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1.
Sci Rep ; 14(1): 15365, 2024 07 04.
Article in English | MEDLINE | ID: mdl-38965302

ABSTRACT

Endophytic fungal-based biopesticides are sustainable and ecologically-friendly biocontrol agents of several pests and diseases. However, their potential in managing tomato fusarium wilt disease (FWD) remains unexploited. This study therefore evaluated effectiveness of nine fungal isolates against tomato fusarium wilt pathogen, Fusarium oxysporum f. sp. lycopersici (FOL) in vitro using dual culture and co-culture assays. The efficacy of three potent endophytes that inhibited the pathogen in vitro was assessed against FWD incidence, severity, and ability to enhance growth and yield of tomatoes in planta. The ability of endophytically-colonized tomato (Solanum lycopersicum L.) plants to systemically defend themselves upon exposure to FOL were also assessed through defence genes expression using qPCR. In vitro assays showed that endophytes inhibited and suppressed FOL mycelial growth better than entomopathogenic fungi (EPF). Endophytes Trichoderma asperellum M2RT4, Hypocrea lixii F3ST1, Trichoderma harzianum KF2R41, and Trichoderma atroviride ICIPE 710 had the highest (68.84-99.61%) suppression and FOL radial growth inhibition rates compared to EPF which exhibited lowest (27.05-40.63%) inhibition rates. Endophytes T. asperellum M2RT4, H. lixii F3ST1 and T. harzianum KF2R41 colonized all tomato plant parts. During the in planta experiment, endophytically-colonized and FOL-infected tomato plants showed significant reduction of FWD incidence and severity compared to non-inoculated plants. In addition, these endophytes contributed to improved growth promotion parameters and yield. Moreover, there was significantly higher expression of tomato defence genes in T. asperellum M2RT4 colonized than in un-inoculated tomato plants. These findings demonstrated that H. lixii F3ST1 and T. asperellum M2RT4 are effective biocontrol agents against FWD and could sustainably mitigate tomato yield losses associated with fusarium wilt.


Subject(s)
Endophytes , Fusarium , Plant Diseases , Solanum lycopersicum , Fusarium/pathogenicity , Fusarium/physiology , Solanum lycopersicum/microbiology , Solanum lycopersicum/growth & development , Plant Diseases/microbiology , Plant Diseases/prevention & control , Endophytes/physiology , Hypocreales/physiology , Hypocreales/pathogenicity , Antibiosis , Pest Control, Biological/methods , Biological Control Agents
2.
PeerJ ; 12: e17578, 2024.
Article in English | MEDLINE | ID: mdl-38948222

ABSTRACT

In the eastern coastal regions of Odisha, wilt caused by Fusarium oxysporum f. sp.capsici is an extremely damaging disease in chilli. This disease is very difficult to manage with chemical fungicides since it is soil-borne in nature. The natural rhizosphere soil of the chilli plant was used to isolate and test bacterial antagonists for their effectiveness and ability to promote plant growth. Out of the fifty-five isolates isolated from the rhizosphere of healthy chilli plants, five isolates, namely Iso 01, Iso 17, Iso 23, Iso 24, and Iso 32, showed their highly antagonistic activity against F. oxysporum f. sp. capsici under in vitro. In a dual culture, Iso 32 (73.3%) and Iso 24 (71.5%) caused the highest level of pathogen inhibition. In greenhouse trials, artificially inoculated chilli plants treated with Iso 32 (8.8%) and Iso 24 (10.2%) had decreased percent disease incidence (PDI), with percent disease reduction over control of 85.6% and 83.3%, respectively. Iso 32 and Iso 24 treated chilli seeds have shown higher seed vigor index of 973.7 and 948.8, respectively, as compared to untreated control 636.5. Furthermore, both the isolates significantly increased plant height as well as the fresh and dry weight of chilli plants under the rolled paper towel method. Morphological, biochemical, and molecular characterization identified Bacillus amyloliquefaciens (MH491049) as the key antagonist. This study demonstrates that rhizobacteria, specifically Iso 32 and Iso 24, can effectively protect chilli plants against Fusarium wilt while promoting overall plant development. These findings hold promise for sustainable and eco-friendly management of Fusarium wilt in chilli cultivation.


