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Insights into the Underlying Mechanism of Ochratoxin A Production in Aspergillus niger CBS 513.88 Using Different Carbon Sources

Aspergillus niger produces carcinogenic ochratoxin A (OTA), a serious food safety and human health concern. Here, the ability of A. niger CBS 513.88 to produce OTA using different carbon sources was investigated and the underlying regulatory mechanism was elucidated. The results indicated that 6% su...

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Autores principales: Wei, Shan, Hu, Chaojiang, Nie, Ping, Zhai, Huanchen, Zhang, Shuaibing, Li, Na, Lv, Yangyong, Hu, Yuansen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9415321/
https://www.ncbi.nlm.nih.gov/pubmed/36006213
http://dx.doi.org/10.3390/toxins14080551
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author Wei, Shan
Hu, Chaojiang
Nie, Ping
Zhai, Huanchen
Zhang, Shuaibing
Li, Na
Lv, Yangyong
Hu, Yuansen
author_facet Wei, Shan
Hu, Chaojiang
Nie, Ping
Zhai, Huanchen
Zhang, Shuaibing
Li, Na
Lv, Yangyong
Hu, Yuansen
author_sort Wei, Shan
collection PubMed
description Aspergillus niger produces carcinogenic ochratoxin A (OTA), a serious food safety and human health concern. Here, the ability of A. niger CBS 513.88 to produce OTA using different carbon sources was investigated and the underlying regulatory mechanism was elucidated. The results indicated that 6% sucrose, glucose, and arabinose could trigger OTA biosynthesis and that 1586 differentially expressed genes (DEGs) overlapped compared to a non-inducing nutritional source, peptone. The genes that participated in OTA and its precursor phenylalanine biosynthesis, including pks, p450, nrps, hal, and bzip, were up-regulated, while the genes involved in oxidant detoxification, such as cat and pod, were down-regulated. Correspondingly, the activities of catalase and peroxidase were also decreased. Notably, the novel Gal4-like transcription factor An12g00840 (AnGal4), which is vital in regulating OTA biosynthesis, was identified. Deletion of AnGal4 elevated the OTA yields by 47.65%, 54.60%, and 309.23% using sucrose, glucose, and arabinose as carbon sources, respectively. Additionally, deletion of AnGal4 increased the superoxide anion and H(2)O(2) contents, as well as the sensitivity to H(2)O(2), using the three carbon sources. These results suggest that these three carbon sources repressed AnGal4, leading to the up-regulation of the OTA biosynthetic genes and alteration of cellular redox homeostasis, ultimately triggering OTA biosynthesis in A. niger.
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spelling pubmed-94153212022-08-27 Insights into the Underlying Mechanism of Ochratoxin A Production in Aspergillus niger CBS 513.88 Using Different Carbon Sources Wei, Shan Hu, Chaojiang Nie, Ping Zhai, Huanchen Zhang, Shuaibing Li, Na Lv, Yangyong Hu, Yuansen Toxins (Basel) Article Aspergillus niger produces carcinogenic ochratoxin A (OTA), a serious food safety and human health concern. Here, the ability of A. niger CBS 513.88 to produce OTA using different carbon sources was investigated and the underlying regulatory mechanism was elucidated. The results indicated that 6% sucrose, glucose, and arabinose could trigger OTA biosynthesis and that 1586 differentially expressed genes (DEGs) overlapped compared to a non-inducing nutritional source, peptone. The genes that participated in OTA and its precursor phenylalanine biosynthesis, including pks, p450, nrps, hal, and bzip, were up-regulated, while the genes involved in oxidant detoxification, such as cat and pod, were down-regulated. Correspondingly, the activities of catalase and peroxidase were also decreased. Notably, the novel Gal4-like transcription factor An12g00840 (AnGal4), which is vital in regulating OTA biosynthesis, was identified. Deletion of AnGal4 elevated the OTA yields by 47.65%, 54.60%, and 309.23% using sucrose, glucose, and arabinose as carbon sources, respectively. Additionally, deletion of AnGal4 increased the superoxide anion and H(2)O(2) contents, as well as the sensitivity to H(2)O(2), using the three carbon sources. These results suggest that these three carbon sources repressed AnGal4, leading to the up-regulation of the OTA biosynthetic genes and alteration of cellular redox homeostasis, ultimately triggering OTA biosynthesis in A. niger. MDPI 2022-08-12 /pmc/articles/PMC9415321/ /pubmed/36006213 http://dx.doi.org/10.3390/toxins14080551 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wei, Shan
Hu, Chaojiang
Nie, Ping
Zhai, Huanchen
Zhang, Shuaibing
Li, Na
Lv, Yangyong
Hu, Yuansen
Insights into the Underlying Mechanism of Ochratoxin A Production in Aspergillus niger CBS 513.88 Using Different Carbon Sources
title Insights into the Underlying Mechanism of Ochratoxin A Production in Aspergillus niger CBS 513.88 Using Different Carbon Sources
title_full Insights into the Underlying Mechanism of Ochratoxin A Production in Aspergillus niger CBS 513.88 Using Different Carbon Sources
title_fullStr Insights into the Underlying Mechanism of Ochratoxin A Production in Aspergillus niger CBS 513.88 Using Different Carbon Sources
title_full_unstemmed Insights into the Underlying Mechanism of Ochratoxin A Production in Aspergillus niger CBS 513.88 Using Different Carbon Sources
title_short Insights into the Underlying Mechanism of Ochratoxin A Production in Aspergillus niger CBS 513.88 Using Different Carbon Sources
title_sort insights into the underlying mechanism of ochratoxin a production in aspergillus niger cbs 513.88 using different carbon sources
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9415321/
https://www.ncbi.nlm.nih.gov/pubmed/36006213
http://dx.doi.org/10.3390/toxins14080551
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