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1.
Biochem J ; 481(12): 805-821, 2024 Jun 19.
Artículo en Inglés | MEDLINE | ID: mdl-38829003

RESUMEN

Aflatoxins (AFs), potent foodborne carcinogens produced by Aspergillus fungi, pose significant health risks worldwide and present challenges to food safety and productivity in the food chain. Novel strategies for disrupting AF production, cultivating resilient crops, and detecting contaminated food are urgently needed. Understanding the regulatory mechanisms of AF production is pivotal for targeted interventions to mitigate toxin accumulation in food and feed. The gene cluster responsible for AF biosynthesis encodes biosynthetic enzymes and pathway-specific regulators, notably AflR and AflS. While AflR, a DNA-binding protein, activates gene transcription within the cluster, AflS enhances AF production through mechanisms that are not fully understood. In this study, we developed protocols to purify recombinant AflR and AflS proteins and utilized multiple assays to characterize their interactions with DNA. Our biophysical analysis indicated that AflR and AflS form a complex. AflS exhibited no DNA-binding capability on its own but unexpectedly reduced the DNA-binding affinity of AflR. Additionally, we found that AflR achieves its binding specificity through a mechanism in which either two copies of AflR or its complex with AflS bind to target sites on DNA in a highly cooperative manner. The estimated values of the interaction parameters of AflR, AflS and DNA target sites constitute a fundamental framework against which the function and mechanisms of other AF biosynthesis regulators can be compared.


Asunto(s)
Aflatoxinas , Proteínas Fúngicas , Aflatoxinas/biosíntesis , Aflatoxinas/metabolismo , Aflatoxinas/genética , Proteínas Fúngicas/metabolismo , Proteínas Fúngicas/genética , Cinética , Proteínas de Unión al ADN/metabolismo , Proteínas de Unión al ADN/genética , Unión Proteica , ADN/metabolismo , ADN/genética , ADN de Hongos/genética , ADN de Hongos/metabolismo , Aspergillus/metabolismo , Aspergillus/genética , Factores de Transcripción/metabolismo , Factores de Transcripción/genética
2.
BMC Plant Biol ; 24(1): 354, 2024 May 01.
Artículo en Inglés | MEDLINE | ID: mdl-38693487

RESUMEN

BACKGROUND: Aspergillus flavus is an important agricultural and food safety threat due to its production of carcinogenic aflatoxins. It has high level of genetic diversity that is adapted to various environments. Recently, we reported two reference genomes of A. flavus isolates, AF13 (MAT1-2 and highly aflatoxigenic isolate) and NRRL3357 (MAT1-1 and moderate aflatoxin producer). Where, an insertion of 310 kb in AF13 included an aflatoxin producing gene bZIP transcription factor, named atfC. Observations of significant genomic variants between these isolates of contrasting phenotypes prompted an investigation into variation among other agricultural isolates of A. flavus with the goal of discovering novel genes potentially associated with aflatoxin production regulation. Present study was designed with three main objectives: (1) collection of large number of A. flavus isolates from diverse sources including maize plants and field soils; (2) whole genome sequencing of collected isolates and development of a pangenome; and (3) pangenome-wide association study (Pan-GWAS) to identify novel secondary metabolite cluster genes. RESULTS: Pangenome analysis of 346 A. flavus isolates identified a total of 17,855 unique orthologous gene clusters, with mere 41% (7,315) core genes and 59% (10,540) accessory genes indicating accumulation of high genomic diversity during domestication. 5,994 orthologous gene clusters in accessory genome not annotated in either the A. flavus AF13 or NRRL3357 reference genomes. Pan-genome wide association analysis of the genomic variations identified 391 significant associated pan-genes associated with aflatoxin production. Interestingly, most of the significantly associated pan-genes (94%; 369 associations) belonged to accessory genome indicating that genome expansion has resulted in the incorporation of new genes associated with aflatoxin and other secondary metabolites. CONCLUSION: In summary, this study provides complete pangenome framework for the species of Aspergillus flavus along with associated genes for pathogen survival and aflatoxin production. The large accessory genome indicated large genome diversity in the species A. flavus, however AflaPan is a closed pangenome represents optimum diversity of species A. flavus. Most importantly, the newly identified aflatoxin producing gene clusters will be a new source for seeking aflatoxin mitigation strategies and needs new attention in research.


