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116 results for “Ophiocordyceps”
FIGURE 24 in Thitarodes namnai sp. nov. and T. caligophilus sp. nov. (Lepidoptera: Hepialidae), hosts of the economically important entomopathogenic fungus Ophiocordyceps sinensis in Bhutan
FIGURE 24. Thitarodes namnai: underside holotype, showing wing venation, label 10005.
FIGURE 37 in Thitarodes namnai sp. nov. and T. caligophilus sp. nov. (Lepidoptera: Hepialidae), hosts of the economically important entomopathogenic fungus Ophiocordyceps sinensis in Bhutan
FIGURE 37. Light-trapping in the habitat of Thitarodes namnai.
Fungal Planet 2023 December - Ophiocordyceps poecilometigena
<p>Alignment and phylogenetic tree for Ophiocordyceps poecilometigena.</p>
Figure 4 from: Peng X-C, Wen T-C, Wei D-P, Liao Y-H, Wang Y, Zhang X, Wang G-Y, Zhou Y, Tangtrakulwanich K, Liang J-D (2024) Two new species and one new combination of Ophiocordyceps (Hypocreales, Ophiocordycipitaceae) in Guizhou. MycoKeys 102: 245-266. https://doi.org/10.3897/mycokeys.102.113351
Figure 4 Ophiocordyceps musicaudata (HKAS 131911) a redrawn of Liang (2007)b habitat c, d stromata arising from host e fertile parts f, g reverse and front view of culture on PDA h, i perithecia j–l asci m ascus cap n–p ascospores, the arrows in the n, p indicating septate. Scale bars: 2 cm (c, d); 5 mm (e); 1 cm (f, g); 100 µm (h, i); 50 µm (j–l, n–p); 5 um (m).
Figure 3 from: Peng X-C, Wen T-C, Wei D-P, Liao Y-H, Wang Y, Zhang X, Wang G-Y, Zhou Y, Tangtrakulwanich K, Liang J-D (2024) Two new species and one new combination of Ophiocordyceps (Hypocreales, Ophiocordycipitaceae) in Guizhou. MycoKeys 102: 245-266. https://doi.org/10.3897/mycokeys.102.113351
Figure 3 Ophiocordyceps liangii (holotype HKAS 125845) a habitat b, c stromata arising from host d superficial perithecia e host f, g section of perithecia h–k asci h–i immature j, k mature l, m ascus cap n–p ascospores q–s reverse and front view of culture on PDA. Scale bars: 4 cm (b, c), 1 mm (d), 5 mm (e), 100 µm (f, g), 50 µm (h–k), 20 µm (l, m), 30 µm (n–p), 2 cm (q–s).
Figure 2 from: Peng X-C, Wen T-C, Wei D-P, Liao Y-H, Wang Y, Zhang X, Wang G-Y, Zhou Y, Tangtrakulwanich K, Liang J-D (2024) Two new species and one new combination of Ophiocordyceps (Hypocreales, Ophiocordycipitaceae) in Guizhou. MycoKeys 102: 245-266. https://doi.org/10.3897/mycokeys.102.113351
Figure 2 Ophiocordyceps fenggangensis (holotype HKAS 125848) a habitat b host imbedded into the soil with the stroma emerging from the ground c stroma arising from the larva of Lepidopterad host e, f reverse and front view of the culture on PDA g part of fertile head h part of fertile head with sterile tip (arrow indicate) i perithecia j–m asci n ascus cap o part of ascospores p secondary ascospores. Scale bars: 2 cm (c, e, f); 5 mm (d); 1 mm (g, h); 100 µm (i, j); 25 µm (k–m); 10 µm (n); 5 µm (o); 2 µm (p).