Subject(s)
Fusarium , Plant Diseases , Rhizosphere , Soil Microbiology , Fusarium/isolation & purification , Fusarium/pathogenicity , Fusarium/drug effects , Fusarium/growth & development , Plant Diseases/microbiology , Plant Diseases/prevention & control , Capsicum/microbiology , Capsicum/growth & development , Antibiosis/physiology , Plant Development
3.
BMC Microbiol ; 24(1): 227, 2024 Jun 27.
Article in English | MEDLINE | ID: mdl-38937715

ABSTRACT

This study investigated the influence of bacterial cyclic lipopeptides (LP; surfactins, iturins, fengycins) on microbial interactions. The objective was to investigate whether the presence of bacteria inhibits fungal growth and whether this inhibition is due to the release of bacterial metabolites, particularly LP. Selected endophytic bacterial strains with known plant-growth promoting potential were cultured in the presence of Fusarium oxysporum f.sp. strigae (Fos), which was applied as model fungal organism. The extracellular metabolome of tested bacteria, with a focus on LP, was characterized, and the inhibitory effect of bacterial LP on fungal growth was investigated. The results showed that Bacillus velezensis GB03 and FZB42, as well as B. subtilis BSn5 exhibited the strongest antagonism against Fos. Paraburkholderia phytofirmans PsJN, on the other hand, tended to have a slight, though non-significant growth promotion effect. Crude LP from strains GB03 and FZB42 had the strongest inhibitory effect on Fos, with a significant inhibition of spore germination and damage of the hyphal structure. Liquid chromatography tandem mass spectrometry revealed the production of several variants of iturin, fengycin, and surfactin LP families from strains GB03, FZB42, and BSn5, with varying intensity. Using plate cultures, bacillomycin D fractions were detected in higher abundance in strains GB03, FZB42, and BSn5 in the presence of Fos. Additionally, the presence of Fos in dual plate culture triggered an increase in bacillomycin D production from the Bacillus strains. The study demonstrated the potent antagonistic effect of certain Bacillus strains (i.e., GB03, FZB42, BSn5) on Fos development. Our findings emphasize the crucial role of microbial interactions in shaping the co-existence of microbial assemblages.


Subject(s)
Antibiosis , Antifungal Agents , Bacillus , Fusarium , Lipopeptides , Fusarium/drug effects , Fusarium/growth & development , Lipopeptides/pharmacology , Lipopeptides/metabolism , Bacillus/metabolism , Antifungal Agents/pharmacology , Peptides, Cyclic/pharmacology , Microbial Interactions , Burkholderiaceae/growth & development , Burkholderiaceae/metabolism , Spores, Fungal/drug effects , Spores, Fungal/growth & development , Hyphae/drug effects , Hyphae/growth & development
4.
NPJ Biofilms Microbiomes ; 10(1): 52, 2024 Jun 25.
Article in English | MEDLINE | ID: mdl-38918415

ABSTRACT

It is becoming increasingly apparent that commensal skin bacteria have an important role in wound healing and infection progression. However, the precise mechanisms underpinning many of these probiotic interactions remain to be fully uncovered. In this work, we demonstrate that the common skin commensal Cutibacterium acnes can limit the pathogenicity of the prevalent wound pathogen Pseudomonas aeruginosa in vivo. We show that this impact on pathogenicity is independent of any effect on growth, but occurs through a significant downregulation of the Type Three Secretion System (T3SS), the primary toxin secretion system utilised by P. aeruginosa in eukaryotic infection. We also show a downregulation in glucose acquisition systems, a known regulator of the T3SS, suggesting that glucose availability in a wound can influence infection progression. C. acnes is well known as a glucose fermenting organism, and we demonstrate that topically supplementing a wound with glucose reverses the probiotic effects of C. acnes. This suggests that introducing carbon source competition within the wound microenvironment may be an effective way to prevent or limit wound infection.


