Detailed analysis of the D-galactose catabolic pathways in Aspergillus niger reveals complexity at both metabolic and regulatory level

Publication date

2022-04

Authors

Chroumpi, Tania
Martínez-Reyes, Natalia
Kun, Roland S.
Peng, Mao
Lipzen, Anna
Ng, Vivian
Tejomurthula, Sravanthi
Zhang, Yu
Grigoriev, Igor V.
Mäkelä, Miia R.

Editors

Advisors

Supervisors

Document Type

Article
Open Access logo

License

cc_by

Abstract

The current impetus towards a sustainable bio-based economy has accelerated research to better understand the mechanisms through which filamentous fungi convert plant biomass, a valuable feedstock for biotechnological applications. Several transcription factors have been reported to control the polysaccharide degradation and metabolism of the resulting sugars in fungi. However, little is known about their individual contributions, interactions and crosstalk. D-galactose is a hexose sugar present mainly in hemicellulose and pectin in plant biomass. Here, we study D-galactose conversion by Aspergillus niger and describe the involvement of the arabinanolytic and xylanolytic activators AraR and XlnR, in addition to the D-galactose-responsive regulator GalX. Our results deepen the understanding of the complexity of the filamentous fungal regulatory network for plant biomass degradation and sugar catabolism, and facilitate the generation of more efficient plant biomass-degrading strains for biotechnological applications.

Keywords

Aspergillus niger, D-galactose catabolism, Leloir pathway, Oxido-reductive D-galactose catabolic pathway, Pentose Catabolic Pathway (PCP), Transcription factors, Microbiology, Genetics

Citation

Chroumpi, T, Martínez-Reyes, N, Kun, R S, Peng, M, Lipzen, A, Ng, V, Tejomurthula, S, Zhang, Y, Grigoriev, I V, Mäkelä, M R, de Vries, R P & Garrigues, S 2022, 'Detailed analysis of the D-galactose catabolic pathways in Aspergillus niger reveals complexity at both metabolic and regulatory level', Fungal Genetics and Biology, vol. 159, 103670. https://doi.org/10.1016/j.fgb.2022.103670