Subcomponents in humic acid structure contribute to the differential responses of <i>Aspergillus oryzae</i> strains to humic acid
Author:
Affiliation:
1. Department of Biotechnology, Graduate School of Engineering, Osaka University
Publisher
Microbiology Research Foundation
Subject
Applied Microbiology and Biotechnology,Microbiology
Link
https://www.jstage.jst.go.jp/article/jgam/advpub/0/advpub_2023.07.003/_pdf
Reference44 articles.
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2. Arentshorst, M., Falco, M.D., Moisan, M., Reid, I.D., Spaapen, T.O.M., Dam, J.V., Demirci, E., Powlowski, J., Punt, P.J., Tsang, A., Ram, A.F.J. (2021) Identification of a conserved transcriptional activator-repressor module controlling the expression of genes involved in tannic acid degradation and gallic acid utilization in Aspergillus niger. Frontier in Fungal Biology, 2, 681631.
3. Asemoloye, M.D., Tosi, S., Daccò, C., Wang, X., Xu, S., Marchisio, M.A., Gao, W., Jonathan, S.G., Pecoraro, L. (2020) Hydrocarbon degradation and enzyme activities of Aspergillus oryzae and Mucor irregularis isolated from Nigerian crude oil-polluted sites. Microorganisms 8, 1912.
4. Bai, Z., Xiao, K., Chen, L., Zhang, D., Dong, C., Wu, J. (2018) Corrosion inhibition of titanium by Paecilomyces variotii and Aspergillus niger in an aqueous environment. International Journal of Electrochemical Science 13, 2033–2043.
5. Belcarz, A., Ginalska, G., Kornillowicz-Kowalska, T. (2005). Extracellular enzyme activities of Bjerkandera adusta R59 soil strain, capable of daunomycin and humic acids degradation. Applied Microbiology and Biotechnology 68, 686–694.
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