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Role of IscA1 in Low-Frequency Magnetic Field-Associated Changes in Monascus Pigments and Citrinin Levels in Monascus purpureus
 
 
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Editorial

Monascus spp. and Their Relative Products

1
College of Food Science and Technology, Huazhong Agricultural University, Wuhan 430070, China
2
Hubei International Scientific and Technological Cooperation Base of Traditional Fermented Foods, Huazhong Agricultural University, Wuhan 430070, China
*
Author to whom correspondence should be addressed.
J. Fungi 2026, 12(9), 672; https://doi.org/10.3390/jof12090672
Submission received: 25 August 2026 / Accepted: 3 September 2026 / Published: 7 September 2026
(This article belongs to the Special Issue Monascus spp. and Their Relative Products)
Monascus spp. are a group of filamentous fungi with nearly 2000 years of application history in Asia, particularly in China, for producing herbal and edible products. These fungi can produce a rich array of beneficial secondary metabolites, such as natural edible Monascus pigments (MPs) and the lipid-lowering component monacolin K (MK). However, some Monascus strains may also produce the mycotoxin citrinin (CIT), which poses potential food safety risks. It is important to note that not all Monascus strains can produce citrinin, as some Monascus genomes lack the gene cluster responsible for CIT biosynthesis.
This Special Issue contains 13 review and research articles concerning Monascus fungi and their related products. The review article titled “From Random Perturbation to Precise Targeting: A Comprehensive Review of Methods for Studying Gene Function in Monascus Species” [Contribution 1] systematically examines the roles of various genetic manipulation techniques in advancing the molecular biology of Monascus fungi and offers an outlook on the application of artificial intelligence (AI) technologies in analyzing and predicting Monascus metabolites and metabolic pathways, as well as in the development of new Monascus-related products.
This Special Issue contains six research papers focusing on improving the yield of MPs—a group of representative secondary metabolites produced by Monascus fungi—as well as controlling citrinin production. The paper titled “Mutation Breeding of Monascus to Produce a High Yield of Orange Pigment and Low Citrinin Content Using the ARTP Method” [Contribution 2] describes a mutation breeding approach employing the ARTP method to enhance the high-yield production of Monascus yellow pigment while simultaneously reducing citrinin content. In the study “Transcriptome Analysis Revealed the Molecular Mechanism of Acetic Acid Increasing Monascus Pigment Production in Monascus ruber CICC41233” [Contribution 3], the molecular mechanisms by which acetic acid enhances MPs production in Monascus ruber CICC41233 are explored based on transcriptome analysis results. In the study “Co-Culture of Monascus purpureus and Aspergillus niger Isolated from Wuyi Hongqu to Enhance Monascus Pigment Production While Inhibiting Citrinin Production” [Contribution 4], the mechanism by which the co-culture of M. purpureus and A. niger isolated from Wuyi Hongqu enhances MPs production while inhibiting CIT production is investigated. In the study titled “Mechanistic Insights from Transcriptomics: How the Glucose Transporter gltp1 Gene Knockout Enhances Monascus Pigment Biosynthesis in M. ruber CICC41233” [Contribution 5], the authors utilize transcriptomic analysis results to elucidate the mechanism by which knockout of the glucose transporter gltp1 gene enhances MPs synthesis. In the study “Enhancement of Monascus Azaphilone Pigments Production Without Citrinin Contamination by Targeting Overexpression of Histone Acetyltransferase MrEsa1 and Deletion of Polyketide Synthase PksCT” [Contribution 6], a strain capable of producing no CIT is obtained by simultaneously knocking out the CIT polyketide synthase gene pksCT and overexpressing the histone acetyltransferase gene MrEsa1. The study titled “Role of IscA1 in Low-Frequency Magnetic Field-Associated Changes in Monascus Pigments and Citrinin Levels in Monascus purpureus” [Contribution 7] investigated the role of the IscA1 gene in the production of MPs and CIT by M. purpureus under low-frequency magnetic field conditions.
