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Home NEWS Science News Agriculture

Iron-Sensing Protein Revealed as Master Switch for Aflatoxin Production in Crop Fungus

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October 5, 2026
in Agriculture
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Iron-Sensing Protein Revealed as Master Switch for Aflatoxin Production in Crop Fungus

Iron-Sensing Protein Revealed as Master Switch for Aflatoxin Production in Crop Fungus

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A single transcription factor in the notorious crop-contaminating fungus Aspergillus flavus has been shown to act as a molecular bridge between the amount of iron available in the environment and the production of aflatoxin B1, one of the most potent liver carcinogens known to science. The finding, published in the journal Mycology: An International Journal on Fungal Biology, comes from a research team led by Professor Shihua Wang at Fujian Agriculture and Forestry University, working in collaboration with the Institute of Microbiology of the Chinese Academy of Sciences. By identifying and genetically dissecting the bZIP transcription factor AflHapX, the researchers have uncovered a regulatory axis that could reshape how the agricultural world thinks about preventing mycotoxin contamination in staple crops.

Aflatoxin B1 is not a minor agricultural nuisance. Produced by Aspergillus flavus and its close relative Aspergillus parasiticus, the compound routinely contaminates maize, peanuts, tree nuts, and other commodities, and chronic dietary exposure is strongly linked to hepatocellular carcinoma, particularly in regions where food security infrastructure is limited. Regulatory agencies worldwide enforce strict limits on aflatoxin levels in food and feed, yet controlling the fungus in the field and during storage remains an uphill battle. Understanding the internal circuitry that switches toxin production on and off has therefore been a central goal of mycotoxin research for decades, and the new study adds a critical piece to that puzzle: the fungus appears to read its iron environment through AflHapX and adjust its toxin output accordingly.

The team began by searching the A. flavus genome using the protein sequence of HapX from Aspergillus fumigatus, a well-characterized iron regulator in that pathogenic mold. This bioinformatic fishing expedition pulled out AflHapX, a bZIP-type transcription factor belonging to a family of proteins that bind DNA through a basic leucine zipper domain. To determine what the gene actually does, the researchers turned to homologous recombination, a technique that allows precise replacement of a target gene with a selectable marker. Using this approach, they constructed a deletion strain lacking AflhapX, as well as a complemented strain in which the gene was restored. This trio of strains, wild type, deletion mutant, and complemented control, forms the gold-standard experimental design for establishing that an observed phenotype is genuinely caused by the gene in question rather than by off-target effects of the genetic manipulation.

The first major result concerned aflatoxin production under standard laboratory conditions. When equal numbers of spores, or conidia, from the three strains were inoculated onto YES medium and incubated for seven days at 29 degrees Celsius, the deletion mutant produced significantly less aflatoxin B1 than both the wild type and the complemented strain, as measured by thin-layer chromatography. This straightforward observation established AflHapX as a positive regulator of toxin biosynthesis. But the more striking discovery came when the researchers manipulated iron availability in the culture environment, growing the wild-type and mutant strains under iron-sufficient, iron-starved, and iron-excess conditions and comparing toxin output across all six combinations.

The pattern that emerged was anything but simple. In the deletion mutant, aflatoxin B1 production was highest under iron excess, intermediate under iron sufficiency, and lowest under iron starvation. The wild type showed precisely the opposite relationship, producing more toxin when iron was scarce and less when iron was abundant. In other words, removing AflHapX inverted the fungus’s iron-to-toxin relationship, a result that strongly suggests the transcription factor is the conduit through which iron availability is translated into changes in aflatoxin biosynthesis. The authors conclude that AflHapX regulates AFB1 production through the iron homeostasis pathway, effectively coupling a fundamental nutrient-sensing system to a virulence and contamination trait of enormous economic and public health importance.

