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1.
BMC Genom Data ; 25(1): 75, 2024 Aug 20.
Article in English | MEDLINE | ID: mdl-39164622

ABSTRACT

OBJECTIVES: The ascomycotic yeast-like fungus Aureobasidium exhibits the natural ability to synthesize several secondary metabolites, like polymalic acid, pullulan, or polyol lipids, with potential biotechnological applications. Combined with its polyextremotolerance, these properties make Aureobasidium a promising production host candidate. Hence, plenty of genomes of Aureobasidia have been sequenced recently. Here, we provide the annotated draft genome sequence of the polyol lipid-producing strain A. pullulans NRRL 62042. DATA DESCRIPTION: The genome of A. pullulans NRRL 62042 was sequenced using Illumina NovaSeq 6000. Genome assembly revealed a genome size of 24.2 Mb divided into 39 scaffolds with a GC content of 50.1%. Genome annotation using Genemark v4.68 and GenDBE yielded 9,596 genes.


Subject(s)
Aureobasidium , Genome, Fungal , Polymers , Aureobasidium/genetics , Aureobasidium/metabolism , Polymers/metabolism , Polymers/chemistry , Molecular Sequence Annotation , Lipids , Base Composition
2.
Arch Microbiol ; 206(9): 375, 2024 Aug 14.
Article in English | MEDLINE | ID: mdl-39141138

ABSTRACT

Pullulan is a microbial exopolysaccharide produced by Aureobasidium spp. with excellent physical and chemical properties, resulting in great application value. In this study, a novel strain RM1603 of Aureobasidium pullulans with high pullulan production of 51.0 ± 1.0 g·L- 1 isolated from rhizosphere soil was subjected to atmospheric and room temperature plasma (ARTP) mutagenesis, followed by selection of mutants to obtain pullulan high-producing strains. Finally, two mutants Mu0816 and Mu1519 were obtained, with polysaccharide productions of 58.7 ± 0.8 and 60.0 ± 0.8 g∙L- 1 after 72-h fermentation, representing 15.1 and 17.6% increases compared with the original strain, respectively. Transcriptome analysis of the two mutants and the original strain revealed that the high expression of α/ß-hydrolase (ABHD), α-amylase (AMY1), and sugar porter family MFS transporters (SPF-MFS) in the mutants may be related to the synthesis and secretion of pullulan. These results demonstrated the effectiveness of ARTP mutagenesis in A. pullulans, providing a basis for the investigation of genes related to pullulan synthesis and secretion.


Subject(s)
Aureobasidium , Fermentation , Gene Expression Profiling , Glucans , Mutagenesis , Glucans/metabolism , Aureobasidium/genetics , Aureobasidium/metabolism , alpha-Amylases/genetics , alpha-Amylases/metabolism , Mutation , Rhizosphere , Soil Microbiology , Transcriptome , Fungal Proteins/genetics , Fungal Proteins/metabolism
3.
Microb Biotechnol ; 17(8): e14535, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39075758

ABSTRACT

We here explore the potential of the fungal genus Aureobasidium as a prototype for a microbial chassis for industrial biotechnology in the context of a developing circular bioeconomy. The study emphasizes the physiological advantages of Aureobasidium, including its polyextremotolerance, broad substrate spectrum, and diverse product range, making it a promising candidate for cost-effective and sustainable industrial processes. In the second part, recent advances in genetic tool development, as well as approaches for up-scaled fermentation, are described. This review adds to the growing body of scientific literature on this remarkable fungus and reveals its potential for future use in the biotechnological industry.