Subject(s)
Glucose , Pseudomonas aeruginosa , Pseudomonas aeruginosa/metabolism , Pseudomonas aeruginosa/pathogenicity , Glucose/metabolism , Animals , Type III Secretion Systems/metabolism , Type III Secretion Systems/genetics , Propionibacterium acnes/growth & development , Propionibacterium acnes/physiology , Propionibacterium acnes/metabolism , Wound Infection/microbiology , Mice , Pseudomonas Infections/microbiology , Skin/microbiology , Carbon/metabolism , Wound Healing , Antibiosis , Disease Progression , Humans
5.
Nat Microbiol ; 9(7): 1792-1811, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38862602

ABSTRACT

The Klebsiella oxytoca species complex is part of the human microbiome, especially during infancy and childhood. K. oxytoca species complex strains can produce enterotoxins, namely, tilimycin and tilivalline, while also contributing to colonization resistance (CR). The relationship between these seemingly contradictory roles is not well understood. Here, by coupling ex vivo assays with CRISPR-mutagenesis and various mouse models, we show that K. oxytoca provides CR against Salmonella Typhimurium. In vitro, the antimicrobial activity against various Salmonella strains depended on tilimycin production and was induced by various simple carbohydrates. In vivo, CR against Salmonella depended on toxin production in germ-free mice, while it was largely toxin-independent in mice with residual microbiota. This was linked to the relative levels of toxin-inducing carbohydrates in vivo. Finally, dulcitol utilization was essential for toxin-independent CR in gnotobiotic mice. Together, this demonstrates that nutrient availability is key to both toxin-dependent and substrate-driven competition between K. oxytoca and Salmonella.


Subject(s)
Klebsiella oxytoca , Salmonella Infections , Salmonella typhimurium , Klebsiella oxytoca/genetics , Klebsiella oxytoca/metabolism , Animals , Mice , Salmonella Infections/microbiology , Salmonella typhimurium/genetics , Salmonella typhimurium/metabolism , Salmonella typhimurium/growth & development , Salmonella typhimurium/drug effects , Humans , Disease Models, Animal , Enterotoxins/metabolism , Enterotoxins/genetics , Female , Mice, Inbred C57BL , Klebsiella Infections/microbiology , Microbiota , Gastrointestinal Microbiome , Antibiosis , Benzodiazepinones
6.
Fungal Biol ; 128(4): 1847-1858, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38876537

ABSTRACT

Post-harvest decay of fresh agricultural produce is a major threat to food security globally. Synthetic fungicides, commonly used in practice for managing the post-harvest losses, have negative impacts on consumers' health. Studies have reported the effectiveness of fungal isolates from plants as biocontrol agents of post-harvest diseases, although this is still poorly established in tomatoes (Solanum lycopersicum L. cv. Jasmine). In this study, 800 endophytic fungi were isolated from mature green and ripe untreated and fungicide-treated tomato fruits grown in open soil and hydroponics systems. Of these, five isolates (Aureobasidium pullulans SUG4.1, Coprinellus micaceus SUG4.3, Epicoccum nigrum SGT8.6, Fusarium oxysporum HTR8.4, Preussia africana SUG3.1) showed antagonistic properties against selected post-harvest pathogens of tomatoes (Alternaria alternata, Fusarium solani, Fusarium oxysporum, Geotrichum candidum, Rhizopus stolonifera, Rhizoctonia solani), with Lactiplantibacillus plantarum as a positive control. P. africana SUG3.1 and C. micaceus SUG4.3 significantly inhibited growth of all the pathogens, with antagonistic capabilities comparable to that exhibited by L. plantarum. Furthermore, the isolates produced an array of enzymes, including among others, amylase, cellulose and protease; and were able to utilize several carbohydrates (glucose, lactose, maltose, mannitol, sucrose). In conclusion, P. africana SUG3.1 and C. micaceus SUG4.3 may complement L. plantarum as biocontrol agents against post-harvest pathogens of tomatoes.