Three research papers are published in this Issue addressing the improvement in the yield of MK, another representative secondary metabolite produced by Monascus species. In the paper titled “Improvement of Monacolin K and Pigment Production in Monascus by 5-Azacytidine” [Contribution 8], it is found that the addition of 5-azacytidine to the culture medium can enhance the yields of both MK and MPs. In the study “Optimization of Co-Culture Between Monascus purpureus and Saccharomyces cerevisiae on Selenium-Enriched Lentinus edodes for Increased Monacolin K Production” [Contribution 9], by optimizing the co-culture conditions for M. purpureus and S. cerevisiae in the culture medium of selenium-enriched Lentinus edodes fruiting bodies, a fermentation product with high MK yield and elevated selenium content was obtained. In the study “Molecular Mechanism of Mok I Gene Overexpression in Enhancing Monacolin K Production in Monascus pilosus” [Contribution 10], the molecular mechanisms underlying the enhancement of MK production by M. pilosus through Mok I gene overexpression are investigated.
In addition, in this Issue, the study titled “Comparative Effects of Monascin and Monascinol Produced by Monascus pilosus SWM-008 on Pro-Inflammatory Factors and Histopathological Alterations in Liver and Kidney Tissues in a Streptozotocin–Nicotinamide-Induced Rat Model” [Contribution 11] compares the effects of monascin and monascinol—produced by M. pilosus SWM-008—on pro-inflammatory factors and histopathological alterations in the liver and kidney tissues of a streptozotocin–nicotinamide-induced rat model. The paper “Hydroxyl Radical Formation: A Key Mechanism and Regulatory Target in Monascin Photo-Degradation” [Contribution 12] analyzes the formation and regulatory mechanisms of the hydroxyl radical, a key factor driving the photo-degradation of monascin. The paper “Characterization of Key Metabolic Markers in Hongqujiu Across Different Aging Years Using Metabolomics” [Contribution 13] employs metabolomics techniques to analyze and compare key marker compounds in Hongqujiu wines aged for different periods of time.
A total of 13 papers are collected in this Isse on Monascus spp. and their products, all authored by scholars from the Mainland and Taiwan of China. This reflects that Chinese researchers are significantly ahead of their international counterparts in the study of Monascus and their metabolites, as well as in the development of related products. This is due to the fact that currently only China and other Asian countries such as Japan produce and consume products derived from Monascus spp., resulting in limited research on Monascus spp. and related products being conducted by scholars from other countries. Nevertheless, some international scholars are also engaged in research related to Monascus spp. Among them, the research group led by Professor Petra Patakova from the Czech Republic has conducted systematic studies on Monascus spp. Additionally, Brazilian scholars have also contributed to the classification of Monascus spp.
In conclusion, Chinese scholars have conducted systematic research on the molecular biology of Monascus spp. and their product development, obtaining many encouraging results. Monascus spp. may be one of the edible filamentous fungi that Chinese researchers have studied most comprehensively and systematically to date. Although some Chinese scholars have undertaken considerable work on the taxonomy of Monascus spp., for various reasons, the relevant research findings have not yet been published in internationally recognized academic journals.