Subject(s)
Aureobasidium , Biotechnology , Industrial Microbiology , Industrial Microbiology/trends , Industrial Microbiology/methods , Biotechnology/methods , Biotechnology/trends , Aureobasidium/genetics , Aureobasidium/metabolism , Fermentation
4.
Arch Microbiol ; 206(8): 353, 2024 Jul 16.
Article in English | MEDLINE | ID: mdl-39014223

ABSTRACT

Liamocins are molecules with a polyol lipid structure produced by rare strains of Aureobasidium pullulans. In recent years, liamocins have attracted attention due to their antibacterial, anticancer and surface-active properties, and promising potential applications have been identified in the food, agriculture, medical and pharmaceutical industries. This study is the first to investigate the effects of different carbon and nitrogen sources on the growth and liamocin production kinetics of A. pullulans NBRC 100716 strain. This strain was selected among six different A. pullulans strains whose liamocin productions were tested by us for the first time. In fermentations carried out in shaking water baths, the carbon source that most supported the liamocin production of this strain was fructose, and the nitrogen source was peptone-yeast extract combination. In the medium containing fructose and the peptone-yeast extract mixture, A. pullulans NBRC 100716 produced 4.26 g liamocin L-1. The specific liamocin production rate (qp) of the strain in this medium was 0.0090 g liamocin/g mo.h. This study is also the first to produce liamocin with a fructophilic A. pullulans strain. Present findings in this research also demonstrated the excellent biosurfactant capacity of the liamocin produced by this strain. The obtained liamocin reduced the water surface tension to a degree that can compete with synthetic surfactants. Furthermore, this is the first report to reveal that the fatty acid profile of liamocin obtained from A. pullulans NBRC 100716 contains an appreciable amount of unsaturated fatty acids and is similar to the composition of vegetable oil.


Subject(s)
Aureobasidium , Carbon , Culture Media , Fermentation , Nitrogen , Nitrogen/metabolism , Carbon/metabolism , Culture Media/chemistry , Aureobasidium/metabolism , Kinetics , Fructose/metabolism
5.
J Cell Biol ; 223(10)2024 Oct 07.
Article in English | MEDLINE | ID: mdl-38935076

ABSTRACT

Aureobasidium pullulans is a ubiquitous polymorphic black yeast with industrial and agricultural applications. It has recently gained attention amongst cell biologists for its unconventional mode of proliferation in which multinucleate yeast cells make multiple buds within a single cell cycle. Here, we combine a chemical transformation method with genome-targeted homologous recombination to yield ∼60 transformants/µg of DNA in just 3 days. This protocol is simple, inexpensive, and requires no specialized equipment. We also describe vectors with codon-optimized green and red fluorescent proteins for A. pullulans and use these tools to explore novel cell biology. Quantitative imaging of a strain expressing cytosolic and nuclear markers showed that although the nuclear number varies considerably among cells of similar volume, total nuclear volume scales with cell volume over an impressive 70-fold size range. The protocols and tools described here expand the toolkit for A. pullulans biologists and will help researchers address the many other puzzles posed by this polyextremotolerant and morphologically plastic organism.


Subject(s)
Aureobasidium , Genetic Techniques , Transformation, Genetic , Aureobasidium/cytology , Aureobasidium/genetics , Aureobasidium/metabolism , Cell Nucleus/metabolism , Cell Nucleus/genetics , Genetic Vectors/metabolism , Green Fluorescent Proteins/metabolism , Green Fluorescent Proteins/genetics , Homologous Recombination , Luminescent Proteins/genetics , Luminescent Proteins/metabolism , Red Fluorescent Protein
6.
Fungal Biol ; 128(4): 1859-1867, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38876538

ABSTRACT

Volatile organic compounds (VOCs) produced by yeasts can positively affect crops, acting as antifungals or biostimulants. In this study, Aureobasidium pullulans and Metschnikowia pulcherrima were evaluated as potential antagonists of Trichoderma spp., common fungal pathogen in mushroom cultivation. To assess the biocontrol ability and biostimulant properties of the selected yeast species, in vitro co-culture and VOCs exposure assays were conducted. In both assays, VOCs produced by Aureobasidium spp. showed the stronger antifungal activity with a growth inhibition up to 30 %. This result was further confirmed by the higher volatilome alcohol content revealed by solid phase microextraction-gas chromatography mass spectrometry (SPME/GC-MS). Overall, Aureobasidium strains can be potentially used as biocontrol agent in Pleorotus ostreatus and Cyclocybe cylindracea mycelial growth, without affecting their development as demonstrated by VOCs exposure assay and Fourier-transform infrared spectroscopy (FT-IR). Conversely, M. pulcherrima was characterized by a lower or absent antifungal properties and by a volatilome composition rich in isobutyl acetate, an ester often recognized as plant growth promoter. As confirmed by FT-IR, Lentinula mycelia exposed to M. pulcherrima VOCs showed a higher content of proteins and lipids, suggesting an improvement of some biochemical properties. Our study emphasizes that VOCs produced by specific yeast strains are potentially powerful alternative to synthetic fungicide in the vegetative growth of mushroom-forming fungi and also able to modify their biochemical composition.


