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14 results for “Absidia”

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zenodo40/100

APPENDIX 3. — Maximum likelihood phylogram inferred from 47 taxa and 3314 in Mucoralean fungi in Thailand: novel species of Absidia from tropical forest soil

APPENDIX 3. — Maximum likelihood phylogram inferred from 47 taxa and 3314 characters based on LSU, SSU and ACT-1 matrix using GTR+G model. ML bootstrap support (≥ 70%) are indicated above the branches or near the nodes. Tree is artificially rooted using Cunninghamella homothallica (CBS 168.53), C. phaeospora (CBS 692.68), and C. bainieri (FSU319). The new species are in black bold and the type species in the dataset are indicated using T. (-) represent bootstrap support lower than 70%. (*) indicates unrecovered branching.

opencc-zeroApr 2021View details →
zenodo40/100

FIG. 7 in Mucoralean fungi in Thailand: novel species of Absidia from tropical forest soil

FIG. 7. — Mycelial growth of A. edaphica V.GHurdeal., E.Gentekaki., H.B.Lee & K.D.Hyde, sp. nov.(MFLUCC 20-0088, ex-type) and A. soli V.GHurdeal., E.Gentekaki., H.B.Lee & K.D.Hyde, sp. nov. (MFLUCC 20-0086, ex-type) in various media at room temperature (around 26°C to 27°C) after two days: A-D, colonies on MEA; E-H, colonies on PDA; I-L, colonies on CMA; M-P, colonies on YMA. The first two rows represent colonies of of A. edaphica sp. nov. and the bottom two rows A. soli sp. nov (obverse (first and third rows) and reverse (second and fourth rows).

opencc-zeroApr 2021View details →
zenodo40/100

FIG. 6 in Mucoralean fungi in Thailand: novel species of Absidia from tropical forest soil

FIG. 6. — Mycelial growth of Absidia edaphica V.GHurdeal., E.Gentekaki., H.B.Lee & K.D.Hyde, sp. nov. and Absidia soli V.GHurdeal., E.Gentekaki., H.B.Lee & K.D.Hyde, sp. nov. in different media at 25°C.

opencc-zeroApr 2021View details →
zenodo32/100

FIGURE 1 in Absidia aguabelensis sp. nov.: A new mucoralean fungi isolated from a semiarid region in Brazil

FIGURE 1. Phylogenetic tree of Absidia aguabelensis URM 8213 and related species based on maximum likelihood (ML) analysis of combined internal transcriber spacer and large subunit of ribosomal DNA. Bootstrap values for Bayesian posterior probabilities over 0.9 and ML greater than or equal to 70% are placed above the branches. Bootstrap values lower than 0.9 and ML less than 70% are marked with "*". The bar indicates the number of substitutions per position. The strain proposed in the current study is shown in bold blue. Cunninghamella phaeospora CBS 692.68 and Cunninghamella vesiculosa CBS 989.96 were used as outgroups.

opennotspecifiedAug 2021View details →
zenodo32/100

FIGURE 2 in Absidia aguabelensis sp. nov.: A new mucoralean fungi isolated from a semiarid region in Brazil

FIGURE 2. Absidia aguabelensis sp. nov. (URM 8213). A. Surface of colony on malt extract agar at 25°C. B. Young sporangiophore with sporangium. C. Mature sporangiophores with sporangium, columella, and a bell-shaped apophysis. D, E. Branched sporangiophore; F, G, H, I. Sporangiophore with columella; J. Sporangiospores. Bars: B, C, J = 25 μm; D, E = 50 μm; F, G, H, I = 12.5 μm.

opennotspecifiedAug 2021View details →
zenodo32/100

FIGURE 2 in Absidia thailandica sp. nov., an addition to the diversity of soil fungi from Thailand

FIGURE 2. Morphology of Absidia thailandica sp. nov. MFLUCC 23-0073 (a,b) Colony on PDA at 28 °C after 4 days, (a) obverse, (b) reverse, (c) rhizoids, (d) columella with apical projections, (e) branched sporangiophore, (f) young sporangium, (g) mature sporangium, (h) unbranched sporangiophore with a terminal sporangium, (i,j) sporangiospores. Scale bars: c,f,g,h = 30 μm; d,e,i,j = 10 μm.

opennotspecifiedMay 2024View details →
zenodo32/100

FIGURE 1 in Absidia thailandica sp. nov., an addition to the diversity of soil fungi from Thailand