Asunto(s)
Aflatoxinas , Aspergillus flavus , Genoma Fúngico , Familia de Multigenes , Metabolismo Secundario , Aspergillus flavus/genética , Aspergillus flavus/metabolismo , Aflatoxinas/genética , Aflatoxinas/metabolismo , Metabolismo Secundario/genética , Zea mays/microbiología , Zea mays/genética , Estudio de Asociación del Genoma Completo , Genes Fúngicos , Secuenciación Completa del Genoma , Variación Genética
3.
J Gen Appl Microbiol ; 69(5): 260-269, 2024 Mar 07.
Artículo en Inglés | MEDLINE | ID: mdl-37468259

RESUMEN

Humic acid (HA) is a complex natural organic macromolecule, can be decomposed to low-molecular compounds by some soil fungi and then influences the growth of fungi. Aspergillus oryzae is a fungus domesticated from its ancestor, which was supposed to live in soil. Group 3 strains of A. oryzae hold fewer aflatoxin-biosynthetic genes than group 1 strains and may differently response to HA because of the deletion of some genes along with the domestication. However, effect of HA on growth of A. oryzae group 1 and group 3 strains remains unclear. In this study, four strains of A. oryzae in group 1 and four in group 3 were point inoculated on equivalent medium (pH 7.3) with two commercially available HAs. The growth of RIB40 was the most stimulated among group 1 strains and that of RIB143 was the most inhibited among group 3 strains. To identify the basis of these differences, we examined the possible effects of HA subcomponents including polyphenol and minerals on the growth of RIB40 and RIB143. Polyphenol represented by gallic acid (GA), a partial structure common with model HA, and mineral ions including Al 3+ , Ca 2+ , Ti 4+ , Mn 2+ , Sr 2+ , and Ba2+ contributed to stimulating the growth of RIB40, whereas these components generally did not affect the growth of RIB143. Thus, our findings indicate that the sub-compositions of HAs, including GA and several minerals, were the main factors driving the different responses of RIB40 and RIB143 to HAs.


Asunto(s)
Aflatoxinas , Aspergillus oryzae , Aspergillus oryzae/genética , Sustancias Húmicas , Aflatoxinas/genética , Minerales , Polifenoles
4.
Fungal Genet Biol ; 169: 103836, 2023 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-37666447

RESUMEN

The filamentous fungus Aspergillus flavus is a plant and human pathogen predominantly found in the soil as spores or sclerotia and is capable of producing various secondary metabolites (SM) such as the carcinogenic mycotoxin aflatoxin. Recently, we have discovered a novel nuclear chromatin binding complex (KERS) that contains the JARID1-type histone demethylase KdmB, a putative cohesion acetyl transferase EcoA, a class I type histone deacetylase RpdA and the PHD ring finger reader protein SntB in the model filamentous fungus Aspergillus nidulans. Here, we show the presence of the KERS complex in A. flavus by immunoprecipitation-coupled mass spectrometry and constructed kdmBΔ and rpdAΔ strains to study their roles in fungal development, SM production and histone post-translational modifications (HPTMs). We found that KdmB and RpdA couple the regulation of SM gene clusters with fungal light-responses and HPTMs. KdmB and RpdA have opposing roles in light-induced asexual conidiation, while both factors are positive regulators of sclerotia development through the nsdC and nsdD pathway. KdmB and RpdA are essential for the productions of aflatoxin (similar to findings for SntB) as well as cyclopiazonic acid, ditryptophenaline and leporin B through controlling the respective SM biosynthetic gene clusters. We further show that both KdmB and RpdA regulate H3K4me3 and H3K9me3 levels, while RpdA also acts on H3K14ac levels in nuclear extracts. Therefore, the chromatin modifiers KdmB and RpdA of the KERS complex are key regulators for fungal development and SM metabolism in A. flavus.


Asunto(s)
Aflatoxinas , Aspergillus flavus , Humanos , Cromatina/metabolismo , Metabolismo Secundario/genética , Virulencia , Proteínas Fúngicas/metabolismo , Aflatoxinas/genética , Regulación Fúngica de la Expresión Génica
5.
G3 (Bethesda) ; 13(9)2023 08 30.
Artículo en Inglés | MEDLINE | ID: mdl-37401423

RESUMEN

Fungi can synthesize a broad array of secondary metabolite chemicals. The genes underpinning their biosynthesis are typically arranged in tightly linked clusters in the genome. For example, ∼25 genes responsible for the biosynthesis of carcinogenic aflatoxins by Aspergillus section Flavi species are grouped in a ∼70 Kb cluster. Assembly fragmentation prevents assessment of the role of structural genomic variation in secondary metabolite evolution in this clade. More comprehensive analyses of secondary metabolite evolution will be possible by working with more complete and accurate genomes of taxonomically diverse Aspergillus species. Here, we combined short- and long-read DNA sequencing to generate a highly contiguous genome of the aflatoxigenic fungus, Aspergillus pseudotamarii (isolate NRRL 25517 = CBS 766.97; scaffold N50 = 5.5 Mb). The nuclear genome is 39.4 Mb, encompassing 12,639 putative protein-encoding genes and 74-97 candidate secondary metabolite biosynthesis gene clusters. The circular mitogenome is 29.7 Kb and contains 14 protein-encoding genes that are highly conserved across the genus. This highly contiguous A. pseudotamarii genome assembly enables comparisons of genomic rearrangements between Aspergillus section Flavi series Kitamyces and series Flavi. Although the aflatoxin biosynthesis gene cluster of A. pseudotamarii is conserved with Aspergillus flavus, the cluster has an inverted orientation relative to the telomere and occurs on a different chromosome.


