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1.
Environ Microbiol Rep ; 16(3): e13286, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38844388

ABSTRACT

Microorganisms in the rhizosphere, particularly arbuscular mycorrhiza, have a broad symbiotic relationship with their host plants. One of the major fungi isolated from the rhizosphere of Peucedanum praeruptorum is Penicillium restrictum. The relationship between the metabolites of P. restrictum and the root exudates of P. praeruptorum is being investigated. The accumulation of metabolites in the mycelium and fermentation broth of P. restrictum was analysed over different fermentation periods. Non-targeted metabolomics was used to compare the differences in intracellular and extracellular metabolites over six periods. There were significant differences in the content and types of mycelial metabolites during the incubation. Marmesin, an important intermediate in the biosynthesis of coumarins, was found in the highest amount on the fourth day of incubation. The differential metabolites were screened to obtain 799 intracellular and 468 extracellular differential metabolites. Kyoto Encyclopedia of Genes and Genomes pathway enrichment analysis showed that the highly enriched extracellular metabolic pathways were alanine, aspartate and glutamate metabolism, glyoxylate and dicarboxylate metabolism, and terpenoid backbone biosynthesis. In addition, the enrichment analysis associated with intracellular and extracellular ATP-binding cassette transporter proteins revealed that some ATP-binding cassette transporters may be involved in the transportation of certain amino acids and carbohydrates. Our results provide some theoretical basis for the regulatory mechanisms between the rhizosphere and the host plant and pave the way for the heterologous production of furanocoumarin.


Subject(s)
Fermentation , Mycelium , Penicillium , Rhizosphere , Mycelium/metabolism , Mycelium/growth & development , Penicillium/metabolism , Penicillium/genetics , Plant Roots/microbiology , Metabolome , Metabolomics , Soil Microbiology , Metabolic Networks and Pathways/genetics
2.
Appl Microbiol Biotechnol ; 108(1): 358, 2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38829381

ABSTRACT

Biosurfactants are in demand by the global market as natural commodities suitable for incorporation into commercial products or utilization in environmental applications. Fungi are promising producers of these molecules and have garnered interest also for their metabolic capabilities in efficiently utilizing recalcitrant and complex substrates, like hydrocarbons, plastic, etc. Within this framework, biosurfactants produced by two Fusarium solani fungal strains, isolated from plastic waste-contaminated landfill soils, were analyzed. Mycelia of these fungi were grown in the presence of 5% olive oil to drive biosurfactant production. The characterization of the emulsifying and surfactant capacity of these extracts highlighted that two different components are involved. A protein was purified and identified as a CFEM (common in fungal extracellular membrane) containing domain, revealing a good propensity to stabilize emulsions only in its aggregate form. On the other hand, an unidentified cationic smaller molecule exhibits the ability to reduce surface tension. Based on the 3D structural model of the protein, a plausible mechanism for the formation of very stable aggregates, endowed with the emulsifying ability, is proposed. KEY POINTS: • Two Fusarium solani strains are analyzed for their surfactant production. • A cationic surfactant is produced, exhibiting the ability to remarkably reduce surface tension. • An identified protein reveals a good propensity to stabilize emulsions only in its aggregate form.


Subject(s)
Fungal Proteins , Fusarium , Surface-Active Agents , Fusarium/metabolism , Fusarium/genetics , Fungal Proteins/metabolism , Fungal Proteins/chemistry , Fungal Proteins/genetics , Surface-Active Agents/metabolism , Surface-Active Agents/chemistry , Emulsifying Agents/metabolism , Emulsifying Agents/chemistry , Soil Microbiology , Emulsions/chemistry , Emulsions/metabolism , Surface Tension , Cysteine/metabolism , Cysteine/chemistry , Olive Oil/metabolism , Olive Oil/chemistry , Mycelium/metabolism
3.
Int J Med Mushrooms ; 26(5): 25-41, 2024.
Article in English | MEDLINE | ID: mdl-38780421

ABSTRACT

Ganoderic acids (GAs) are the main active ingredient of Ganoderma lucidum, which has been widely accepted as a medicinal mushroom. Due to the low yield of GAs produced by liquid cultured Ganoderma mycelium and solid cultured fruiting bodies, the commercial production and clinical application of GAs are limited. Therefore, it is important to increase the yield of GA in G. lucidum. A comprehensive literature search was performed with no set data range using the following keywords such as "triterpene," "ganoderic acids," "Ganoderma lucidum," and "Lingzhi" within the main databases including Web of Science, PubMed, and China National Knowledge Infrastructure (CNKI). The data were screened using titles and abstracts and those relevant to the topic were included in the paper and was not limited to studies published in English. Present review focuses on the four aspects: fermentation conditions and substrate, extrinsic elicitor, genetic engineering, and mutagenesis, which play significant roles in increasing triterpene acids production, thus providing an available reference for further research on G. lucidum fermentation.


