parsimony (MP) and maximum likelihood (ML) analysis and posterior probabilities (PP) from Bayesian algorithm (BA), respectively. Clade stabilities were calculated from MP (≥50 %), ML (≥50 %) and BA (≥0.70). For maximum parsimony: Consistency Index (CI) = 0.7561 and Retention Index (RI) = 0.8601. Species in bold type were sequenced in this study. Figure: N.C. de Lima-Júnior.
FIGURE 12 in Delimitation of taxa in Amauroderma (Ganodermataceae, Polyporales) based in morphology and molecular phylogeny of Brazilian specimens
FIGURE 12. Amauroderma subsessile (URM 83239). A. Abhymenial surface. B. Hymenial surface. C. Basidiospores in Melzer's reagent. D. Basidiospores in SEM. Scale: A–B = 1 cm; C–E = 10 μm. Photos: A.C. Gomes-Silva.
FIGURE 8 in Delimitation of taxa in Amauroderma (Ganodermataceae, Polyporales) based in morphology and molecular phylogeny of Brazilian specimens
FIGURE 8. Amauroderma ovisporum (URM 83240). A. Basidioma. B. Hymenial surface. C. Basidiospores in KOH. D. Basidiospores in SEM. Scale: A, B = 1 cm; C = 5 μm; D = 2 μm. Photos: A.C. Gomes-Silva.
FIGURE 11 in Delimitation of taxa in Amauroderma (Ganodermataceae, Polyporales) based in morphology and molecular phylogeny of Brazilian specimens
FIGURE 11. Amauroderma sessile (INPA 103576). A. Basidioma. B. Hymenial surface. C. Basidiospores in KOH. Scale: A, C = 1 cm; B = 10 μm. Photos: A.C. Gomes-Silva.
Molecular analysis of Ganoderma and Amauroderma species in the tropical rainforest of Sarawak, Borneo
<p>This study aimed to record the genetic types of both <em>Ganoderma</em> <em>australe</em> sensu lato and <em>Amauroderma</em> <em>subrugosum</em> sensu lato with their morphological and ecological traits. <em>Ganoderma</em> <em>australe</em> sensu lato and <em>Amauroderma</em> <em>subrugosum</em> sensu lato were studied in three national parks in Sarawak: Santubong, Kubah (western area) and Lambir Hill (northeastern area). The decay stage and diameter of fallen logs from which fungal fruiting bodies appeared were recorded. The size of the pores and length of the tube of fruiting bodies were measured and recorded in the laboratory. Molecular phylogenetic trees were inferred from nucleotide sequence of the internal transcribed spacer (ITS) region of ribosomal RNA. In the phylogenetic tree analysis, <em>Amauroderma</em> <em>subrugosum</em> was grouped into a single genetic type while Ganoderma australe has been divided and classified into four genetic types: type 1, type 2, type 3, and type 5. All genetic types of <em>Ganoderma</em> <em>australe</em> fruiting bodies frequently appear in the intermediate stages of decayed wood (stage 3) from small and medium-sized (diameter) fallen trees or logs. In this study, no novel genetic types of <em>Ganoderma</em> <em>australe</em> were observed, and several genetic types were not observed in <em>Amauroderma</em> <em>subrugosum</em>. All genetic types of <em>Ganoderma</em> <em>australe</em> were found in the northeast (Lambir Hills) and west (Kubah, Santubong) areas of Sarawak. This suggests that these genetic types are widely distributed across Sarawak. Further study is needed to reveal the mechanisms that drive speciation and maintain genetic diversity in <em>Ganoderma</em> <em>australe</em> and the mechanisms that prevent speciation in <em>Amauroderma</em> <em>subrugosum</em>.</p>
Molecular analysis of Ganoderma and Amauroderma species in the tropical rainforest of Sarawak, Borneo
Open the record for dataset details and reuse information.
Modulation of LPS-stimulated BV2 microglial cells by Amauroderma rugosum hexane fraction (HF)
GEO Series GSE81435. Mus musculus. 8 samples. Type: Expression profiling by array.
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