Figure 1 from: Peng X-C, Wen T-C, Wei D-P, Liao Y-H, Wang Y, Zhang X, Wang G-Y, Zhou Y, Tangtrakulwanich K, Liang J-D (2024) Two new species and one new combination of Ophiocordyceps (Hypocreales, Ophiocordycipitaceae) in Guizhou. MycoKeys 102: 245-266. https://doi.org/10.3897/mycokeys.102.113351
Figure 1 Phylogram generated from Maximum Likelihood analysis, based on combined LSU, ITS, SSU, tef1-α, rpb1 and rpb2 sequence data. ML bootstrap values equal to or greater than 95% and the PP equal to or greater than 0.90 are given above each node. The newly-generated sequences are indicated in blue. Type strain, type specimens or neotype are denoted in black bold.
Figure 2 from: Fan Q, Yang T, Li H, Wang X-M, Liao H-F, Shen P-H, Yang Z-L, Zeng W-B, Wang Y-B (2024) Molecular phylogeny and morphology reveal two new entomopathogenic species of Ophiocordyceps (Ophiocordycipitaceae, Hypocreales) parasitic on termites from China. MycoKeys 103: 1-24. https://doi.org/10.3897/mycokeys.103.116153
Figure 2 Ophiocordyceps longistipesA, B stromata of fungus arising from termites C fertile part D perithecia E colony on PDA (obverse and reverse) F, G ascospores H, I asci J–L conidiogenous cells and conidia. Scale bars: 1 cm (A, B, E); 2 mm (C); 100 µm (D); 20 µm (F–L).
Figure 1 from: Fan Q, Yang T, Li H, Wang X-M, Liao H-F, Shen P-H, Yang Z-L, Zeng W-B, Wang Y-B (2024) Molecular phylogeny and morphology reveal two new entomopathogenic species of Ophiocordyceps (Ophiocordycipitaceae, Hypocreales) parasitic on termites from China. MycoKeys 103: 1-24. https://doi.org/10.3897/mycokeys.103.116153
Figure 1 Phylogenetic tree based on the combined dataset of nrSSU, nrLSU, tef-1α, rpb1, rpb2, and ITS showing the relationship of two new species on termites from China with other Ophiocordyceps species. Values at the nodes before and after the backslash are BI posterior probabilities (BI-PP greater than 0.60) and ML bootstrap proportions (ML-BP greater than 70%), respectively. New species described in this paper are shown in bold red.
Figure 3 from: Fan Q, Yang T, Li H, Wang X-M, Liao H-F, Shen P-H, Yang Z-L, Zeng W-B, Wang Y-B (2024) Molecular phylogeny and morphology reveal two new entomopathogenic species of Ophiocordyceps (Ophiocordycipitaceae, Hypocreales) parasitic on termites from China. MycoKeys 103: 1-24. https://doi.org/10.3897/mycokeys.103.116153
Figure 3 Ophiocordyceps globiperitheciataA stromata of fungus arising from termites B sterile tip and fertile part C fertile part D perithecia E–G asci H–J ascospores. Scale bars: 1 cm (A); 2 mm (B); 500 µm (C); 50 µm (D); 20 µm (E–J).
Figure 4 from: Ariyawansa HA, Phillips AJL, Chuang W-Y, Tsai I (2018) Tzeananiaceae, a new pleosporalean family associated with Ophiocordyceps macroacicularis fruiting bodies in Taiwan. MycoKeys 37: 1-17. https://doi.org/10.3897/mycokeys.37.27265
Figure 4 Morphology of Ophiocordycepsmacroacicularis (NTUH 17-004) a Close-up of ascomata b Close-up of the peridium c Hyaline, cylindrical, eight-spored ascus d Needle-shaped, multi-septate, hyaline ascospores. Scale bars: 20 μm (b), 50 μm (c–d).