Subject(s)
Fermentation , Reishi , Triterpenes , Triterpenes/metabolism , Reishi/metabolism , Reishi/genetics , Reishi/chemistry , Genetic Engineering , Fruiting Bodies, Fungal/metabolism , Fruiting Bodies, Fungal/chemistry , Mutagenesis , Mycelium/metabolism
4.
J Agric Food Chem ; 72(19): 11002-11012, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38700031

ABSTRACT

Due to the increasing demand for natural food ingredients, including taste-active compounds, enzyme-catalyzed conversions of natural substrates, such as flavonoids, are promising tools to align with the principles of Green Chemistry. In this study, a novel O-methyltransferase activity was identified in the mycelium of Lentinula edodes, which was successfully applied to generate the taste-active flavonoids hesperetin, hesperetin dihydrochalcone, homoeriodictyol, and homoeriodictyol dihydrochalcone. Furthermore, the mycelium-mediated OMT activity allowed for the conversion of various catecholic substrates, yielding their respective (iso-)vanilloids, while monohydroxylated compounds were not converted. By means of a bottom-up proteomics approach, three putative O-methyltransferases were identified, and subsequently, synthetic, codon-optimized genes were heterologously expressed in Escherichia coli. The purified enzymes confirmed the biocatalytic O-methylation activity against targeted flavonoids containing catechol motifs.


Subject(s)
Biocatalysis , Catechol O-Methyltransferase , Flavonoids , Fungal Proteins , Shiitake Mushrooms , Shiitake Mushrooms/enzymology , Shiitake Mushrooms/genetics , Shiitake Mushrooms/chemistry , Shiitake Mushrooms/metabolism , Catechol O-Methyltransferase/genetics , Catechol O-Methyltransferase/metabolism , Catechol O-Methyltransferase/chemistry , Fungal Proteins/genetics , Fungal Proteins/metabolism , Fungal Proteins/chemistry , Flavonoids/chemistry , Flavonoids/metabolism , Flavoring Agents/metabolism , Flavoring Agents/chemistry , Mycelium/enzymology , Mycelium/genetics , Mycelium/chemistry , Mycelium/metabolism , Substrate Specificity
5.
Int J Biol Macromol ; 270(Pt 2): 132227, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38734339

ABSTRACT

Fusarium crown rot, caused by Fusarium pseudograminearum, is a devastating disease affecting the yield and quality of cereal crops. Peroxisomes are single-membrane organelles that play a critical role in various biological processes in eukaryotic cells. To functionally characterise peroxisome biosynthetic receptor proteins FpPEX5 and FpPEX7 in F. pseudograminearum, we constructed deletion mutants, ΔFpPEX5 and ΔFpPEX7, and complementary strains, ΔFpPEX5-C and ΔFpPEX7-C, and analysed the functions of FpPEX5 and FpPEX7 proteins using various phenotypic observations. The deletion of FpPEX5 and FpPEX7 resulted in a significant deficiency in mycelial growth and conidiation and blocked the peroxisomal targeting signal 1 and peroxisomal targeting signal 2 pathways, which are involved in peroxisomal matrix protein transport, increasing the accumulation of lipid droplets and reactive oxygen species. The deletion of FpPEX5 and FpPEX7 may reduce the formation of toxigenic bodies and decrease the pathogenicity of F. pseudograminearum. These results indicate that FpPEX5 and FpPEX7 play vital roles in the growth, asexual reproduction, virulence, and fatty acid utilisation of F. pseudograminearum. This study provides a theoretical basis for controlling stem rot in wheat.