Iron is a double-edged nutrient for fungi. It is essential as a cofactor for enzymes involved in respiration, DNA synthesis, and detoxification, yet excess iron catalyzes the formation of destructive hydroxyl radicals through the Fenton reaction. Filamentous fungi therefore maintain elaborate iron regulatory networks, and in Aspergillus species the HapX protein sits at the center of that network, working with the CCAAT-binding complex to repress or activate genes depending on whether iron is scarce or plentiful. The new study demonstrates that in A. flavus this ancient homeostatic machinery does not merely manage iron metabolism; it also feeds into the regulation of secondary metabolism, the branch of fungal chemistry responsible for aflatoxins and numerous other bioactive compounds.

Beyond toxin production, the deletion of AflhapX produced a constellation of other phenotypes that flesh out the protein’s biological role. Mutant strains formed more sclerotia, the compact survival structures that A. flavus uses to persist in soil and overwinter between cropping seasons, hinting that iron signaling may also influence the fungus’s environmental survival strategy. The mutant was also markedly more sensitive to oxidative stress reagents, including hydrogen peroxide, menadione sodium bisulfite, and diamide, indicating that AflHapX helps the fungus cope with reactive oxygen species. This connection is particularly intriguing because oxidative stress is known to influence aflatoxin biosynthesis, and because the host plant itself generates oxidative bursts as a defense against fungal invasion.

To move from single-gene observations to a genome-wide picture, the team performed RNA sequencing on the wild-type and deletion strains. The transcriptome data revealed that AflHapX acts globally at the transcriptional level, coordinating the expression of genes involved in iron homeostasis, aflatoxin biosynthesis, and oxidative stress responses. This systems-level view confirms that the phenotypes observed in the plate assays reflect broad transcriptional rewiring rather than isolated changes, and it provides a catalog of downstream targets that other laboratories can now mine for additional regulatory connections.

The practical significance of the work was tested on the crop itself. When the wild-type, deletion, and complemented strains were inoculated onto peanut seeds, the deletion mutant produced fewer conidia and less aflatoxin B1 than the other two strains. Peanuts are among the crops most vulnerable to A. flavus infection, and the reduced growth and toxin output of the mutant on seeds suggests that AflHapX contributes to the fungus’s fitness in its natural agricultural niche, not just under laboratory conditions.

Professor Wang summarized the implications, stating that the findings demonstrate AflHapX serves as a key regulator coupling iron availability and aflatoxin B1 biosynthesis in A. flavus, and that the study provides new insights into the interplay between environmental iron and mycotoxin production, with potential implications for understanding the regulatory mechanisms of aflatoxin contamination in agricultural products. The prospect of targeting an iron-sensing pathway to suppress toxin production opens a genuinely novel intervention strategy. Iron availability in stored grain and processed commodities is an environmental variable that could, in principle, be managed through storage practices, biofortification approaches, or the development of compounds that disrupt AflHapX function. Because the deletion mutant also shows reduced sporulation on seeds, interfering with this pathway might simultaneously limit both the spread of the fungus and its chemical arsenal. The research also raises questions that extend well beyond a single species: if nutrient sensing and secondary metabolism are cross-wired in A. flavus, similar regulatory couplings may operate in other pathogenic and toxigenic fungi worldwide, offering a general principle for future antifungal and antitoxin strategies.

Subject of Research: Iron homeostasis and aflatoxin biosynthesis regulation by the transcription factor AflHapX in Aspergillus flavus

Article Title: bZIP transcription factor AflHapX coordinates iron homeostasis and aflatoxin biosynthesis in Aspergillus flavus

Article References: bZIP transcription factor AflHapX coordinates iron homeostasis and aflatoxin biosynthesis in Aspergillus flavus. (n.d.). Original publication

Image Credits: AI Generated

DOI: Not provided

Keywords: Aspergillus flavus, AflHapX, aflatoxin B1, iron homeostasis, bZIP transcription factor, mycotoxin, transcriptomics, oxidative stress, sclerotia, peanut contamination, food safety, fungal biology

News Source: Alan Morgan. (October 5, 2026). Iron-Sensing Protein Revealed as Master Switch for Aflatoxin Production in Crop Fungus. Scienmag.

Tags: aflatoxin B1AflHapXAspergillus flavusbZIP transcription factorfood safetyfungal biologyiron homeostasismycotoxinoxidative stresspeanut contaminationsclerotiaTranscriptomics
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