Subject(s)
Endophytes , Fruit , Fungi , Plant Diseases , Solanum lycopersicum , Solanum lycopersicum/microbiology , Plant Diseases/microbiology , Plant Diseases/prevention & control , Fruit/microbiology , Endophytes/isolation & purification , Endophytes/physiology , Endophytes/classification , Fungi/isolation & purification , Fungi/physiology , Fungi/classification , Fungi/drug effects , Antibiosis , Biological Control Agents , Fungicides, Industrial/pharmacology
7.
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
8.
Environ Microbiol ; 26(6): e16635, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38899724

ABSTRACT

Actinomycetes are a phylogenetically diverse bacterial group which are widely distributed across terrestrial and aquatic ecosystems. Within this order, the genus Pseudonocardia and their specialised metabolites have been the focus of previous ecological studies due to their antagonistic interactions with other microorganisms and their mutualistic interactions with insects. However, the chemical ecology of free-living Pseudonocardia remains understudied. This study applies a multi-omics approach to investigate the chemical ecology of free-living actinomycetes from the genus Pseudonocardia. In a comparative genomics analysis, it was observed that the biosynthetic gene cluster family distribution was influenced mainly by phylogenetic distance rather than the geographic or ecological origin of strains. This finding was also observed in the mass spectrometry-based metabolomic profiles of nine Pseudonocardia species isolated from marine sediments and two terrestrial species. Antagonist interactions between these 11 species were examined, and matrix-assisted laser desorption/ionisation-mass spectrometry imaging was used to examine in situ chemical interactions between the Southern Ocean strains and their phylogenetically close relatives. Overall, it was demonstrated that phylogeny was the main predictor of antagonistic interactions among free-living Pseudonocardia. Moreover, two features at m/z 441.15 and m/z 332.20 were identified as metabolites related to these interspecies interactions.


Subject(s)
Ecosystem , Metabolomics , Phylogeny , Geologic Sediments/microbiology , Multigene Family , Genomics , Antibiosis , Multiomics
9.
Front Cell Infect Microbiol ; 14: 1375872, 2024.
Article in English | MEDLINE | ID: mdl-38846355

ABSTRACT

Introduction: Pseudomonas aeruginosa is notorious for its multidrug resistance and its involvement in hospital-acquired infections. In this study, 20 bacterial strains isolated from soil samples near the Hindan River in Ghaziabad, India, were investigated for their biochemical and morphological characteristics, with a focus on identifying strains with exceptional drug resistance and pyocyanin production. Methods: The isolated bacterial strains were subjected to biochemical and morphological analyses to characterize their properties, with a particular emphasis on exopolysaccharide production. Strain GZB16/CEES1, exhibiting remarkable drug resistance and pyocyanin production. Biochemical and molecular analyses, including sequencing of its 16S rRNA gene (accession number LN735036.1), plasmid-curing assays, and estimation of plasmid size, were conducted to elucidate its drug resistance mechanisms and further pyocynin based target the Candida albicans Strain GZB16/CEES1 demonstrated 100% resistance to various antibiotics used in the investigation, with plasmid-curing assays, suggesting plasmid-based resistance gene transmission. The plasmid in GZB16/CEES1 was estimated to be approximately 24 kb in size. The study focused on P. aeruginosa's pyocyanin production, revealing its association with anticandidal activity. The minimum inhibitory concentration (MIC) of the bacterial extract against Candida albicans was 50 µg/ml, with a slightly lower pyocyanin-based MIC of 38.5 µg/ml. Scanning electron microscopy illustrated direct interactions between P. aeruginosa strains and Candida albicans cells, leading to the destruction of the latter. Discussion: These findings underscore the potential of P. aeruginosa in understanding microbial interactions and developing strategies to combat fungal infections. The study highlights the importance of investigating bacterial-fungal interactions and the role of pyocyanin in antimicrobial activity. Further research in this area could lead to the development of novel therapeutic approaches for combating multidrug-resistant infections.