Subject(s)
Fungal Proteins , Fusarium , Peroxisomes , Fusarium/pathogenicity , Fusarium/genetics , Fusarium/metabolism , Fusarium/growth & development , Fungal Proteins/genetics , Fungal Proteins/metabolism , Virulence/genetics , Peroxisomes/metabolism , Peroxisomes/genetics , Trichothecenes/metabolism , Plant Diseases/microbiology , Spores, Fungal/growth & development , Triticum/microbiology , Reactive Oxygen Species/metabolism , Peroxisome-Targeting Signal 1 Receptor/genetics , Peroxisome-Targeting Signal 1 Receptor/metabolism , Gene Deletion , Gene Expression Regulation, Fungal , Peroxisomal Targeting Signal 2 Receptor , Mycelium/growth & development , Mycelium/metabolism
6.
Sci Adv ; 10(16): eadl3419, 2024 Apr 19.
Article in English | MEDLINE | ID: mdl-38640242

ABSTRACT

Plant biomass conversion by saprotrophic fungi plays a pivotal role in terrestrial carbon (C) cycling. The general consensus is that fungi metabolize carbohydrates, while lignin is only degraded and mineralized to CO2. Recent research, however, demonstrated fungal conversion of 13C-monoaromatic compounds into proteinogenic amino acids. To unambiguously prove that polymeric lignin is not merely degraded, but also metabolized, carefully isolated 13C-labeled lignin served as substrate for Agaricus bisporus, the world's most consumed mushroom. The fungus formed a dense mycelial network, secreted lignin-active enzymes, depolymerized, and removed lignin. With a lignin carbon use efficiency of 0.14 (g/g) and fungal biomass enrichment in 13C, we demonstrate that A. bisporus assimilated and further metabolized lignin when offered as C-source. Amino acids were high in 13C-enrichment, while fungal-derived carbohydrates, fatty acids, and ergosterol showed traces of 13C. These results hint at lignin conversion via aromatic ring-cleaved intermediates to central metabolites, underlining lignin's metabolic value for fungi.


Subject(s)
Agaricus , Carbon , Lignin , Lignin/metabolism , Carbon/metabolism , Mycelium/metabolism , Carbohydrates , Amino Acids
7.
Int J Biol Macromol ; 268(Pt 1): 131686, 2024 May.
Article in English | MEDLINE | ID: mdl-38643923

ABSTRACT

Despite a fair amount of lignin conversion during mycelial growth, previous structural analyses have not yet revealed how lignin changes continuously and what the relationship is between lignin and ligninolytic enzymes. To clarify these aspects, Quercus acutissima sawdust attaching Ganoderma lucidum mycelium collected from different growth stage was subjected to analysis of lignin structure and ligninolytic enzyme activity. Two key periods of lignin degradation are found during the cultivation of G. lucidum: hypha rapid growth period and primordium formation period. In the first stage, laccase activity is associated with the opening of structures such as methoxyls, ß-O-4' substructures and guaiacyl units in lignin, as well as the shortening of lignin chains. Manganese peroxidases and lignin peroxidases are more suitable for degrading short chain lignin. The structure of phenylcoumarans and syringyl changes greatly in the second stage. The results from sawdust attaching mycelium provide new insights to help improve the cultivation substrate formulation of G. lucidum and understand biomass valorization better.


Subject(s)
Lignin , Mycelium , Quercus , Reishi , Lignin/metabolism , Lignin/chemistry , Quercus/metabolism , Quercus/chemistry , Quercus/growth & development , Mycelium/metabolism , Mycelium/growth & development , Reishi/metabolism , Reishi/growth & development , Wood/chemistry , Laccase/metabolism , Peroxidases/metabolism , Biomass
8.
mSphere ; 9(5): e0010024, 2024 May 29.
Article in English | MEDLINE | ID: mdl-38651868