Figure 3 from: Ariyawansa HA, Phillips AJL, Chuang W-Y, Tsai I (2018) Tzeananiaceae, a new pleosporalean family associated with Ophiocordyceps macroacicularis fruiting bodies in Taiwan. MycoKeys 37: 1-17. https://doi.org/10.3897/mycokeys.37.27265
Figure 3 Morphology of Tzeananiataiwanensis (NTUCC 17-005) a Surface and lower view of colonies on PDAb Conidiomata sporulating on PDAc close-up of conidioma d close-up of Conidiomatal wall. e–f Conidiogenous cells g Conidia h Germinating conidia. Scale bars: 50µm (c), 10µm (d), 5µm (e–h).
Figure 2 from: Ariyawansa HA, Phillips AJL, Chuang W-Y, Tsai I (2018) Tzeananiaceae, a new pleosporalean family associated with Ophiocordyceps macroacicularis fruiting bodies in Taiwan. MycoKeys 37: 1-17. https://doi.org/10.3897/mycokeys.37.27265
Figure 2 Phylogenetic tree (RAxML) obtained from the DNA sequence data of two loci (ITS and LSU) of Ophiocordycepsmacroacicularis and allied taxa. The new strain is shown in bold. MP and ML bootstrap values ≥70% and Bayesian posterior probabilities ≥0.95 are presented at the nodes and the scale bar shows the number of estimated mutations per site. The tree was rooted to Ophiocordycepssinensis (EFCC 7287).
Figure 1 from: Ariyawansa HA, Phillips AJL, Chuang W-Y, Tsai I (2018) Tzeananiaceae, a new pleosporalean family associated with Ophiocordyceps macroacicularis fruiting bodies in Taiwan. MycoKeys 37: 1-17. https://doi.org/10.3897/mycokeys.37.27265
Figure 1 Phylogenetic tree (RAxML) obtained from the DNA sequence data of ITS, LSU, rpb2, SSU, tef1 and tub2 sequences of 64 strains showing taxa in suborders Massarineae and Pleosporineae within Pleosporales. The new isolates are shown in bold, red. MP and ML bootstrap values (BS) ≥70% and Bayesian posterior probabilities (PP) ≥0.95 are presented at the nodes. Several branches were shortened to facilitate presentation of the tree and this is indicated by two diagonal lines with the number of times a branch was shortened. The scale bar shows the number of estimated mutations per site. The tree was rooted to Preussiaterricola (DAOM 230091).
Figure 1 from: Xiao Y-P, Hongsanan S , Hyde KD, Brooks S, Xie N, Long F-Y, Wen T-C (2019) Two new entomopathogenic species of Ophiocordyceps in Thailand. MycoKeys 47: 53-74. https://doi.org/10.3897/mycokeys.47.29898
Figure 1 - Phylogram of Ophiocordyceps globiceps and O. sporangifera generated from maximum likelihood (RAxML) analysis of ITS, SSU, LSU, RPB1 and TEF1α sequence data. Tolypocladium inflatum and T. ophioglossoides were used as outgroup taxon. Maximum likelihood bootstrap values greater than 75% and Bayesian posterior probabilities over 0.90 were indicated above the nodes. The new species are indicated in red.
Figure 4 from: Xiao Y-P, Hongsanan S , Hyde KD, Brooks S, Xie N, Long F-Y, Wen T-C (2019) Two new entomopathogenic species of Ophiocordyceps in Thailand. MycoKeys 47: 53-74. https://doi.org/10.3897/mycokeys.47.29898
Figure 4 - Ophiocordyceps sporangifera (culture) MFLUCC 18–0492. a Upper side of the culture b Reverse side of the culture c, d Synnemata growing on PDA medium e, g Synnemata f Mycelium h–j Phialides k Conidia l–n Conidia form mucilaginous spheres. Scale bars: 1 cm (a, b), 5000 µm (c), 1000 µm (d), 500 µm (e), 100 µm (f, g), 50 µm (h–j), 10 µm (k–n).
