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59 results for “Cladosporium”
Figure 2 from: Iturrieta-González I, García D, Gené J (2021) Novel species of Cladosporium from environmental sources in Spain. MycoKeys 77: 1-25. https://doi.org/10.3897/mycokeys.77.60862
Figure 2 Maximum likelihood (ML) tree obtained from the combined analysis of ITS, tef1 and act sequences of 58 strains from C. herbarum complex. The tree is rooted with Cercospora beticolaCBS 116456. Numbers on the branches represent ML bootstrap support values (MLBS) ≥70%, followed by Maximum Parsimony bootstrap support values (PBS) ≥70% and Bayesian posterior probabilities (PP) ≥ 0.95, lower values are indicate as "-". Bold branches indicate MLBS/PBS/PP of 100/100/1. Names of species newly described are indicated in bold. Branch lengths are proportional to distance. T Ex-type strain. ET ex-epitype strain. NT ex-neotype strain.
Figure 5 from: Iturrieta-González I, García D, Gené J (2021) Novel species of Cladosporium from environmental sources in Spain. MycoKeys 77: 1-25. https://doi.org/10.3897/mycokeys.77.60862
Figure 5 Cladosporium fuscoviride (ex-type FMR 16385) a–c colonies on PDA, OA and SNA after 14 days at 25 °C d–g conidiophores h ramoconidia and conidia. Scale bars: 10 mm (a–c); 10 μm (d–h).
Figure 7 from: Iturrieta-González I, García D, Gené J (2021) Novel species of Cladosporium from environmental sources in Spain. MycoKeys 77: 1-25. https://doi.org/10.3897/mycokeys.77.60862
Figure 7 Cladosporium pseudotenellum (ex-type FMR 16231) a–c colonies on PDA, OA and SNA after 14 days at 25 °C d–e conidiophores f conidia. Scale bars: 10 mm (a–c); 10 μm (d–f).
Figure 4 from: Iturrieta-González I, García D, Gené J (2021) Novel species of Cladosporium from environmental sources in Spain. MycoKeys 77: 1-25. https://doi.org/10.3897/mycokeys.77.60862
Figure 4 Cladosporium coprophilum (ex-type FMR 16164) a–c colonies on PDA, OA and SNA after 14 days at 25 °C d–e conidiophores f conidia. Scale bars: 10 mm (a–c); 10 μm (d–f).
Figure 11. A in Morphological and molecular identification of Cladosporium sphaerospermum isolates collected from tomato plant residues
Figure 11. A phylogenetic tree constructed using the neighbor-joining method depending on the comparison of the obtained nucleotide sequence of C. sphaerospermum isolate 10 as indicated by red dote (●) with those of C. sphaerospermum isolates deposited in NCBI.
Figure 9. A phylogenetic tree shows the genetic relationship between the C. sphaerospermum isolate 9 in Morphological and molecular identification of Cladosporium sphaerospermum isolates collected from tomato plant residues
Figure 9. A phylogenetic tree shows the genetic relationship between the C. sphaerospermum isolate 9 investigated in this study as indicated by red dote (●), and the C. sphaerospermum isolates available in NCBI.
Figure 7 in Morphological and molecular identification of Cladosporium sphaerospermum isolates collected from tomato plant residues
Figure 7. The Neighbor-Joining tree analysis shows the genetic relationship of the C. sphaerospermum isolate 6, investigated in this study, and the other isolates already recorded in NCBI.
Figure 6 in Morphological and molecular identification of Cladosporium sphaerospermum isolates collected from tomato plant residues
Figure 6. Nucleotide sequence alignment of the ITS region of the C. sphaerospermum isolate 6 identified in the current study and the other isolates already recorded in NCBI.
Figure 4 in Morphological and molecular identification of Cladosporium sphaerospermum isolates collected from tomato plant residues
Figure 4. The similarity and difference of nucleotide sequences in the C. sphaerospermum isolate 2, identified in this study, with those C. sphaerospermum isolates previously registered in NCBI. Identical nucleotides are given in dots. Table 2. Similarity rates among the C. sphaerospermum isolates identified in this study.
FIGURE 4 in Cladosporium omanense, a new endophytic species from Zygophyllum coccineum in Oman
FIGURE 4. Colony characters of Cladosporium omanense. a. CYA. b. YES. c. PDA. d. MEA.
Fig. 3. X in Thiocladospolides F-J, antibacterial sulfur containing 12-membered macrolides from the mangrove endophytic fungus Cladosporium oxysporum HDN13-314
Fig. 3. X-ray crystal structure of compound 1.
Fig. 2 in Thiocladospolides F-J, antibacterial sulfur containing 12-membered macrolides from the mangrove endophytic fungus Cladosporium oxysporum HDN13-314
Fig. 2. Key HMBC and COSY correlations of 1–5.
Fig. 4 in Thiocladospolides F-J, antibacterial sulfur containing 12-membered macrolides from the mangrove endophytic fungus Cladosporium oxysporum HDN13-314
Fig. 4. The experimental ECD spectrum of 2/6 and 3/7.
Fig. 5 in Thiocladospolides F-J, antibacterial sulfur containing 12-membered macrolides from the mangrove endophytic fungus Cladosporium oxysporum HDN13-314
Fig. 5. ΔδH values (δR δS, in ppm) for 8b and 8c.
Fig. 1 in Thiocladospolides F-J, antibacterial sulfur containing 12-membered macrolides from the mangrove endophytic fungus Cladosporium oxysporum HDN13-314
Fig. 1. Structures of compounds 1–9.
Phylogenetic relatedness among Cladosporium leaf endophytes predicts their ability to reduce the severity of a poplar leaf rust disease
Open the record for dataset details and reuse information.
Comparative transcriptome analysis between resistant and susceptible tomato lines uncovers the response mechanism of Cf-16-mediated resistance to Cladosporium fulvum
GEO Series GSE133678. Solanum lycopersicum. 24 samples. Type: Expression profiling by high throughput sequencing.
Fungal Planet 2023 June - Cladosporium corticola
<p>Alignment and tree of Cladosporium corticola.</p>
Fig. 6 in Thiocladospolides F-J, antibacterial sulfur containing 12-membered macrolides from the mangrove endophytic fungus Cladosporium oxysporum HDN13-314
Fig. 6. Plausible biosynthetic pathways of 2–9.
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International Brain Laboratory public data
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OpenNeuro
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