Asunto(s)
Aflatoxinas , Aspergillus , Aspergillus/genética , Aspergillus/metabolismo , Aspergillus flavus/genética , Aflatoxinas/genética , Inestabilidad Genómica
6.
Pol J Microbiol ; 71(4): 589-599, 2022 Dec 01.
Artículo en Inglés | MEDLINE | ID: mdl-36537059

RESUMEN

Aflatoxin (AF)-producing fungi such as Aspergillus flavus commonly contaminate animal feeds, causing high economic losses. A. flavus is the most prevalent and produces AFB1, a potent mutagen, and carcinogen threatening human and animal health. Aspergillaceae is a large group of closely related fungi sharing number of morphological and genetic similarities that complicate the diagnosis of highly pathogenic strains. We used here morphological and molecular assays to characterize fungal isolates from animal feeds in Southwestern Algeria. These tools helped to identify 20 out of 30 Aspergillus strains, and 15 of them belonged to the Aspergillus section Flavi. Further analyses detected four out of 15 as belonging to Aspergillus flavus-parasiticus group. PCR targeting the AF genes' aflR-aflS(J) intergenic region amplified a single 674 bp amplicon in all four isolates. The amplicons were digested with a BglII endonuclease, and three specific fragments were observed for A. flavus but A. parasitucus lacked two typical fragments. Sequencing data of four amplicons confirmed the presence of the two BglII restriction sites yielding the three fragments, confirming that all four strains were A. flavus. In addition, this analysis illustrated the genetic variability within the A. flavus strains.


Asunto(s)
Aflatoxinas , Aspergillus flavus , Animales , Humanos , Aspergillus flavus/genética , Aspergillus , Aflatoxinas/análisis , Aflatoxinas/genética , Reacción en Cadena de la Polimerasa , Alimentación Animal
7.
PLoS One ; 17(10): e0276556, 2022.
Artículo en Inglés | MEDLINE | ID: mdl-36301851

RESUMEN

Aspergillus flavus is an agriculturally important fungus that causes ear rot of maize and produces aflatoxins, of which B1 is the most carcinogenic naturally-produced compound. In the US, the management of aflatoxins includes the deployment of biological control agents that comprise two nonaflatoxigenic A. flavus strains, either Afla-Guard (member of lineage IB) or AF36 (lineage IC). We used genotyping-by-sequencing to examine the influence of both biocontrol agents on native populations of A. flavus in cornfields in Texas, North Carolina, Arkansas, and Indiana. This study examined up to 27,529 single-nucleotide polymorphisms (SNPs) in a total of 815 A. flavus isolates, and 353 genome-wide haplotypes sampled before biocontrol application, three months after biocontrol application, and up to three years after initial application. Here, we report that the two distinct A. flavus evolutionary lineages IB and IC differ significantly in their frequency distributions across states. We provide evidence of increased unidirectional gene flow from lineage IB into IC, inferred to be due to the applied Afla-Guard biocontrol strain. Genetic exchange and recombination of biocontrol strains with native strains was detected in as little as three months after biocontrol application and up to one and three years later. There was limited inter-lineage migration in the untreated fields. These findings suggest that biocontrol products that include strains from lineage IB offer the greatest potential for sustained reductions in aflatoxin levels over several years. This knowledge has important implications for developing new biocontrol strategies.


Asunto(s)
Aflatoxinas , Aspergillus flavus , Aspergillus flavus/genética , Aflatoxinas/genética , Agentes de Control Biológico , Zea mays/genética , Zea mays/microbiología , Recombinación Genética
8.
Environ Microbiol ; 24(11): 5596-5610, 2022 11.
Artículo en Inglés | MEDLINE | ID: mdl-36059183

RESUMEN

Aspergillus flavus is a ubiquitous saprotrophic soil-borne pathogenic fungus that causes crops contamination with the carcinogen aflatoxins. Although sirtuin E (SirE) is known to be a NAD-dependent histone deacetylase involved in global transcriptional regulation. Its biological functions in A. flavus are not fully understood. To explore the effects of SirE, we found that SirE was located in the nucleus and increased the level of H3K56 acetylation. The ΔsirE mutant had the most severe growth defect in the sirtuin family. The RNA-Seq revealed that sirE was crucial for secondary metabolism production as well as genetic information process and oxidation-reduction in A. flavus. Further analysis revealed that the ΔsirE mutant increased aflatoxin production. Both the sirE deletion and H3K56 mutants were highly sensitive to DNA damage and oxidative stresses, indicating that SirE was required for DNA damage and redox reaction by the H3K56 locus. Furthermore, the ΔsirE mutant displayed high sensitivity to osmotic stress and cell wall stress, but they may not be associated with the H3K56. Finally, the catalytic activity site N192 of SirE was required for regulating growth, deacetylase function and aflatoxin production. Together, SirE is essential for histone deacetylation and biological function in A. flavus.