Subject(s)
Agaricales , Gas Chromatography-Mass Spectrometry , Mycelium , Volatile Organic Compounds , Volatile Organic Compounds/pharmacology , Volatile Organic Compounds/metabolism , Volatile Organic Compounds/chemistry , Mycelium/growth & development , Mycelium/drug effects , Mycelium/chemistry , Agaricales/chemistry , Agaricales/growth & development , Agaricales/drug effects , Agaricales/metabolism , Antifungal Agents/pharmacology , Antifungal Agents/metabolism , Biological Control Agents/pharmacology , Biological Control Agents/chemistry , Metschnikowia/growth & development , Metschnikowia/drug effects , Metschnikowia/metabolism , Antibiosis , Aureobasidium , Trichoderma/growth & development , Trichoderma/chemistry , Trichoderma/metabolism , Solid Phase Microextraction
7.
World J Microbiol Biotechnol ; 40(8): 253, 2024 Jun 25.
Article in English | MEDLINE | ID: mdl-38914906

ABSTRACT

Liamocins, a group of high-density glycolipids, are only produced by certain strains of the yeast-like fungi in the genus Aureobasidium. Until now, few studies have focused on the surfactant properties of liamocins produced from the highly diverse tropical strains of Aureobasidium. Therefore, the aims of this research were to screen the liamocin production from tropical strains of Aureobasidium spp. and to characterize their surfactant properties. A total of 41 strains of Thai Aureobasidium spp. were screened for their ability to produce liamocins, and the products were detected using matrix-assisted laser desorption/ionization time-of-flight mass spectrometry and thin-layer chromatography. Of those strains, 30 strains of Aureobasidium spp. tested were found to produce liamocins with yields ranging from 0.53 to 10.60 g/l. The nature of all crude liamocins was heterogeneous, with different compositions and ratios depending on the yeast strain. These liamocins exhibited relatively high emulsifying activity against vegetable oils tested, with an emulsification index of around 40-50%; the emulsion stability of some liamocins was up to 30 days. The obtained critical micelle concentration values were varied, with those ​​of liamocins produced from A. pullulans, A. melanogenum and A. thailandense falling in ranges from 7.70 to 119.78, 10.73 to > 1,000, and 68.56 to > 1,000 mg/l, respectively. The emulsification activity of liamocins was higher than that of the analytical grade rhamnolipids. These compounds showed strong surface tension reduction in a sodium chloride concentration range of 2-12% (w/v), pH values between 3 and 7, and temperatures between 4 and 121 °C. This is the first report of liamocins produced by A. thailandense.


Subject(s)
Aureobasidium , Glycolipids , Glycolipids/metabolism , Glycolipids/biosynthesis , Glycolipids/chemistry , Aureobasidium/metabolism , Surface-Active Agents/metabolism , Surface-Active Agents/pharmacology , Surface-Active Agents/chemistry , Thailand , Chromatography, Thin Layer , Plant Oils/metabolism , Spectrometry, Mass, Matrix-Assisted Laser Desorption-Ionization , Emulsifying Agents/metabolism , Emulsifying Agents/chemistry , Emulsions
8.
Int J Biol Macromol ; 269(Pt 1): 132109, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38714281

