Nature Communications (Feb 2020)
A comparative genomics study of 23 Aspergillus species from section Flavi
- Inge Kjærbølling,
- Tammi Vesth,
- Jens C. Frisvad,
- Jane L. Nybo,
- Sebastian Theobald,
- Sara Kildgaard,
- Thomas Isbrandt Petersen,
- Alan Kuo,
- Atsushi Sato,
- Ellen K. Lyhne,
- Martin E. Kogle,
- Ad Wiebenga,
- Roland S. Kun,
- Ronnie J. M. Lubbers,
- Miia R. Mäkelä,
- Kerrie Barry,
- Mansi Chovatia,
- Alicia Clum,
- Chris Daum,
- Sajeet Haridas,
- Guifen He,
- Kurt LaButti,
- Anna Lipzen,
- Stephen Mondo,
- Jasmyn Pangilinan,
- Robert Riley,
- Asaf Salamov,
- Blake A. Simmons,
- Jon K. Magnuson,
- Bernard Henrissat,
- Uffe H. Mortensen,
- Thomas O. Larsen,
- Ronald P. de Vries,
- Igor V. Grigoriev,
- Masayuki Machida,
- Scott E. Baker,
- Mikael R. Andersen
Affiliations
- Inge Kjærbølling
- Department of Biotechnology and Bioengineering, Technical University of Denmark
- Tammi Vesth
- Department of Biotechnology and Bioengineering, Technical University of Denmark
- Jens C. Frisvad
- Department of Biotechnology and Bioengineering, Technical University of Denmark
- Jane L. Nybo
- Department of Biotechnology and Bioengineering, Technical University of Denmark
- Sebastian Theobald
- Department of Biotechnology and Bioengineering, Technical University of Denmark
- Sara Kildgaard
- Department of Biotechnology and Bioengineering, Technical University of Denmark
- Thomas Isbrandt Petersen
- Department of Biotechnology and Bioengineering, Technical University of Denmark
- Alan Kuo
- US Department of Energy Joint Genome Institute
- Atsushi Sato
- Kikkoman Corporation
- Ellen K. Lyhne
- Department of Biotechnology and Bioengineering, Technical University of Denmark
- Martin E. Kogle
- Department of Biotechnology and Bioengineering, Technical University of Denmark
- Ad Wiebenga
- Fungal Physiology, Westerdijk Fungal Biodiversity Institute & Fungal Molecular Physiology, Utrecht University
- Roland S. Kun
- Fungal Physiology, Westerdijk Fungal Biodiversity Institute & Fungal Molecular Physiology, Utrecht University
- Ronnie J. M. Lubbers
- Fungal Physiology, Westerdijk Fungal Biodiversity Institute & Fungal Molecular Physiology, Utrecht University
- Miia R. Mäkelä
- Department of Microbiology, Faculty of Agriculture and Forestry, University of Helsinki
- Kerrie Barry
- US Department of Energy Joint Genome Institute
- Mansi Chovatia
- US Department of Energy Joint Genome Institute
- Alicia Clum
- US Department of Energy Joint Genome Institute
- Chris Daum
- US Department of Energy Joint Genome Institute
- Sajeet Haridas
- US Department of Energy Joint Genome Institute
- Guifen He
- US Department of Energy Joint Genome Institute
- Kurt LaButti
- US Department of Energy Joint Genome Institute
- Anna Lipzen
- US Department of Energy Joint Genome Institute
- Stephen Mondo
- US Department of Energy Joint Genome Institute
- Jasmyn Pangilinan
- US Department of Energy Joint Genome Institute
- Robert Riley
- US Department of Energy Joint Genome Institute
- Asaf Salamov
- US Department of Energy Joint Genome Institute
- Blake A. Simmons
- US Department of Energy Joint BioEnergy Institute
- Jon K. Magnuson
- US Department of Energy Joint BioEnergy Institute
- Bernard Henrissat
- Architecture et Fonction des Macromolécules Biologiques, (CNRS UMR 7257, Aix-Marseille University
- Uffe H. Mortensen
- Department of Biotechnology and Bioengineering, Technical University of Denmark
- Thomas O. Larsen
- Department of Biotechnology and Bioengineering, Technical University of Denmark
- Ronald P. de Vries
- Fungal Physiology, Westerdijk Fungal Biodiversity Institute & Fungal Molecular Physiology, Utrecht University
- Igor V. Grigoriev
- US Department of Energy Joint Genome Institute
- Masayuki Machida
- Kanazawa Institute of Technology
- Scott E. Baker
- US Department of Energy Joint BioEnergy Institute
- Mikael R. Andersen
- Department of Biotechnology and Bioengineering, Technical University of Denmark
- DOI
- https://doi.org/10.1038/s41467-019-14051-y
- Journal volume & issue
-
Vol. 11,
no. 1
pp. 1 – 12
Abstract
Aspergillus fungi classified within the section Flavi include harmful and beneficial species. Here, Kjærbølling et al. analyse the genomes of 23 Flavi species, showing high genetic diversity and potential for synthesis of over 13,700 CAZymes and 1600 secondary metabolites.