Generation, Transfer, and Loss of Alternative Oxidase Paralogues in the Aspergillaceae Family
Abstract
:1. Introduction
2. Materials and Methods
2.1. Mining of Alternative Oxidase Genes, Intron–Exon Structure Conservation, and Gene Synteny
2.2. Maximum-Likelihood Phylogenetic Analysis
2.3. Confirmation of Expression with Extant RNA Sequence Reads
2.4. Expression Verification of aox Paralogous Genes
2.5. Isolation of Total RNA for cDNA Sequence Analyses
2.6. Polymerase Chain Reaction (PCR) and cDNA Sequence Determination
3. Results and Discussion
3.1. aox Paralogous Genes Have Been Generated Independently at Four Different Occasions in the Aspergillaceae
3.2. Ancient Gene Duplication in an Aspergillaceae Ancestor of Aspergillus and Penicillium
3.3. Lateral Transfer of a Fungal aox Gene between Species of Different Taxonomic Classes
3.4. A Gene Duplication Seemingly Arising from within the Clade of Penicillium aoxA
3.5. Recent Gene Duplication at the Basis of Section Usti (Subgenus Nidulantes)
3.6. Verification of the Expression of Alternative Oxidase Paralogous (aoxB) Genes
3.7. Different Patterns of aoxB Gene Loss in the Aspergillus Genus
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Species | Strain | Relevant Master Accession Numbers | Reference(s) to the Genome Sequences | Source of Live Material | GenBank Accession Numbers [cDNA] * [This Work] |
---|---|---|---|---|---|
Aspergillus terreus | NIH 2624 | AAJN [GenBank] | [25] | CBS *** | [aoxA] OR702883 [aoxB2-1] OR702884 |
Aspergillus oryzae | RIB40 | JZJM [GenBank] | [26] [25] | CBS | [aoxA] OR683635 [aoxB2-1] OR683636 |
Penicillium rubens ** | NRRL 1951 | AM920416–64 [EMBL] JAQKAF [GenBank] | [27] | Antibióticos S.A.(León, Spain) | [aoxA] OR702887 [aoxB2-1] OR702888 |
Aspergillus wentii | DTO 134E9 | LJSE [GenBank] | [28] | CBS | [aoxA] OR702885 [aoxB3] OR702886 |
Aspergillus calidoustus | SF006504 | CDMC [GenBank] | [29] | Hans Knöll Institute (Jena, Germany) | [aoxA] OR714815 [aoxB1] OR631741 [aoxB4] OR631740 |
Aspergillus sydowii | CBS 593.65 | MRCH [GenBank] | [28] | CBS | [aoxA] OR702890 [aoxB2-1] OR702889 [aoxB3] OR702891 |
Trichoderma asperellum | CBS 433.97 | MBGH [GenBank] | [30] | CBS | [aoxA] OR683637 [aoxB2-2] OR683638 |
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Flipphi, M.; Márton, A.; Bíró, V.; Ág, N.; Sándor, E.; Fekete, E.; Karaffa, L. Generation, Transfer, and Loss of Alternative Oxidase Paralogues in the Aspergillaceae Family. J. Fungi 2023, 9, 1195. https://doi.org/10.3390/jof9121195
Flipphi M, Márton A, Bíró V, Ág N, Sándor E, Fekete E, Karaffa L. Generation, Transfer, and Loss of Alternative Oxidase Paralogues in the Aspergillaceae Family. Journal of Fungi. 2023; 9(12):1195. https://doi.org/10.3390/jof9121195
Chicago/Turabian StyleFlipphi, Michel, Alexandra Márton, Vivien Bíró, Norbert Ág, Erzsébet Sándor, Erzsébet Fekete, and Levente Karaffa. 2023. "Generation, Transfer, and Loss of Alternative Oxidase Paralogues in the Aspergillaceae Family" Journal of Fungi 9, no. 12: 1195. https://doi.org/10.3390/jof9121195
APA StyleFlipphi, M., Márton, A., Bíró, V., Ág, N., Sándor, E., Fekete, E., & Karaffa, L. (2023). Generation, Transfer, and Loss of Alternative Oxidase Paralogues in the Aspergillaceae Family. Journal of Fungi, 9(12), 1195. https://doi.org/10.3390/jof9121195