ABSTRACT

This study presents a novel and efficient approach for pullulan production using artificial neural networks (ANNs) to optimize semi-solid-state fermentation (S-SSF) on faba bean biomass (FBB). This method achieved a record-breaking pullulan yield of 36.81 mg/g within 10.82 days, significantly exceeding previous results. Furthermore, the study goes beyond yield optimization by characterizing the purified pullulan, revealing its unique properties including thermal stability, amorphous structure, and antioxidant activity. Energy-dispersive X-ray spectroscopy and scanning electron microscopy confirmed its chemical composition and distinct morphology. This research introduces a groundbreaking combination of ANNs and comprehensive characterization, paving the way for sustainable and cost-effective pullulan production on FBB under S-SSF conditions. Additionally, the study demonstrates the successful integration of pullulan with Ag@TiO2 nanoparticles during synthesis using Fusarium oxysporum. This novel approach significantly enhances the stability and efficacy of the nanoparticles by modifying their surface properties, leading to remarkably improved antibacterial activity against various human pathogens. These findings showcase the low-cost production medium, and extensive potential of pullulan not only for its intrinsic properties but also for its ability to significantly improve the performance of nanomaterials. This breakthrough opens doors to diverse applications in various fields.


Subject(s)
Anti-Bacterial Agents , Aureobasidium , Fermentation , Glucans , Nanocomposites , Neural Networks, Computer , Silver , Titanium , Glucans/chemistry , Glucans/biosynthesis , Glucans/pharmacology , Nanocomposites/chemistry , Titanium/chemistry , Titanium/pharmacology , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Aureobasidium/metabolism , Silver/chemistry , Silver/pharmacology , Antioxidants/pharmacology , Antioxidants/chemistry , Fusarium
9.
Int J Biol Macromol ; 268(Pt 2): 132013, 2024 May.
Article in English | MEDLINE | ID: mdl-38697412

ABSTRACT

Osteoporosis is a prevalent condition characterized by bone loss and decreased skeletal strength, resulting in an elevated risk of fractures. Calcium plays a crucial role in preventing and managing osteoporosis. However, traditional calcium supplements have limited bioavailability, poor solubility, and adverse effects. In this study, we isolated a natural soluble biopolymer, calcium polymalate (PMACa), from the fermentation broth of the fungus Aureobasidium pullulans, to investigate its potential as an anti-osteoporosis therapeutic agent. Characterization revealed that linear PMA-Ca chains juxtaposed to form a porous, rod-like state, in the presence of Ca2+. In vivo mouse models demonstrated that PMA-Ca significantly promoted the conversion of serum calcium into bone calcium, and stimulated bone growth and osteogenesis. Additionally, PMA-Ca alleviated exercise fatigue in mice by facilitating the removal of essential metabolites, such as serum lactate (BLA) and blood urea nitrogen (BUN), from their bloodstream. In vitro studies further showed that PMA-Ca strengthened osteoblast cell activity, proliferation, and mineralization. And PMA-Ca upregulated the expression of some genes involved in osteoblast differentiation, indicating a potential correlation between bone formation and PMACa. These findings indicate that soluble PMA-Ca has the potential to be a novel biopolymer-based calcium supplement with sustainable production sourced from the fermentation industry.


Subject(s)
Aureobasidium , Calcium , Fermentation , Osteoporosis , Solubility , Animals , Mice , Osteoporosis/drug therapy , Osteoporosis/metabolism , Calcium/metabolism , Biopolymers/chemistry , Biopolymers/pharmacology , Aureobasidium/metabolism , Osteoblasts/drug effects , Osteoblasts/metabolism , Osteogenesis/drug effects , Fatigue/drug therapy , Water/chemistry , Cell Proliferation/drug effects , Disease Models, Animal , Female , Cell Differentiation/drug effects
10.
Chem Biodivers ; 21(6): e202400507, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38606561

ABSTRACT

Three new C10 and C12 aliphatic δ-lactones (1-3), three new fatty acid methyl esters (4-6), and eight known compounds (7-14) were isolated from the marine Aureobasidium sp. LUO5. Their structures were established by detailed analyses of the NMR, HRESIMS, optical rotation, and ECD data. All isolates were tested for their inhibitory effects on nitric oxide production in LPS-induced BV-2 cells. Notably, compound 4 displayed the strongest inhibitory effect with the IC50 value of 120.3 nM.