Asunto(s)
Aflatoxinas , Sirtuinas , Aspergillus flavus/metabolismo , Aflatoxinas/genética , Sirtuinas/genética , Sirtuinas/metabolismo , Histona Desacetilasas/genética , Histona Desacetilasas/metabolismo , Proteínas Fúngicas/genética , Proteínas Fúngicas/metabolismo , Daño del ADN
9.
Environ Microbiol ; 24(9): 4356-4368, 2022 09.
Artículo en Inglés | MEDLINE | ID: mdl-35621059

RESUMEN

Lysine 2-hydroxyisobutyrylation (Khib ) is a recently identified post-translational modification (PTM) that regulates numerous cellular metabolic processes. In pathogenic microorganism, although glycolysis and fungal virulence are regulated by Khib , its potential roles in fungi remain to be elusive. Our preliminary results showed that levels of Khib fluctuate over time in Aspergillus flavus, which frequently contaminates crops and produces carcinogenic aflatoxins. However, the perception of Khib function in A. flavus is limited, especially in mycotoxin-producing strains. Here, we performed a comprehensive analysis of Khib in A. flavus, and 7156 Khib sites were identified in 1473 proteins. Notably, we demonstrated that Khib of AflM, a key enzyme in aflatoxin biosynthesis, affected conidia production and sclerotia formation. Furthermore, aflM deletion impaired aflatoxin biosynthesis, and more importantly, strains in which Khib was mimicked by K to T mutation at K49, K179 and K180 sites showed reduced aflatoxin production compared with wild type and ΔaflM complementation strains. These results indicate that Khib at these sites of AflM negatively regulates aflatoxin biosynthesis in A. flavus. In summary, our study revealed the potential roles of Khib in A. flavus, and particularly shed light on a new way to regulate aflatoxin production via Khib .


Asunto(s)
Aflatoxinas , Aspergillus flavus , Aflatoxinas/genética , Aspergillus flavus/metabolismo , Proteínas Fúngicas/genética , Proteínas Fúngicas/metabolismo , Lisina/metabolismo , Procesamiento Proteico-Postraduccional , Esporas Fúngicas/metabolismo
10.
Int J Food Microbiol ; 366: 109559, 2022 Apr 02.
Artículo en Inglés | MEDLINE | ID: mdl-35144216

RESUMEN

Aspergillus flavus communities in agricultural fields consist of isolates with varying abilities to produce aflatoxins, which are highly toxic and carcinogenic to humans and animals. Biological control using multiple non-aflatoxigenic strains as a formulation to outcompete aflatoxigenic A. flavus has become a mainstream strategy. Aflasafe™ is a biocontrol product composed of four strains, Ka16127, La3279, La3304 and Og0222. It was first developed in Nigeria and is now widely used on maize and groundnut. In this study, phylogenetic analyses based on genome-wide single nucleotide polymorphisms showed that Ka16127 and La3304 were more closely related to each other than both were to La3279, and the three were distantly related to Og0222. Detailed molecular characterization of La3279 indicated that its genome, contradictory to the published report, lacked approximately half of the aflatoxin gene cluster as well as the entire cyclopiazonic acid gene cluster. La3279 was a member of the previously known "pattern E" group, which includes A. flavus and Aspergillus oryzae isolates that have the aforementioned deletion followed by a 3.8-kb "E block" sequence insertion. In comparison to the E block, corresponding regions in typical aflatoxigenic S-morphotype/genotype isolates as well as Ka16127 and La3304 were found to lack 1.1 kb of the 5' portion whereas L-morphotype/genotype isolates contained a complete nonhomologous region characterized by 2.5 copies of A. flavus telomeric repeat sequence at one end. Regions corresponding to the E block were highly variable and were useful for classifying A. flavus isolates into groups that mostly contained both mating types. The presence of both mating-type genes in genetically closely related A. flavus suggests a previously active sexual cycle. It could facilitate the development of a refined biocontrol strategy such as deploying biocontrol strains with the same mating-type that is predominant in a field A. flavus population.


Asunto(s)
Aflatoxinas , Aspergillus flavus , Aflatoxinas/genética , Aspergillus flavus/genética , Agentes de Control Biológico , Genómica , Familia de Multigenes , Filogenia
11.
Environ Microbiol ; 24(3): 1340-1361, 2022 03.
Artículo en Inglés | MEDLINE | ID: mdl-34863014

RESUMEN

Myst family is highly conserved histone acetyltransferases in eukaryotic cells and is known to play crucial roles in various cellular processes; however, acetylation catalysed by acetyltransferases is unclear in filamentous fungi. Here, we identified two classical nonessential Myst enzymes and analysed their functions in Aspergillus flavus, which generates aflatoxin B1, one of the most carcinogenic secondary metabolites. MystA and MystB located in nuclei and cytoplasm, and mystA could acetylate H4K16ac, while mystB acetylates H3K14ac, H3K18ac and H3K23ac. Deletion mystA resulted in decreased conidiation, increased sclerotia formation and aflatoxin production. Deletion of mystB leads to significant defects in conidiation, sclerotia formation and aflatoxin production. Additionally, double-knockout mutant (ΔmystA/mystB) display a stronger and similar defect to ΔmystB mutant, indicating that mystB plays a major role in regulating development and aflatoxin production. Both mystA and mystB play important role in crop colonization. Moreover, catalytic domain MOZ and the catalytic site E199/E243 were important for the acetyltransferase function of Myst. Notably, chromatin immunoprecipitation results indicated that mystB participated in oxidative detoxification by regulating the acetylation level of H3K14, and further regulated nsdD to affect sclerotia formation and aflatoxin production. This study provides new evidences to discover the biological functions of histone acetyltransferase in A. flavus.