ABSTRACT

The cellular surface of the pathogenic filamentous fungus Aspergillus fumigatus is enveloped in a mannose layer, featuring well-established fungal-type galactomannan and O-mannose-type galactomannan. This study reports the discovery of cell wall component in A. fumigatus mycelium, which resembles N-glycan outer chains found in yeast. The glycosyltransferases involved in its biosynthesis in A. fumigatus were identified, with a focus on two key α-(1→2)-mannosyltransferases, Mnn2 and Mnn5, and two α-(1→6)-mannosyltransferases, Mnn9 and Van1. In vitro examination revealed the roles of recombinant Mnn2 and Mnn5 in transferring α-(1→2)-mannosyl residues. Proton nuclear magnetic resonance (1H-NMR) analysis of cell wall extracts from the ∆mnn2∆mnn5 strain indicated the existence of an α-(1→6)-linked mannan backbone in the A. fumigatus mycelium, with Mnn2 and Mnn5 adding α-(1→2)-mannosyl residues to this backbone. The α-(1→6)-linked mannan backbone was absent in strains where mnn9 or van1 was disrupted in the parental ∆mnn2∆mnn5 strain in A. fumigatus. Mnn9 and Van1 functioned as α-(1→6)-linked mannan polymerases in heterodimers when co-expressed in Escherichia coli, indicating their crucial role in biosynthesizing the α-(1→6)-linked mannan backbone. Disruptions of these mannosyltransferases did not affect fungal-type galactomannan biosynthesis. This study provides insights into the complexity of fungal cell wall architecture and a better understanding of mannan biosynthesis in A. fumigatus. IMPORTANCE: This study unravels the complexities of mannan biosynthesis in A. fumigatus, a key area for antifungal drug discovery. It reveals the presence of α-(1→6)-linked mannan structures resembling yeast N-glycan outer chains in A. fumigatus mycelium, offering fresh insights into the fungal cell wall's design. Key enzymes, Mnn2, Mnn5, Mnn9, and Van1, are instrumental in this process, with Mnn2 and Mnn5 adding specific mannose residues and Mnn9 and Van1 assembling the α-(1→6)-linked mannan structures. Although fungal-type galactomannan's presence in the cell wall is known, the existence of an α-(1→6)-linked mannan adds a new dimension to our understanding. This intricate web of mannan biosynthesis opens avenues for further exploration and enhances our understanding of fungal cell wall dynamics, paving the way for targeted drug development.


Subject(s)
Aspergillus fumigatus , Cell Wall , Mannans , Mycelium , Polysaccharides , Aspergillus fumigatus/genetics , Aspergillus fumigatus/chemistry , Aspergillus fumigatus/metabolism , Mannans/metabolism , Mannans/chemistry , Cell Wall/chemistry , Cell Wall/metabolism , Mycelium/chemistry , Mycelium/metabolism , Polysaccharides/chemistry , Polysaccharides/metabolism , Mannosyltransferases/genetics , Mannosyltransferases/metabolism , Mannosyltransferases/chemistry , Fungal Proteins/genetics , Fungal Proteins/chemistry , Fungal Proteins/metabolism , Galactose/analogs & derivatives
9.
Food Funct ; 15(7): 3731-3743, 2024 Apr 02.
Article in English | MEDLINE | ID: mdl-38489162

ABSTRACT

Pleurotus tuber-regium (PTR) has been proved to have obvious pharmacological properties. In this study, a polysaccharide was extracted from the mycelium of PTR and administered to DSS-induced colitis mice to clarify the protective effect and mechanism of the PTR polysaccharide (PTRP) on colitis. The results showed that PTRP significantly improved the clinical symptoms and intestinal tissue damage caused by colitis and inhibited the secretion of pro-inflammatory cytokines and myeloperoxidase activity, while the levels of oxidative stress factors in mice decreased and the antioxidant capacity increased. The 16S rRNA sequencing of the mouse cecum content showed that PTRP changed the composition of gut microbiota, and the diversity and abundance of beneficial bacteria increased. In addition, PTRP also enhanced the production of short-chain fatty acids by regulating gut microbiota. In conclusion, our study shows that PTRP has the potential to relieve IBD symptoms and protect intestinal function by regulating inflammatory cytokines, oxidative stress and gut microbiota.


Subject(s)
Colitis , Gastrointestinal Microbiome , Pleurotus , Mice , Animals , Cytokines/metabolism , RNA, Ribosomal, 16S/genetics , Colitis/chemically induced , Colitis/drug therapy , Colitis/microbiology , Oxidative Stress , Antioxidants/pharmacology , Polysaccharides/pharmacology , Mycelium/metabolism , Dextran Sulfate/adverse effects , Mice, Inbred C57BL , Disease Models, Animal , Colon/metabolism
10.
Environ Res ; 252(Pt 1): 118780, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38555089

ABSTRACT

In this experiment, the prepared tea biochar-cellulose@LDH material (TB-CL@LDH) was combined with mycelium pellets to form the composite mycelial pellets (CMP), then assembled and immobilized with strains Pseudomonas sp. Y1 and Cupriavidus sp. ZY7 to construct a bioreactor. At the best operating parameters, the initial concentrations of phosphate (PO43--P), ammonia nitrogen (NH4+-N), chemical oxygen demand (COD), zinc (Zn2+), and phenol were 22.3, 25.0, 763.8, 1.0, and 1.0 mg L-1, the corresponding removal efficiencies were 80.4, 87.0, 83.4, 91.8, and 96.6%, respectively. Various characterization analyses demonstrated that the strain Y1 used the additional carbon source produced by the strain ZY7 degradation of cellulose to enhance the removal of composite pollutants and clarified the principle of Zn2+ and PO43--P removal by adsorption, co-precipitation and biomineralization. Pseudomonas and Cupriavidus were the dominant genera according to the high-throughput sequencing. As shown by KEGG results, nitrification and denitrification genes were affected by phenol. The study offers prospects for the simultaneous removal of complex pollutants consisting of NH4+-N, PO43--P, Zn2+, and phenol.