FIGURE 1. Maximum likelihood (ML) phylogenetic tree of Absidia based on ITS and LSU rDNA sequences, with Cunninghamella blakesleeana and C. elegans as outgroups. The new species is in bold. Maximum likelihood (ML) bootstrap values (≥70%) / Bayesian inference (BI) posterior probabilities (≥0.95) of each clade are indicated along branches. "T" after the strain number indicates the type. The scale bar indicates the estimated number of substitutions per site.

opennotspecifiedMay 2024View details →
zenodo32/100

FIGURE 4 in Morphological and molecular evidence for two new species of Absidia from Neotropic soil

FIGURE 4. Absidia pernambucoensis (holotype URM 93638). a. Branched sporangiophore. b-c. Unbranched sporangiophore with a columella and a single projection. d. Unbranched sporangiophore with a columella and double projection. e. Unbranched sporangiophore with a columella without projection. f. Unbranched sporangiophores on a stolon. g. Cylindrical and cuneiform sporangiospores.

opennotspecifiedMay 2020View details →
zenodo32/100

FIGURE 3 in Morphological and molecular evidence for two new species of Absidia from Neotropic soil

FIGURE 3. Absidia cornuta (holotype URM 93639). a. Unbranched sporangiophore with a columella and double projection. b. Unbranched sporangiophore with a columella with three projections. c. Branched sporangiophore. d. Unbranched sporangiophore with a columella and single projection. e. Sporangiophore with single branch. f. Rhizoid. g. Cylindrical sporangiospores.

opennotspecifiedMay 2020View details →
zenodo32/100

FIGURE 1 in Morphological and molecular evidence for two new species of Absidia from Neotropic soil

FIGURE 1. Phylogenetic tree of Absidia and related species constructed using the ITS rDNA sequences. Actinomucor elegans, Circinella minor and Absidia idahoensis were used as an outgroup. Sequences are labeled with their database accession numbers. Support values are from maximum likelihood analyses and Bayesian inference. The sequences obtained in this study are annotated in boldface.

opennotspecifiedMay 2020View details →
zenodo32/100

FIGURE 2 in Morphological and molecular evidence for two new species of Absidia from Neotropic soil

FIGURE 2. Phylogenetic tree of Cunninghamellaceae constructed using D1–D2 domains of nuc 28S rDNA sequences. Mortierella parvispora was used as an outgroup. Sequences are labeled with their database accession numbers. Support values are from maximum likelihood analyses and Bayesian inference. The sequences obtained in this study are annotated in boldface.

opennotspecifiedMay 2020View details →
zenodo28/100

FIG. 5. — Absidia soli V.GHurdeal., E.Gentekaki., H.B.Lee & K.D in Mucoralean fungi in Thailand: novel species of Absidia from tropical forest soil

FIG. 5. — Absidia soli V.GHurdeal., E.Gentekaki., H.B.Lee & K.D.Hyde, sp. nov. (MFLU 20-0414, holotype) (Cultures grown at room temperature for 3-5 days): A-F, different stages in development of sporangium; D, sporangium mounted with 5% potassium hydroxide; F, mature sporangium; G, branching of sporangiophores from a single point of the stolon (whorls); H, sporangiospores produced when cultured in PDA; I, rhizoids; J, sporangiospores from culture grown in MEA; K, columella with apical projection, collarette and septum below the apophysis. Scale bars: A-D, I, 20 μm; E-F, K, 10 μm; H, J, 5 μm; K, 60 μm.

opencc-zeroApr 2021View details →
zenodo28/100

FIG. 4. — Absidia edaphica V.GHurdeal., E.Gentekaki., H.B.Lee & K.D in Mucoralean fungi in Thailand: novel species of Absidia from tropical forest soil

FIG. 4. — Absidia edaphica V.GHurdeal., E.Gentekaki., H.B.Lee & K.D.Hyde, sp. nov. (MFLU 20-0416, holotype) (Cultures grown at room temperature for 3-5 days): A-E, different stages of sporangia development (C-E, sporangium stained with Lacto-phenol cotton blue reagent); F, rhizoids; G, columella with collarette, apical projection and septum below the apophysis; H, single sporangiophore originating from the stolon; I, sporangiospores in CMA; J, sporangiospores produced in MEA. Scale bars: A-F, H, 20 μm; G, 10 μm; I-J, 5 μm.

opencc-zeroApr 2021View details →
geo24/100

Identification of Absidia orchidis steroid 11β-hydroxylation system and its application in engineering Saccharomyces cerevisiae for one-step biotransformation to produce hydrocortisone

GEO Series GSE122890. Absidia caerulea. 2 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenNov 2019View details →

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