Asunto(s)
Aflatoxinas , Aspergillus flavus , Acetilación , Aflatoxinas/genética , Aspergillus flavus/metabolismo , Proteínas Fúngicas/metabolismo , Histona Acetiltransferasas/genética , Histona Acetiltransferasas/metabolismo , Morfogénesis , Esporas Fúngicas/metabolismo
12.
Toxins (Basel) ; 13(2)2021 02 11.
Artículo en Inglés | MEDLINE | ID: mdl-33670398

RESUMEN

Dried fig is susceptible to infection by Aspergillus flavus, the major producer of the carcinogenic mycotoxins. This fruit may be contaminated by the fungus throughout the entire chain production, especially during natural sun-drying, post-harvest, industrial processing, storage, and fruit retailing. Correct management of such critical stages is necessary to prevent mould growth and mycotoxin accumulation, with temperature being one of the main factors associated with these problems. The effect of different temperatures (5, 16, 25, 30, and 37 °C) related to dried-fig processing on growth, one of the regulatory genes of aflatoxin pathway (aflR) and mycotoxin production by A. flavus, was assessed. Firstly, growth and aflatoxin production of 11 A. flavus strains were checked before selecting two strains (M30 and M144) for in-depth studies. Findings showed that there were enormous differences in aflatoxin amounts and related-gene expression between the two selected strains. Based on the results, mild temperatures, and changes in temperature during drying and storage of dried figs should be avoided. Drying should be conducted at temperatures >30 °C and close to 37 °C, while industry processing, storage, and retailing of dried figs are advisable to perform at refrigeration temperatures (<10 °C) to avoid mycotoxin production.


Asunto(s)
Aflatoxinas/análisis , Aspergillus flavus/metabolismo , Ficus/microbiología , Microbiología de Alimentos , Conservación de Alimentos , Almacenamiento de Alimentos , Frutas/microbiología , Temperatura , Aflatoxinas/genética , Aspergillus flavus/genética , Aspergillus flavus/crecimiento & desarrollo , Proteínas de Unión al ADN/genética , Proteínas de Unión al ADN/metabolismo , Desecación , Proteínas Fúngicas/genética , Proteínas Fúngicas/metabolismo , Regulación Fúngica de la Expresión Génica , Factores de Tiempo , Factores de Transcripción/genética , Factores de Transcripción/metabolismo
13.
Virulence ; 12(1): 96-113, 2021 12.
Artículo en Inglés | MEDLINE | ID: mdl-33315533

RESUMEN

Aspergillus flavus (A. flavus) is one of the most important model environmental fungi which can produce a potent toxin and carcinogen known as aflatoxin. Aflatoxin contamination causes massive agricultural economic loss and a critical human health issue each year. Although a functional vacuole has been highlighted for its fundamental importance in fungal virulence, the molecular mechanisms of the vacuole in regulating the virulence of A. flavus remain largely unknown. Here, we identified a novel vacuole-related protein in A. flavus, the ortholog of phosphatidylinositol-3-phosphate-5-kinase (Fab1) in Saccharomyces cerevisiae. This kinase was located at the vacuolar membrane, and loss of fab1 function was found to affect the growth, conidia and sclerotial development, cellular acidification and metal ion homeostasis, aflatoxin production and pathogenicity of A. flavus. Further functional analysis revealed that Fab1 was required to maintain the vacuole size and cell morphology. Additional quantitative proteomic analysis suggested that Fab1 was likely to play an important role in maintaining vacuolar/cellular homeostasis, with vacuolar dysregulation upon fab1 deletion leading to impaired aflatoxin synthesis in this fungus. Together, these results provide insight into the molecular mechanisms by which this pathogen produces aflatoxin and mediates its pathogenicity, and may facilitate dissection of the vacuole-mediated regulatory network in A. flavus.