Subject(s)
Ammonia , Bioreactors , Cellulose , Mycelium , Phenol , Phosphates , Zinc , Bioreactors/microbiology , Cellulose/chemistry , Cellulose/metabolism , Mycelium/metabolism , Phosphates/metabolism , Ammonia/metabolism , Nitrogen/metabolism , Biodegradation, Environmental , Pseudomonas/metabolism , Cupriavidus/metabolism , Cupriavidus/genetics , Water Pollutants, Chemical/analysis , Charcoal
11.
Int J Med Mushrooms ; 26(1): 55-66, 2024.
Article in English | MEDLINE | ID: mdl-38305262

ABSTRACT

The liver was regarded as the most important metabolic and detoxification organ in vivo, and Morchella esculenta had been reported as the admittedly rare edible fungus belonging to Ascomycetes contributing to the abundant bioactivities. The objective of this study aimed to confirm the potential antioxidant activities of selenium mycelium polysaccharides (Se-MIP) from M. esculenta against alcoholic liver diseases (ALD) in mice. The results indicated that a selenium concentration of 25 µg/mL exhibited potential in vitro antioxidant capacities of Se-MIP. The in vivo mice results demonstrated that Se-MIP showed potential anti-ALD effects by improving the antioxidant activities and alleviating the hepatic dysfunctions. The present conclusions suggested that Se-MIP could be used as a candidate on improving ALD and its complications for further clinical investigations.


Subject(s)
Agaricales , Ascomycota , Liver Diseases, Alcoholic , Selenium , Mice , Animals , Antioxidants/pharmacology , Antioxidants/metabolism , Selenium/metabolism , Liver Diseases, Alcoholic/drug therapy , Liver Diseases, Alcoholic/prevention & control , Ascomycota/metabolism , Polysaccharides/pharmacology , Polysaccharides/metabolism , Agaricales/metabolism , Mycelium/metabolism
12.
Waste Manag ; 175: 245-253, 2024 Mar 01.
Article in English | MEDLINE | ID: mdl-38219462

ABSTRACT

Gentamicin mycelium residues (GMRs) abundant in organic substances were generated during the production of gentamicin. Inappropriate handling techniques not only waste valuable resources, they could also result in residual gentamicin into the natural environment, leading to the generation of antibiotic resistance genes (ARGs), which would cause a significant threat to ecological system and human health. In the present work, the effects of thermal treatment on the removal of residual gentamicin in GMRs, as well as the changes of associated ARGs abundance, antimicrobial activity and bioresources properties were investigated. The results indicated that the hazards of GMRs was significantly reduced through thermal treatment. The degradation rate of residual gentamicin in GMRs reached 100 %, the total abundance of gentamicin resistance genes declined from 8.20 to 1.14 × 10-5 and the antibacterial activity of the decomposition products of GMRs on Vibrio fischeri was markedly reduced at 200 °C for 120 min. Additionally, the thermal treatment remarkably influenced the bioresource properties of GMRs-decomposition products. The release of soluble organic matters including soluble carbohydrates and soluble proteins have been enhanced in GMRs, while excessively high temperatures could lead to a reduction of nutrient substances. Generally, thermal treatment technology was a promising strategy for synergistic reducing hazards and utilizing bioresources of GMRs.


Subject(s)
Anti-Bacterial Agents , Gentamicins , Humans , Gentamicins/pharmacology , Anti-Bacterial Agents/pharmacology , Drug Resistance, Microbial/genetics , Nutrients , Mycelium/metabolism , Genes, Bacterial
13.
J Trace Elem Med Biol ; 83: 127381, 2024 May.
Article in English | MEDLINE | ID: mdl-38211406