Funding

This research was funded by The Hubei Provincial Technical Innovation Plan Project [2024BCB024] and The Fundamental Research Funds for the Central Universities [2662025SPPY006].

Data Availability Statement

No new data were created or analyzed in this study. Data sharing is not applicable to this article.

Conflicts of Interest

The authors declare no conflicts of interest.

List of Contributions

1
Gong, Y.; Li, S.; Zhao, D.; Yuan, X.; Zhou, Y.; Chen, F.; Shao, Y. From Random Perturbation to Precise Targeting: A Comprehensive Review of Methods for Studying Gene Function in Monascus Species. J. Fungi 2024, 10, 892. https://doi.org/10.3390/jof10120892.
2
Zhang, C.; Sun, Q.; Yang, L.; Ablimit, A.; Dong, H.; Wang, H.; Wang, C.; Wang, C. Mutation Breeding of Monascus to Produce a High Yield of Orange Pigment and Low Citrinin Content Using the ARTP Method. J. Fungi 2024, 10, 553. https://doi.org/10.3390/jof10080553.
3
Wang, Y.; Wu, W.; Wu, X.; Li, W.; Cui, J.; Long, C. Transcriptome Analysis Revealed the Molecular Mechanism of Acetic Acid Increasing Monascus Pigment Production in Monascus ruber CICC41233. J. Fungi 2025, 11, 49. https://doi.org/10.3390/jof11010049.
4
Yu, Q.; Yuan, X.; Chen, F. Co-Culture of Monascus purpureus and Aspergillus niger Isolated from Wuyi Hongqu to Enhance Monascus Pigments Production While Inhibiting Citrinin Production. J. Fungi 2025, 11, 829. https://doi.org/10.3390/jof11120829.
5
Long, C.; Tao, Q.; Liu, X.; Cui, J. Mechanistic Insights from Transcriptomics: How the Glucose Transporter gltp1 Gene Knockout Enhances Monascus Pigment Biosynthesis in M. ruber CICC41233. J. Fungi 2025, 11, 867. https://doi.org/10.3390/jof11120867.
6
Zhang, J.; Yang, S.; Wang, Q.; Liu, Q.; Chen, J.; Gong, Y.; Xu, R.; Shao, Y. Enhancement of Monascus Azaphilone Pigments Production Without Citrinin Contamination by Targeting Overexpression of Histone Acetyltransferase MrEsa1 and Deletion of Polyketide Synthase PksCT. J. Fungi 2026, 12, 126. https://doi.org/10.3390/jof12020126.
7
Li, D.; Yang, Y.; Zhang, J.; Li, L.; Liu, Y.; Chen, S.; Gao, M. Role of IscA1 in Low-Frequency Magnetic Field-Associated Changes in Monascus Pigments and Citrinin Levels in Monascus purpureus. J. Fungi 2026, 12, 585. https://doi.org/10.3390/jof12080585.
8
Zhang, C.; Wang, H.; Sun, Q.; Ablimit, A.; Dong, H.; Wang, C.; Zhai, D.; Zhang, B.; Hu, W.; Liu, C.; et al. Improvement of Monacolin K and Pigment Production in Monascus by 5-Azacytidine. J. Fungi 2024, 10, 819. https://doi.org/10.3390/jof10120819.
9
He, Y.; Lai, H.; Liang, J.; Cheng, L.; He, L.; Wang, H.; Teng, Q.; Cai, W.; Wang, R.; Zhu, L.; et al. Optimization Co-Culture of Monascus purpureus and Saccharomyces cerevisiae on Selenium-Enriched Lentinus edodes for Increased Monacolin K Production. J. Fungi 2024, 10, 503. https://doi.org/10.3390/jof10070503.
10
Huang, Z.; Xiao, L.; Mo, W.; Zhang, Y.; Cai, Y.; Huang, S.; Chen, Z.; Long, C. Molecular Mechanism of Mok I Gene Overexpression in Enhancing Monacolin K Production in Monascus pilosus. J. Fungi 2024, 10, 721. https://doi.org/10.3390/jof10100721.
11
Yang, P.-X.; Hsu, Y.-W.; Pan, T.-M.; Lee, C.-L. Comparative Effects of Monascin and Monascinol Produced by Monascus pilosus SWM-008 on Pro-Inflammatory Factors and Histopathological Alterations in Liver and Kidney Tissues in a Streptozotocin–Nicotinamide-Induced Rat Model. J. Fungi 2024, 10, 815. https://doi.org/10.3390/jof10120815.
12
Shang, Z.; Zhang, X.; Li, M.; Lu, Q.; Wang, F.; Chen, T.; Li, Y.; Liu, Y. Hydroxyl Radical Formation: A Key Mechanism and Regulatory Target in Monascin Photo-Degradation. J. Fungi 2026, 12, 561. https://doi.org/10.3390/jof12080561.
13
Cai, Y.; Yan, S.; Huang, S.; Yang, B.; Mo, W.; Xiao, L.; Li, X.; Huang, Z. Characterization of Key Metabolic Markers in Hongqujiu Across Different Aging Years Using Metabolomics. J. Fungi 2025, 11, 353. https://doi.org/10.3390/jof11050353.
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Chen, F.; Shao, Y. Monascus spp. and Their Relative Products. J. Fungi 2026, 12, 672. https://doi.org/10.3390/jof12090672

AMA Style

Chen F, Shao Y. Monascus spp. and Their Relative Products. Journal of Fungi. 2026; 12(9):672. https://doi.org/10.3390/jof12090672

Chicago/Turabian Style

Chen, Fusheng, and Yanchun Shao. 2026. "Monascus spp. and Their Relative Products" Journal of Fungi 12, no. 9: 672. https://doi.org/10.3390/jof12090672

APA Style

Chen, F., & Shao, Y. (2026). Monascus spp. and Their Relative Products. Journal of Fungi, 12(9), 672. https://doi.org/10.3390/jof12090672

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