Subject(s)
Aureobasidium , Nitric Oxide , Animals , Mice , Aureobasidium/chemistry , Aureobasidium/metabolism , Cell Line , Lipopolysaccharides/antagonists & inhibitors , Lipopolysaccharides/pharmacology , Molecular Conformation , Molecular Structure , Nitric Oxide/antagonists & inhibitors , Nitric Oxide/biosynthesis , Nitric Oxide/metabolism , Lactones
11.
Int J Biol Macromol ; 268(Pt 1): 131820, 2024 May.
Article in English | MEDLINE | ID: mdl-38670184

ABSTRACT

In this study, an NSDD gene, which encoded a GATA-type transcription factor involved in the regulation and biosynthesis of melanin, pullulan, and polymalate (PMA) in Aureobasidium melanogenum, was characterized. After the NSDD gene was completely removed, melanin production by the Δnsd mutants was enhanced, while pullulan and polymalate production was significantly reduced. Transcription levels of the genes involved in melanin biosynthesis were up-regulated while expression levels of the genes responsible for pullulan and PMA biosynthesis were down-regulated in the Δnsdd mutants. In contrast, the complementation of the NSDD gene in the Δnsdd mutants made the overexpressing mutants restore melanin production and transcription levels of the genes responsible for melanin biosynthesis. Inversely, the complementation strains, compared to the wild type strains, showed enhanced pullulan and PMA yields. These results demonstrated that the NsdD was not only a negative regulator for melanin biosynthesis, but also a key positive regulator for pullulan and PMA biosynthesis in A. melanogenum. It was proposed how the same transcriptional factor could play a negative role in melanin biosynthesis and a positive role in pullulan and PMA biosynthesis. This study provided novel insights into the regulatory mechanisms of multiple A. melanogenum metabolites and the possibility for improving its yields of some industrial products through genetic approaches.


Subject(s)
Aureobasidium , Gene Expression Regulation, Fungal , Glucans , Melanins , Glucans/biosynthesis , Glucans/metabolism , Melanins/biosynthesis , Aureobasidium/metabolism , Aureobasidium/genetics , Fungal Proteins/genetics , Fungal Proteins/metabolism , GATA Transcription Factors/metabolism , GATA Transcription Factors/genetics , Mutation , Transcription Factors/genetics , Transcription Factors/metabolism
12.
IUBMB Life ; 76(9): 617-631, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38647201

ABSTRACT

Experimental evolution was carried out to investigate the adaptive responses of extremotolerant fungi to a stressful environment. For 12 cultivation cycles, the halotolerant black yeasts Aureobasidium pullulans and Aureobasidium subglaciale were grown at high NaCl or glycerol concentrations, and the halophilic basidiomycete Wallemia ichthyophaga was grown close to its lower NaCl growth limit. All evolved Aureobasidium spp. accelerated their growth at low water activity. Whole genomes of the evolved strains were sequenced. No aneuploidies were detected in any of the genomes, contrary to previous studies on experimental evolution at high salinity with other species. However, several hundred single-nucleotide polymorphisms were identified compared with the genomes of the progenitor strains. Two functional groups of genes were overrepresented among the genes presumably affected by single-nucleotide polymorphisms: voltage-gated potassium channels in A. pullulans at high NaCl concentration, and hydrophobins in W. ichthyophaga at low NaCl concentration. Both groups of genes were previously associated with adaptation to high salinity. Finally, most evolved Aureobasidium spp. strains were found to have increased intracellular and decreased extracellular glycerol concentrations at high salinity, suggesting that the strains have optimised their management of glycerol, their most important compatible solute. Experimental evolution therefore not only confirmed the role of potassium transport, glycerol management, and cell wall in survival at low water activity, but also demonstrated that fungi from extreme environments can further improve their growth rates under constant extreme conditions in a relatively short time and without large scale genomic rearrangements.