Asunto(s)
1-Fosfatidilinositol 4-Quinasa/genética , Aflatoxinas/biosíntesis , Aspergillus flavus/enzimología , Aspergillus flavus/genética , Proteínas Fúngicas/genética , Regulación Fúngica de la Expresión Génica , Aflatoxinas/genética , Aspergillus flavus/patogenicidad , Proteínas Fúngicas/metabolismo , Homeostasis , Semillas/microbiología , Zea mays/microbiología
14.
Int J Mol Sci ; 21(21)2020 Nov 03.
Artículo en Inglés | MEDLINE | ID: mdl-33153018

RESUMEN

Aspergillus flavus is a saprophytic cosmopolitan fungus, capable of infecting crops both pre- and post-harvest and exploiting different secondary metabolites, including aflatoxins. Aflatoxins are known carcinogens to animals and humans, but display no clear effect in host plants such as maize. In a previous study, we mined the genome of A. flavus to identify secondary metabolite clusters putatively involving the pathogenesis process in maize. We now focus on cluster 32, encoding for fungal effectors such as salicylate hydroxylase (SalOH), and necrosis- and ethylene-inducing proteins (npp1 domain protein) whose expression is triggered upon kernel contact. In order to understand the role of this genetic cluster in maize kernel infection, mutants of A. flavus, impaired or enhanced in specific functions (e.g., cluster 32 overexpression), were studied for their ability to cause disease. Within this frame, we conducted histological and histochemical experiments to verify the expression of specific genes within the cluster (e.g., SalOH, npp1), the production of salicylate, and the presence of its dehydroxylated form. Results suggest that the initial phase of fungal infection (2 days) of the living tissues of maize kernels (e.g., aleuron) coincides with a significant increase of fungal effectors such as SalOH and Npp1 that appear to be instrumental in eluding host defences and colonising the starch-enriched tissues, and therefore suggest a role of cluster 32 to the onset of infection.


Asunto(s)
Aspergillus flavus/patogenicidad , Redes y Vías Metabólicas/genética , Familia de Multigenes , Zea mays/microbiología , Aflatoxinas/genética , Aflatoxinas/metabolismo , Aspergilosis/genética , Aspergilosis/metabolismo , Aspergillus flavus/genética , Aspergillus flavus/fisiología , Catecoles/metabolismo , Productos Agrícolas/genética , Productos Agrícolas/metabolismo , Productos Agrícolas/microbiología , Resistencia a la Enfermedad/genética , Regulación de la Expresión Génica de las Plantas , Oxigenasas de Función Mixta/genética , Oxigenasas de Función Mixta/metabolismo , Organismos Modificados Genéticamente , Enfermedades de las Plantas/genética , Enfermedades de las Plantas/microbiología , Quercetina/metabolismo , Ácido Salicílico/metabolismo , Semillas , Zea mays/genética , Zea mays/metabolismo
15.
Fungal Genet Biol ; 144: 103478, 2020 11.
Artículo en Inglés | MEDLINE | ID: mdl-33059038

RESUMEN

The carcinogenic aflatoxins are a human health concern as well as an economic burden to corn, peanut and other crops grown within the United States and globally. Aflatoxins are produced by fungi species in Aspergillus section Flavi, primarily Aspergillus flavus. Though previously thought of as only asexual, A. flavus has recently been found to undergo sexual reproduction both in laboratory crosses and in the field. To elucidate the consequences of genetic exchange through a single generation of the sexual cycle within A. flavus, we constructed genetic maps based on three mapping populations, each composed of the parental strains and approximately 70 F1 progeny. Genome-wide data using double digest Restriction Associated DNA sequencing identified 496, 811, and 576 significant polymorphisms differentiating parents across eight linkage groups; these polymorphisms served as markers. Average spacing between marker loci was 3.1, 2.1, and 3.5 map units and overall map length was 1504.4, 1669.2, and 2001.3 cM. Recombination was non-randomly distributed across chromosomes with an average rate of recombination of about 46.81 cM per Mbp. We showed inheritance of mitochondrial loci from the sclerotial (female) parent in crosses, whereas nuclear loci showed a 1:1 segregation ratio from both parents. The linkage map will be useful in QTL analyses to identify traits that increase sexual fertility in A. flavus and modulate aflatoxin production, both of which have significant implications for sustainable reduction of aflatoxin contamination using biological control agents.


Asunto(s)
Aflatoxinas/genética , Aspergillus flavus/genética , Variación Genética/genética , Reproducción/genética , Aspergillus flavus/crecimiento & desarrollo , Mapeo Cromosómico/métodos , Productos Agrícolas/genética , Productos Agrícolas/crecimiento & desarrollo , Ligamiento Genético/genética , Genotipo , Humanos , Fenotipo , Análisis de Secuencia de ADN , Zea mays/genética , Zea mays/microbiología
16.
Int J Mol Sci ; 21(19)2020 Sep 23.
Artículo en Inglés | MEDLINE | ID: mdl-32977505