Figure 3 from: Xiao Y-P, Hongsanan S , Hyde KD, Brooks S, Xie N, Long F-Y, Wen T-C (2019) Two new entomopathogenic species of Ophiocordyceps in Thailand. MycoKeys 47: 53-74. https://doi.org/10.3897/mycokeys.47.29898
Figure 3 - Ophiocordyceps sporangifera (holotype MFLU 18–0658). a Habitat b Synnemata on host surface c Host d, e Synnemata f Fertile head of primary synnema g Sporangium h Secondary synnema i Sporangium j, k, q Part of secondary synnema l Phialides m Conidia bound by deliquescing mucilaginous material n–p Conidia. Scale bars: 1 cm (c, d), 1000 µm (e), 200 µm (f, h, q), 100 µm (g, i), 50 µm (j), 20 µm (k, l), 10 µm (m–p).
Figure 2 from: Xiao Y-P, Hongsanan S , Hyde KD, Brooks S, Xie N, Long F-Y, Wen T-C (2019) Two new entomopathogenic species of Ophiocordyceps in Thailand. MycoKeys 47: 53-74. https://doi.org/10.3897/mycokeys.47.29898
Figure 2 - Ophiocordyceps globiceps (holotype MFLU 18–0661). a Habitat b Ascostroma emerging from infected fly c Host d Fertile head of ascostroma e Vertical section of the stroma f Section of ascomata g Peridium h, i Asci k Apical cap of asci l, q Part of ascospore m, n Secondary ascospores o Upper side of the culture p Reverse side of the culture. Scale bars: 1000 µm (b–d), 500 µm (e, f), 100 µm (h, i), 20 µm (g), 10 µm (k, l), 5 µm (m, n, q), 5 cm (o, p).
Figure 8 from: Tasanathai K, Noisripoom W, Chaitika T, Khonsanit A, Hasin S, Luangsa-ard J (2019) Phylogenetic and morphological classification of Ophiocordyceps species on termites from Thailand. MycoKeys 56: 101-129. https://doi.org/10.3897/mycokeys.56.37636
Figure 8 - Ophiocordyceps termiticola (BBH5634, BCC 1920) A stroma of fungus emerging from termite B part of stroma showing perithecia C perithecia D ascus E ascospore F phialides with conidia on synnema G conidium H colony on PDA at 20 d obverse and reverse I phialides with conidia on PDA J conidium K–O scanning electron micrographs of phialides with conidia on PDA P colony on PSA at 20 d obverse and reverse Q phialides with conidia on PSA R colony on SDYA/4 at 20 d obverse and reverse S phialides with conidia. Scale bars: 2 cm (A); 1 μm (B, K, O); 100 μm (C); 15 μm (D); 8 μm (E); 5 μm (F, G); 7 mm (H, P, R); 3 μm (I, J, L, M, N, Q, S).
Figure 6 from: Tasanathai K, Noisripoom W, Chaitika T, Khonsanit A, Hasin S, Luangsa-ard J (2019) Phylogenetic and morphological classification of Ophiocordyceps species on termites from Thailand. MycoKeys 56: 101-129. https://doi.org/10.3897/mycokeys.56.37636
Figure 6 - Ophiocordyceps pseudocommunis (BBH10001, BCC16757) A stroma of fungus emerging from termite B part of stroma showing superficial perithecia C perithecium D ascospore E phialides with conidia from synnema F conidia from synnema G, L, M, N, O, P scanning electron micrographs of phialides with conidia on PDA H colony on PDA at 20 d obverse and reverse I, J phialides with conidia on PDA K conidium Q colony on PDA at 20 d obverse and reverse R phialides with conidia on PSA S conidium T colony on SDYA/4 at 20 d obverse and reverse U phialides with conidia V conidium. Scale bars: 10 mm (A); 0.5 mm (B); 150 µm(C); 6 µm (D); 7 µm (E); 2 µm (F); 4 µm (G); 8 mm (H, Q, T); 8 µm (I); 5 µm (J, K, U, V); 3 µm (R, S).
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