ABSTRACT

BACKGROUND: Fungi absorb and solubilize a broad spectrum of heavy metals such as vanadium (V), which makes them a main route of its entry into the biosphere. V as vanadate (V5+) is a potential medical agent due to its many metabolic actions such as interaction with phosphates in the cell, and especially its insulin-mimetic activity. Antidiabetic activity of V-enriched fungi has been studied in recent years, but the biological and chemical bases of vanadium action and status in fungi in general are poorly understood, with almost no information on edible fungi. METHODS: This manuscript gives a deeper insight into the interaction of V5+ with Coprinellus truncorum, an edible autochthonous species widely distributed in Europe and North America. Vanadium uptake and accumulation as V5+ was studied by 51V NMR, while the reducing abilities of the mycelium were determined by EPR. 31P NMR was used to determine its effects on the metabolism of phosphate compounds, with particular focus on phosphate sugars identified using HPLC. RESULTS: Vanadate enters the mycelium in monomeric form and shows no immediate detrimental effects on intracellular pH or polyphosphate (PPc) levels, even when applied at physiologically high concentrations (20 mM Na3VO4). Once absorbed, it is partially reduced to less toxic vanadyl (V4+) with notable unreduced portion, which leads to a large increase in phosphorylated sugar levels, especially glucose-1-phosphate (G1P) and fructose-6-phosphate (F6P). CONCLUSIONS: Preservation of pH and especially PPc reflects maintenance of the energy status of the mycelium, i.e., its tolerance to high V5+ concentrations. Rise in G1P and F6P levels implies that the main targets of V5+ are most likely phosphoglucomutase and phosphoglucokinase(s), enzymes involved in early stages of G6P transformation in glycolysis and glycogen metabolism. This study recommends C. truncorum for further investigation as a potential antidiabetic agent.


Subject(s)
Agaricales , Vanadates , Vanadium , Vanadium/analysis , Vanadates/chemistry , Biomass , Phosphates/analysis , Mycelium/metabolism
14.
Int J Biol Macromol ; 254(Pt 2): 127834, 2024 Jan.
Article in English | MEDLINE | ID: mdl-37926312

ABSTRACT

Hirsutella sinensis is the anamorph of Ophiocordyceps sinensis, and its mycelia has been used to effectively treat a variety of hepatobiliary diseases in clinical practice. In the present study, we performed a systematic study on the composition and structure of its polysaccharides, and then employed a TGF-ß1-induced human intrahepatic bile duct epithelial cell-epithelial-mesenchymal transition (HIBEC-EMT) model to investigate their effects on treating primary biliary cholangitis (PBC) based on hepatic bile duct fibrosis. Four polysaccharide fractions were obtained from H. sinensis mycelia by hot-water extraction, DEAE-cellulose column and gradient ethanol precipitation separation. HSWP-1a was an α-(1,4)-D-glucan; HSWP-1b and HSWP-1d mainly consisted of mannoglucans with a backbone composed of 1,4-linked α-D-Glcp and 1,4,6-linked α-D-Manp residues branched at O-6 of the 1,4-linked α-D-Glcp with a 1-linked α-D-Glcp as a side chain; and HSWP-1c mainly contained galactomannoglucans. These polysaccharide fractions protected HIBECs from a TGF-ß1-induced EMT, according to HIBEC morphological changes, cell viability, decreased E-cadherin and ZO-1 expression, and increased vimentin and collagen I expression. Furthermore, the effects of the polysaccharides might be mediated by inhibiting the activation of the TGF-ß/Smad signaling pathway, which attenuated hepatic bile duct fibrosis and potential PBC effects.


Subject(s)
Cordyceps , Liver Diseases , Humans , Transforming Growth Factor beta1/pharmacology , Transforming Growth Factor beta1/metabolism , Cordyceps/metabolism , Epithelial-Mesenchymal Transition , Epithelial Cells , Bile Ducts, Intrahepatic/metabolism , Liver Diseases/metabolism , Fibrosis , Polysaccharides/pharmacology , Polysaccharides/metabolism , Mycelium/metabolism , Cadherins/metabolism
15.
PLoS One ; 18(12): e0295573, 2023.
Article in English | MEDLINE | ID: mdl-38127967