Subject(s)
Extremophiles , Osmotic Pressure , Extremophiles/genetics , Extremophiles/growth & development , Extremophiles/metabolism , Genome, Fungal , Glycerol/metabolism , Polymorphism, Single Nucleotide , Aureobasidium/genetics , Aureobasidium/metabolism , Sodium Chloride/metabolism , Sodium Chloride/pharmacology , Adaptation, Physiological/genetics , Salinity , Basidiomycota/genetics , Basidiomycota/growth & development , Ascomycota/genetics , Ascomycota/growth & development
13.
Mol Biol Cell ; 35(4): br10, 2024 Apr 01.
Article in English | MEDLINE | ID: mdl-38446617

ABSTRACT

Aureobasidium pullulans is a ubiquitous fungus with a wide variety of morphologies and growth modes including "typical" single-budding yeast, and interestingly, larger multinucleate yeast than can make multiple buds in a single cell cycle. The study of A. pullulans promises to uncover novel cell biology, but currently tools are lacking to achieve this goal. Here, we describe initial components of a cell biology toolkit for A. pullulans, which is used to express and image fluorescent probes for nuclei as well as components of the cytoskeleton. These tools allowed live-cell imaging of the multinucleate and multibudding cycles, revealing highly synchronous mitoses in multinucleate yeast that occur in a semiopen manner with an intact but permeable nuclear envelope. These findings open the door to using this ubiquitous polyextremotolerant fungus as a model for evolutionary cell biology.


Subject(s)
Ascomycota , Saccharomyces cerevisiae , Ascomycota/metabolism , Aureobasidium , Cytoskeleton
14.
Int J Biol Macromol ; 265(Pt 2): 131088, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38521315

ABSTRACT

Curcumin is a multitargeting nutraceutical with numerous health benefits, however, its efficacy is limited due to poor aqueous solubility and reduced bioavailability. While nano-formulation has emerged as an alternative to encounter such issues, it often involves use of toxic solvents. Microbial synthesis may be an innovative solution to address this lacuna. Present study, for the first time, reports exploitation of Aureobasidium pullulans RBF4A3 for production of nano-curcumin. For this purpose, Aureobasidium pullulans RBF4A3 was inoculated in YPD media along with curcumin (0.1 mg/mL) and incubated for 24 h, 48 h, and 72 h. Subsequently, residual sugar, biomass, EPS concentration, curcumin concentration, and curcumin nanoparticle size were measured. As a result, nano-curcumin with an average particle size of 31.63 nm and enhanced aqueous solubility was obtained after 72 h. Further, investigations suggested that pullulan, a reducing polysaccharide, played a significant role in curcumin nano-formulation. Pullulan-mediated nano-curcumin formulation, with an average particle size of 24 nm was achieved with conversion rate of around 59.19 %, suggesting improved aqueous solubility. Additionally, the anti-oxidant assay of the resulting nano-curcumin was around 53.7 % per µg. Moreover, kinetics and thermodynamic studies of pullulan-based nano-curcumin revealed that it followed first-order kinetics and was favored by elevated temperature for efficient bio-conversion. Also, various physico-chemical investigations like FT-IR, NMR, and XRD reveal that pullulan backbone remains intact while forming curcumin nanoparticle. This study may open up new avenues for synthesizing nano-polyphenols through a completely green and solvent free process with plausible diverse applications.


Subject(s)
Ascomycota , Aureobasidium , Curcumin , Glucans , Fermentation , Curcumin/pharmacology , Spectroscopy, Fourier Transform Infrared , Ascomycota/chemistry , Water/chemistry
15.
Appl Microbiol Biotechnol ; 108(1): 202, 2024 Feb 13.
Article in English | MEDLINE | ID: mdl-38349550

ABSTRACT

Aureobasidium is omnipresent and can be isolated from air, water bodies, soil, wood, and other plant materials, as well as inorganic materials such as rocks and marble. A total of 32 species of this fungal genus have been identified at the level of DNA, of which Aureobasidium pullulans is best known. Aureobasidium is of interest for a sustainable economy because it can be used to produce a wide variety of compounds, including enzymes, polysaccharides, and biosurfactants. Moreover, it can be used to promote plant growth and protect wood and crops. To this end, Aureobasidium cells adhere to wood or plants by producing extracellular polysaccharides, thereby forming a biofilm. This biofilm provides a sustainable alternative to petrol-based coatings and toxic chemicals. This and the fact that Aureobasidium biofilms have the potential of self-repair make them a potential engineered living material avant la lettre. KEY POINTS: •Aureobasidium produces products of interest to the industry •Aureobasidium can stimulate plant growth and protect crops •Biofinish of A. pullulans is a sustainable alternative to petrol-based coatings •Aureobasidium biofilms have the potential to function as engineered living materials.