RESUMEN

Aflatoxins (AFs) have always been regarded as the most effective carcinogens, posing a great threat to agriculture, food safety, and human health. Aspergillus flavus is the major producer of aflatoxin contamination in crops. The prevention and control of A. flavus and aflatoxin continues to be a global problem. In this study, we demonstrated that the cell-free culture filtrate of Aspergillus oryzae and a non-aflatoxigenic A. flavus can effectively inhibit the production of AFB1 and the growth and reproduction of A. flavus, indicating that both of the non-aflatoxigenic Aspergillus strains secrete inhibitory compounds. Further transcriptome sequencing was performed to analyze the inhibitory mechanism of A. flavus treated with fermenting cultures, and the results revealed that genes involved in the AF biosynthesis pathway and other biosynthetic gene clusters were significantly downregulated, which might be caused by the reduced expression of specific regulators, such as AflS, FarB, and MtfA. The WGCNA results further revealed that genes involved in the TCA cycle and glycolysis were potentially involved in aflatoxin biosynthesis. Our comparative transcriptomics also revealed that two conidia transcriptional factors, brlA and abaA, were found to be significantly downregulated, which might lead to the downregulation of conidiation-specific genes, such as the conidial hydrophobins genes rodA and rodB. In summary, our research provides new insights for the molecular mechanism of controlling AF synthesis to control the proliferation of A. flavus and AF pollution.


Asunto(s)
Aflatoxinas , Aspergillus flavus/fisiología , Regulación Fúngica de la Expresión Génica , RNA-Seq , Esporas Fúngicas , Transcriptoma , Aflatoxinas/biosíntesis , Aflatoxinas/genética , Glycine max/microbiología , Esporas Fúngicas/genética , Esporas Fúngicas/metabolismo
17.
BMC Microbiol ; 20(1): 252, 2020 08 14.
Artículo en Inglés | MEDLINE | ID: mdl-32795262

RESUMEN

BACKGROUND: Groundnut pre- and post-harvest contamination is commonly caused by fungi from the Genus Aspergillus. Aspergillus flavus is the most important of these fungi. It belongs to section Flavi; a group consisting of aflatoxigenic (A. flavus, A. parasiticus and A. nomius) and non-aflatoxigenic (A. oryzae, A. sojae and A. tamarii) fungi. Aflatoxins are food-borne toxic secondary metabolites of Aspergillus species associated with severe hepatic carcinoma and children stuntedness. Despite the well-known public health significance of aflatoxicosis, there is a paucity of information about the prevalence, genetic diversity and population structure of A. flavus in different groundnut growing agro-ecological zones of Uganda. This cross-sectional study was therefore conducted to fill this knowledge gap. RESULTS: The overall pre- and post-harvest groundnut contamination rates with A. flavus were 30.0 and 39.2% respectively. Pre- and post-harvest groundnut contamination rates with A. flavus across AEZs were; 2.5 and 50.0%; (West Nile), 55.0 and 35.0% (Lake Kyoga Basin) and 32.5 and 32.5% (Lake Victoria Basin) respectively. There was no significant difference (χ2 = 2, p = 0.157) in overall pre- and post-harvest groundnut contamination rates with A. flavus and similarly no significant difference (χ2 = 6, p = 0.199) was observed in the pre- and post-harvest contamination of groundnut with A. flavus across the three AEZs. The LKB had the highest incidence of aflatoxin-producing Aspergillus isolates while WN had no single Aspergillus isolate with aflatoxin-producing potential. Aspergillus isolates from the pre-harvest groundnut samples had insignificantly higher incidence of aflatoxin production (χ2 = 2.667, p = 0.264) than those from the post-harvest groundnut samples. Overall, A. flavus isolates exhibited moderate level (92%, p = 0.02) of genetic diversity across the three AEZs and low level (8%, p = 0.05) of genetic diversity within the individual AEZs. There was a weak positive correlation (r = 0.1241, p = 0.045) between genetic distance and geographic distance among A. flavus populations in the LKB, suggesting that genetic differentiation in the LKB population might be associated to geographic distance. A very weak positive correlation existed between genetic variation and geographic location in the entire study area (r = 0.01, p = 0.471), LVB farming system (r = 0.0141, p = 0.412) and WN farming system (r = 0.02, p = 0.478). Hierarchical clustering using the unweighted pair group method with arithmetic means (UPGMA) revealed two main clusters of genetically similar A. flavus isolates. CONCLUSIONS: These findings provide evidence that genetic differentiation in A. flavus populations is independent of geographic distance. This information can be valuable in the development of a suitable biocontrol management strategy of aflatoxin-producing A. flavus.


Asunto(s)
Aflatoxinas/metabolismo , Aspergillus flavus/clasificación , Variación Genética , Nueces/microbiología , Aflatoxinas/genética , Aspergillus flavus/genética , Aspergillus flavus/metabolismo , Análisis por Conglomerados , Productos Agrícolas/microbiología , Contaminación de Alimentos , Filogenia , Metabolismo Secundario , Uganda
18.
J Environ Sci Health B ; 55(9): 835-843, 2020.
Artículo en Inglés | MEDLINE | ID: mdl-32657210