ABSTRACT

The aim of this study was to investigate the effect of zinc sulphate on the activities of different enzymes and metabolites of Pholiota adiposa. In the experiment, we used the conventional enzyme activity assay to determine the changes of six indicators, including protein content, laccase activity, cellulase activity, amylase activity and polyphenol oxidase activity, under different concentrations of zinc sulphate treatment. The results showed that the activities of amylase, laccase, cellulase and peroxidase were Zn2+(200)>Zn2+(0)>Zn2+(400)>Zn2+(800).The activities of catalase and superoxide dismutase were Zn2+(200)>Zn2+(400)>Zn2+(800), and zinc sulfate could significantly affect the activity of polylipic squamase in a dose-dependent manner. Further correlation analysis showed that all six enzyme activities were significantly correlated with each other (P<001); the results of the statistical model test showed that the regression model constructed was statistically significant; overall the residuals met the conditions of normal distribution, and the corresponding points of different enzyme activities Q-Q' were more evenly distributed around y = x, and all fell in the 90% acceptance interval, thus the series was considered to obey normal distribution; the results of the principal The results of the principal component analysis showed that principal component 1 was positively correlated with amylase, laccase and cellulase. Principal component 2 was positively correlated with superoxide dismutase and catalase, and negatively correlated with peroxidase. The analysis of Metabonomic data revealed that zinc sulfate had a significant impact on the expression of metabolites in the mycelium. Moreover, varying concentrations of zinc sulfate exerted significant effects on the levels of amino acids, organic acids, and gluconic acid. This conclusion was confirmed by other experimental data. The results of the study provide a scientific reference for better research, development and utilization of Pholiota adiposa.


Subject(s)
Cellulases , Zinc Sulfate , Zinc Sulfate/pharmacology , Catalase/metabolism , Laccase , Superoxide Dismutase/metabolism , Peroxidases , Peroxidase , Zinc , Amylases , Mycelium/metabolism
16.
Braz J Microbiol ; 54(4): 2577-2585, 2023 Dec.
Article in English | MEDLINE | ID: mdl-37442880

ABSTRACT

Scedosporium apiospermum is a widespread, emerging, and multidrug-resistant filamentous fungus that can cause localized and disseminated infections. The initial step in the infection process involves the adhesion of the fungus to host cells and/or extracellular matrix components. However, the mechanisms of adhesion involving surface molecules in S. apiospermum are not well understood. Previous studies have suggested that the binding of fungal receptors to fibronectin enhances its ability to attach to and infect host cells. The present study investigated the effects of fibronectin on adhesion events of S. apiospermum. The results revealed that conidial cells were able to bind to both immobilized and soluble human fibronectin in a typically dose-dependent manner. Moreover, fibronectin binding was virtually abolished in trypsin-treated conidia, suggesting the proteinaceous nature of the binding site. Western blotting assay, using fibronectin and anti-fibronectin antibody, evidenced 7 polypeptides with molecular masses ranging from 55 to 17 kDa in both conidial and mycelial extracts. Fibronectin-binding molecules were localized by immunofluorescence and immunocytochemistry microscopies at the cell wall and in intracellular compartments of S. apiospermum cells. Furthermore, a possible function for the fibronectin-like molecules of S. apiospermum in the interaction with host lung cells was assessed. Conidia pre-treated with soluble fibronectin showed a significant reduction in adhesion to either epithelial or fibroblast lung cells in a classically dose-dependent manner. Similarly, the pre-treatment of the lung cells with anti-fibronectin antibodies considerably diminished the adhesion. Collectively, the results demonstrated the presence of fibronectin-binding molecules in S. apiospermum cells and their role in adhesive events.


Subject(s)
Scedosporium , Humans , Fibronectins/metabolism , Mycelium/metabolism , Lung
17.
Bioresour Technol ; 385: 129376, 2023 Oct.
Article in English | MEDLINE | ID: mdl-37355140

ABSTRACT

In order to achieve an efficient microbial material with dual functions of self-immobilization and sulfamethazine (SMZ) degradation, this study explored the pelletization technique utilizing mycelium fragments of Irpex lacteus WRF-IL and systematically examined the pellets formation conditions and degradation capability. The Box-Behnken design results demonstrated that pure mycelium fragments, broken by frosted glass beads, could be rapidly self-immobilized to form white rot mycelial pellets (WRMPs) within 24 h, serving as the pelleting core. These WRMPs could completely remove SMZ as the sole carbon source within 20 h. The addition of sucrose expedited this process, achieving complete removal within only 14 h. Kinetic analysis showed that WRMPs could potentially remove SMZ at higher concentrations (>25 mg/L). Biodegradation was the primary pathway of SMZ removal. Seven intermediates were identified by QTOF LC/MS, and three transformation pathways initiated by SO2 overflow, molecular rearrangement, and aniline moiety oxidation were deduced.