Subject(s)
Antifungal Agents , Candida albicans , Drug Resistance, Multiple, Bacterial , Microbial Sensitivity Tests , Plasmids , Pseudomonas aeruginosa , Pyocyanine , RNA, Ribosomal, 16S , Soil Microbiology , Pseudomonas aeruginosa/drug effects , Pseudomonas aeruginosa/genetics , Pseudomonas aeruginosa/metabolism , Pyocyanine/metabolism , Drug Resistance, Multiple, Bacterial/genetics , Antifungal Agents/pharmacology , Candida albicans/drug effects , Candida albicans/genetics , Candida albicans/growth & development , RNA, Ribosomal, 16S/genetics , India , Plasmids/genetics , Anti-Bacterial Agents/pharmacology , Antibiosis
10.
BMC Microbiol ; 24(1): 194, 2024 Jun 07.
Article in English | MEDLINE | ID: mdl-38849775

ABSTRACT

Soybean is the main oilseed cultivated worldwide. Even though Brazil is the world's largest producer and exporter of soybean, its production is severely limited by biotic factors. Soil borne diseases are the most damaging biotic stressors since they significantly reduce yield and are challenging to manage. In this context, the present study aimed to evaluate the potential of a bacterial strain (Ag109) as a biocontrol agent for different soil pathogens (nematodes and fungi) of soybean. In addition, the genome of Ag109 was wholly sequenced and genes related to secondary metabolite production and plant growth promotion were mined. Ag109 showed nematode control in soybean and controlled 69 and 45% of the populations of Meloidogyne javanica and Pratylenchus brachyurus, respectively. Regarding antifungal activity, these strains showed activity against Macrophomia phaseolina, Rhizoctonia solani, and Sclerotinia sclerotiorum. For S. sclerotiorum, this strain increased the number of healthy plants and root dry mass compared to the control (with inoculation). Based on the average nucleotide identity and digital DNA-DNA hybridization, this strain was identified as Bacillus velezensis. Diverse clusters of specific genes related to secondary metabolite biosynthesis and root growth promotion were identified, highlighting the potential of this strain to be used as a multifunctional microbial inoculant that acts as a biological control agent while promoting plant growth in soybean.


Subject(s)
Ascomycota , Bacillus , Genome, Bacterial , Glycine max , Plant Diseases , Animals , Bacillus/genetics , Glycine max/microbiology , Glycine max/parasitology , Plant Diseases/microbiology , Plant Diseases/parasitology , Plant Diseases/prevention & control , Genome, Bacterial/genetics , Ascomycota/genetics , Rhizoctonia/genetics , Pest Control, Biological , Biological Control Agents , Whole Genome Sequencing , Tylenchoidea , Phylogeny , Antibiosis , Brazil
11.
Science ; 384(6701): eado0713, 2024 Jun 14.
Article in English | MEDLINE | ID: mdl-38870284

ABSTRACT

Bacteria can repurpose their own bacteriophage viruses (phage) to kill competing bacteria. Phage-derived elements are frequently strain specific in their killing activity, although there is limited evidence that this specificity drives bacterial population dynamics. Here, we identified intact phage and their derived elements in a metapopulation of wild plant-associated Pseudomonas genomes. We discovered that the most abundant viral cluster encodes a phage remnant resembling a phage tail called a tailocin, which bacteria have co-opted to kill bacterial competitors. Each pathogenic Pseudomonas strain carries one of a few distinct tailocin variants that target the variable polysaccharides in the outer membrane of co-occurring pathogenic Pseudomonas strains. Analysis of herbarium samples from the past 170 years revealed that the same tailocin and bacterial receptor variants have persisted in Pseudomonas populations. These results suggest that tailocin genetic diversity can be mined to develop targeted "tailocin cocktails" for microbial control.