Subject(s)
Aureobasidium , Biofilms , Calcium Carbonate , Crops, Agricultural , Gasoline
16.
Toxins (Basel) ; 16(2)2024 02 15.
Article in English | MEDLINE | ID: mdl-38393183

ABSTRACT

Different preventive strategies are needed to minimize the intake risks of mycotoxins, including zearalenone (ZEN). The aim of this study was to determine the ZEN adsorption ability of an autolyzed biomass preparation of polymorphic yeast Aureobasidium pullulans A.p.-3. The evaluation of the antitoxic properties of the preparation was also performed in relation to Saccharomyces cerevisiae yeast (ATCC 2366, ATCC 7090 and ATCC 9763) used as a model cell exposed to a toxic ZEN dose. The preparation at a dose of 5 mg/mL showed the adsorption of ZEN present in model systems at concentrations between 1 µg/mL to 100 µg/mL. The highest degree of adsorption was established for ZEN concentrations of 1 µg/mL and 5 µg/mL, becoming limited at higher doses of the toxin. Based on the Langmuir model of adsorption isotherms, the predicted maximum ZEN adsorption was approx. 190 µg/mL, regardless of pH. The growth of three strains of S. cerevisiae yeast cells in the medium with ZEN at concentrations within the range of 1.56 µg/mL-100 µg/mL was analyzed to determine the minimum inhibitory concentration. The growth of all tested strains was especially limited by high doses of ZEN, i.e., 50 and 100 µg/mL. The protective effect of the tested preparation was noted in relation to yeast cells exposed to toxic 100 µg/mL ZEN doses. The highest yeast cell growth (app. 36% percentage) was noted for a S. cerevisiae ATCC 9763 strain compared to the medium with ZEN but without preparation. More detailed tests determining the antitoxic mechanisms of the A. pullulans preparation are planned in the future, including cell culture bioassays and animal digestive tract models.


Subject(s)
Aureobasidium , Zearalenone , Animals , Zearalenone/toxicity , Zearalenone/chemistry , Saccharomyces cerevisiae , Adsorption , Biomass
17.
J Biosci Bioeng ; 137(5): 335-343, 2024 May.
Article in English | MEDLINE | ID: mdl-38413318

ABSTRACT

A high-yielding microbial polysaccharide-producing strain, named RM1603, was isolated from rhizosphere soil and identified by morphological and phylogenetic analysis. The extracellular polysaccharides (EPS) were identified by thin-layer chromatography and infrared spectroscopy. The fermentation conditions were optimized by single factor experiments in shake flasks and a 5-L fermentor. The results of morphological and phylogenetic tree analysis showed that RM1603 was a strain of Aureobasidium pullulans. Its microbial polysaccharide was identified as pullulan, and the EPS production capacity reached 33.07 ± 1.03 g L-1 in shake flasks. The fermentation conditions were optimized in a 5-L fermentor, and were found to encompass an initial pH of 6.5, aeration rate of 2 vvm, rotor speed of 600 rpm, and inoculum size of 2 %. Under these conditions, the pullulan yield of RM1603 reached 62.52 ± 0.24 g L-1. Thus, this study contributes RM1603 as a new isolation with high-yielding pullulan and potential application value in biotechnology.