Subject(s)
Carbon , Sulfamethazine , Sulfamethazine/metabolism , Carbon/metabolism , Kinetics , Biodegradation, Environmental , Mycelium/metabolism
18.
Curr Biol ; 33(11): R560-R573, 2023 06 05.
Article in English | MEDLINE | ID: mdl-37279689

ABSTRACT

For more than 400 million years, mycorrhizal fungi and plants have formed partnerships that are crucial to the emergence and functioning of global ecosystems. The importance of these symbiotic fungi for plant nutrition is well established. However, the role of mycorrhizal fungi in transporting carbon into soil systems on a global scale remains under-explored. This is surprising given that ∼75% of terrestrial carbon is stored belowground and mycorrhizal fungi are stationed at a key entry point of carbon into soil food webs. Here, we analyze nearly 200 datasets to provide the first global quantitative estimates of carbon allocation from plants to the mycelium of mycorrhizal fungi. We estimate that global plant communities allocate 3.93 Gt CO2e per year to arbuscular mycorrhizal fungi, 9.07 Gt CO2e per year to ectomycorrhizal fungi, and 0.12 Gt CO2e per year to ericoid mycorrhizal fungi. Based on this estimate, 13.12 Gt of CO2e fixed by terrestrial plants is, at least temporarily, allocated to the underground mycelium of mycorrhizal fungi per year, equating to ∼36% of current annual CO2 emissions from fossil fuels. We explore the mechanisms by which mycorrhizal fungi affect soil carbon pools and identify approaches to increase our understanding of global carbon fluxes via plant-fungal pathways. Our estimates, although based on the best available evidence, are imperfect and should be interpreted with caution. Nonetheless, our estimations are conservative, and we argue that this work confirms the significant contribution made by mycorrhizal associations to global carbon dynamics. Our findings should motivate their inclusion both within global climate and carbon cycling models, and within conservation policy and practice.


Subject(s)
Mycorrhizae , Mycorrhizae/metabolism , Ecosystem , Carbon/metabolism , Fungi/metabolism , Plants/metabolism , Soil , Mycelium/metabolism , Plant Roots/metabolism , Soil Microbiology
19.
FEMS Microbiol Lett ; 3702023 01 17.
Article in English | MEDLINE | ID: mdl-37081785

ABSTRACT

Hydrophobins, which are small-secreted proteins with both hydrophobic and hydrophilic parts, can self-assemble into an amphiphilic film at the air-water interface, helping the fungus to form aerial hyphae. In the agaricomycete Pleurotus ostreatus, more than 20 putative hydrophobin genes have been predicted. Of these, two hydrophobin genes, vmh2 and vmh3, are predominantly expressed in the vegetative mycelium. In this study, we focused on the functions of Vmh2 and Vmh3 in vegetative mycelia. Based on the observation of the mycelial cross-section by transmission electron microscopy and the disappearance time of water droplets on the mycelial surface, Vmh2 and Vmh3 were considered essential for the maintenance of the surface hydrophobicity of the mycelium. The Δvmh3 and Δvmh2Δvmh3 strains exhibited relatively slower aerial mycelia formation on a liquid medium, and no significant alteration was observed in Δvmh2 strains. Only the Δvmh3 and Δvmh2Δvmh3 strains grew slower than the wild-type strain under stress conditions involving SDS and H2O2 on agar plates. This study revealed possible distinct roles for these hydrophobins in stress resistance. These results suggest that Agaricomycetes, including P. ostreatus, have evolved to possess multiple different hydrophobins as a means of adapting to various environments.


Subject(s)
Pleurotus , Pleurotus/genetics , Pleurotus/metabolism , Hydrogen Peroxide/metabolism , Mycelium/genetics , Mycelium/metabolism , Hyphae/genetics , Water/chemistry , Fungal Proteins/metabolism
20.
Int J Med Mushrooms ; 25(2): 49-54, 2023.
Article in English | MEDLINE | ID: mdl-36749056

ABSTRACT

Species of the genus Morchella are highly prized worldwide for their excellent flavor and high medicinal value. In recent years, artificial cultivations of medicinal fungi with many advantages have elicited great interest as a promising alternative to produce certain valuable metabolites. Therefore, the secondary metabolites of fermented M. importuna belonging to the black morel clade isolated from China were investigated. The strain was cultured in a fermentation tank in PDB liquid medium by two-step method. The mycelia and fermentation broth were extracted by ethyl acetate. The secondary metabolites were separated and purified by repeated silica gel column chromatography. Structures of compounds were determined by NMR data and references. One new natural compound (1) and six known compounds (2-7) were obtained. Compounds 1, 2, 4, and 5 were first isolated from genus Morchella and compounds 3, 6, and 7 are first isolated from species M. importuna.


Subject(s)
Agaricales , Ascomycota , Mycelium/metabolism , Ascomycota/chemistry , China
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