RESUMEN

Aflatoxins produced by Aspergillus parasiticus are toxic and carcinogenic metabolites. The biosynthesis of this mycotoxins is a complex process and involves at least 30 genes clustered within an approximately 82 kB gene cluster. In the present study, the effect of Capsicum chinense and Piper nigrum fruits on Aspergillus parasiticus growth and aflatoxin production were studied in relation to the expression of aflD, aflM, aflR, and aflS four; key genes of aflatoxins biosynthesis pathway. GC-EIMS analysis identified capsaicin (66,107 µg g-1) and piperine (1,138 µg g-1) as the most abundant compounds in C. chinense and P. nigrum fruits, respectively. The antifungal and anti-aflatoxigenic assays showed that C. chinense, P. nigrum, capsaicin, and piperine inhibited A. parasiticus growth and aflatoxins production in a dose-dependent manner. The piperine at 300 µg mL-1 produced higher radial growth inhibition (89%) and aflatoxin production inhibition (69%). The expression of aflatoxin biosynthetic genes was evaluated by quantitative real-time PCR (qRT-PCR) and revealed that aflatoxin inhibition occurring via downregulating the aflS and aflR, and subsequently aflD and aflM genes. These results will improve our understanding of the mechanism of aflatoxin regulation by C. chinense, P. nigrum, capsaicin, and piperine, and provides a reference for further study.


Asunto(s)
Aflatoxinas/metabolismo , Aspergillus/efectos de los fármacos , Capsicum/química , Regulación Fúngica de la Expresión Génica/efectos de los fármacos , Piper nigrum/química , Aflatoxinas/genética , Alcaloides/farmacología , Antifúngicos/química , Antifúngicos/farmacología , Aspergillus/genética , Aspergillus/crecimiento & desarrollo , Aspergillus/metabolismo , Benzodioxoles/farmacología , Vías Biosintéticas , Capsaicina/farmacocinética , Proteínas de Unión al ADN/genética , Frutas/química , Proteínas Fúngicas/genética , Genes Fúngicos , Piperidinas/farmacología , Alcamidas Poliinsaturadas/farmacología , Factores de Transcripción/genética
19.
Environ Microbiol ; 22(8): 3522-3534, 2020 08.
Artículo en Inglés | MEDLINE | ID: mdl-32515100

RESUMEN

In warm regions, agricultural fields are occupied by complex Aspergillus flavus communities composed of isolates in many vegetative compatibility groups (VCGs) with varying abilities to produce highly toxic, carcinogenic aflatoxins. Aflatoxin contamination is reduced with biocontrol products that enable atoxigenic isolates from atoxigenic VCGs to dominate the population. Shifts in VCG frequencies similar to those caused by the introduction of biocontrol isolates were detected in Sonora, Mexico, where biocontrol is not currently practiced. The shifts were attributed to founder events. Although VCGs reproduce clonally, significant diversity exists within VCGs. Simple sequence repeat (SSR) fingerprinting revealed that increased frequencies of VCG YV150 involved a single haplotype. This is consistent with a founder event. Additionally, great diversity was detected among 82 YV150 isolates collected over 20 years across Mexico and the United States. Thirty-six YV150 haplotypes were separated into two populations by Structure and SplitsTree analyses. Sixty-five percent of isolates had MAT1-1 and belonged to one population. The remaining had MAT1-2 and belonged to the second population. SSR alleles varied within populations, but recombination between populations was not detected despite co-occurrence at some locations. Results suggest that YV150 isolates with opposite mating-type have either strongly restrained or lost sexual reproduction among themselves.


Asunto(s)
Aflatoxinas/biosíntesis , Aspergillus flavus/crecimiento & desarrollo , Aspergillus flavus/genética , Efecto Fundador , Variación Genética/genética , Aflatoxinas/genética , Aspergillus flavus/metabolismo , Agentes de Control Biológico/metabolismo , Dermatoglifia del ADN , México , Repeticiones de Microsatélite/genética , Estados Unidos , Zea mays/microbiología
20.
Toxins (Basel) ; 12(3)2020 02 28.
Artículo en Inglés | MEDLINE | ID: mdl-32121226

RESUMEN

The study of fungal species evolved radically with the development of molecular techniques and produced new evidence to understand specific fungal mechanisms such as the production of toxic secondary metabolites. Taking advantage of these technologies to improve food safety, the molecular study of toxinogenic species can help elucidate the mechanisms underlying toxin production and enable the development of new effective strategies to control fungal toxicity. Numerous studies have been made on genes involved in aflatoxin B1 (AFB1) production, one of the most hazardous carcinogenic toxins for humans and animals. The current review presents the roles of these different genes and their possible impact on AFB1 production. We focus on the toxinogenic strains Aspergillus flavus and A. parasiticus, primary contaminants and major producers of AFB1 in crops. However, genetic reports on A. nidulans are also included because of the capacity of this fungus to produce sterigmatocystin, the penultimate stable metabolite during AFB1 production. The aim of this review is to provide a general overview of the AFB1 enzymatic biosynthesis pathway and its link with the genes belonging to the AFB1 cluster. It also aims to illustrate the role of global environmental factors on aflatoxin production and the recent data that demonstrate an interconnection between genes regulated by these environmental signals and aflatoxin biosynthetic pathway.


Asunto(s)
Aflatoxinas/biosíntesis , Aflatoxinas/genética , Animales , Interacción Gen-Ambiente , Humanos
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