Subject(s)
Ascomycota , Aureobasidium , Glucans , Fermentation , Phylogeny , Ascomycota/genetics , Polysaccharides/chemistry
18.
Biotechnol J ; 19(1): e2200440, 2024 Jan.
Article in English | MEDLINE | ID: mdl-37740661

ABSTRACT

It has been known that maximal liamocin production must be carried out at low environmental pH (around 3.0). In this study, it was found that the low pH was mainly caused by the secreted citric acid which is one precursor of acetyl-CoA for liamocin biosynthesis. Determination of citric acid in the culture, deletion, complementation and overexpression of the CEXA gene encoding specific citrate exporter demonstrated that the low pH was indeed caused by the secreted citric acid. Deletion, complementation and overexpression of the ACL gene encoding ATP-citric acid lyase and effects of different initial pHs and added citric acid showed that the low pH in the presence of citric acid was suitable for lysis of intracellular citric acid, liamocin production and expression of the PACC gene encoding the pH signaling transcription factor PacC. This meant that the PACC gene was an acid-expression gene. Deletion, complementation and overexpression of the PACC gene indicated that expression of the key gene cluster GAL1-EST1-PKS1 for liamocin biosynthesis was driven by the pH signaling transcription factor PacC and there was weak nitrogen catabolite repression on liamocin biosynthesis at the low pH. That was why liamocin biosynthesis was induced at a low pH in the presence of citric acid. The mechanisms of the enhanced liamocin biosynthesis by the autogenous host acid activation, together with the pH signaling pathway, were proposed.


Subject(s)
Aureobasidium , Citric Acid , Transcription Factors , Transcription Factors/genetics , Transcription Factors/metabolism , Fungal Proteins/genetics , Fungal Proteins/metabolism , Hydrogen-Ion Concentration , Gene Expression Regulation, Fungal
19.
Int J Biol Macromol ; 257(Pt 1): 128605, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38061508

ABSTRACT

Co-fermentation of multiple substrates has emerged as the most effective method to improve the yield of bioproducts. Herein, sustainable rubberwood enzymatic hydrolysates (RWH) were co-fermented by Aureobasidium pullulans to produce poly(ß-L-malic acid) (PMA), and RWH + glucose/xylose was also investigated as co-substrates. Owing to low inhibitor concentration and abundant natural nitrogen source content of RWH, a high PMA yield of 0.45 g/g and a productivity of 0.32 g/L/h were obtained by RWH substrate fermentation. After optimization, PMA yields following the fermentation of RWH + glucose and RWH + xylose reached 59.92 g/L and 53.71 g/L, respectively, which were 52 % and 36 % higher than that after the fermentation of RWH. RWH + glucose more significantly affected the correlation between PMA yield and substrate concentration than RWH + xylose. The results demonstrated that the co-fermentation of RWH co-substrate is a promising method for the synthesis of bioproducts.


Subject(s)
Aureobasidium , Polymers , Xylose , Fermentation , Polymers/metabolism , Malates , Glucose
20.
Bioresour Technol ; 393: 130122, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38040309

ABSTRACT

Aureobasidium pullulans produced poly-L-malic acid (PMA) as the main metabolite in fermentation but with relatively low productivity and yield limiting its industrial application. In this study, A. pullulans ZX-10 was engineered to overexpress cytosolic malate dehydrogenase (MDH) and pyruvate carboxylase (PYC) and PMA synthetase (PMS) using a high-copy yeast episomal plasmid with the gpdA promoter from Aspergillus nidulans. Overexpressing endogenous PMS and heterologous MDH and PYC from Aspergillus oryzae respectively increased PMA production by 19 % - 37 % (0.64 - 0.74 g/g vs. 0.54 g/g for wild type) in shake-flask fermentations, demonstrating the importance of the reductive tricarboxylic acid (rTCA) pathway in PMA biosynthesis. A. pullulans co-expressing MDH and PYC produced 96.7 g/L PMA at 0.90 g/L∙h and 0.68 g/g glucose in fed-batch fermentation, which were among the highest yield and productivity reported. The engineered A. pullulans with enhanced rTCA pathway is advantageous and promising for PMA production.


Subject(s)
Aureobasidium , Tricarboxylic Acids , Aureobasidium/metabolism , Fermentation , Malates/metabolism , Saccharomyces cerevisiae/metabolism
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