Subject(s)
Bacteriocins , Pseudomonas Phages , Pseudomonas , Viral Tail Proteins , Antibiosis , Bacterial Outer Membrane/metabolism , Bacteriocins/genetics , Bacteriocins/metabolism , Genetic Variation , Genome, Bacterial , Polysaccharides, Bacterial/metabolism , Pseudomonas/metabolism , Pseudomonas/virology , Pseudomonas Phages/genetics , Pseudomonas Phages/metabolism , Viral Tail Proteins/metabolism , Viral Tail Proteins/genetics , Phage Therapy/methods
12.
Microb Ecol ; 87(1): 83, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38888737

ABSTRACT

Bacillus species appearas the most attractive plant growth-promoting rhizobacteria (PGPR) and alternative to synthetic chemical pesticides. The present study examined the antagonistic potential of spore forming-Bacilli isolated from organic farm soil samples of Allahabad, India. Eighty-seven Bacillus strains were isolated and characterized based on their morphological, plant growth promoting traits and molecular characteristics. The diversity analysis used 16S-rDNA, BOX-element, and enterobacterial repetitive intergenic consensus. Two strains, PR30 and PR32, later identified as Bacillus sp., exhibited potent in vitro antagonistic activity against Ralstonia solanaceorum. These isolates produced copious amounts of multiple PGP traits, such as indole-3-acetic acid (40.0 and 54.5 µg/mL), phosphate solubilization index (PSI) (4.4 and 5.3), ammonia, siderophore (3 and 4 cm), and 1-aminocyclopropane-1-carboxylate deaminase (8.1and 9.2 µM/mg//h) and hydrogen cyanide. These isolates were subjected to the antibiotic sensitivity test. The two potent isolates based on the higher antagonistic and the best plant growth-promoting ability were selected for plant growth-promoting response studies in tomatoe, broccoli, and chickpea. In the pot study, Bacillus subtilis (PR30 and PR31) showed significant improvement in seed germination (27-34%), root length (20-50%), shoot length (20-40%), vigor index (50-75%), carotenoid content (0.543-1.733), and lycopene content (2.333-2.646 mg/100 g) in tomato, broccoli, and chickpea. The present study demonstrated the production of multiple plant growth-promoting traits by the isolates and their potential as effective bioinoculants for plant growth promotion and biocontrol of phytopathogens.


Subject(s)
Bacillus , Biodiversity , Soil Microbiology , Bacillus/isolation & purification , Bacillus/genetics , Bacillus/metabolism , India , Plant Roots/microbiology , Cicer/microbiology , Cicer/growth & development , Solanum lycopersicum/microbiology , Solanum lycopersicum/growth & development , RNA, Ribosomal, 16S/genetics , Rhizosphere , Phylogeny , Antibiosis , Siderophores/metabolism , Indoleacetic Acids/metabolism
13.
Cell Host Microbe ; 32(6): 779-781, 2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38870893

ABSTRACT

In a recent issue of Nature, Zhao et al. have demonstrated that Streptomyces spp. produce "umbrella"-shaped polymorphic toxin particles, a novel class of non-lethal toxins that gently inhibit competitors by arresting hyphal growth in closely related bacteria, unveiling a unique bacterial defense strategy in microbial ecological interactions.1.


Subject(s)
Bacterial Toxins , Streptomyces , Streptomyces/metabolism , Bacterial Toxins/metabolism , Bacterial Toxins/toxicity , Antibiosis , Hyphae/growth & development , Microbial Interactions
14.
BMC Plant Biol ; 24(1): 546, 2024 Jun 13.
Article in English | MEDLINE | ID: mdl-38872113

ABSTRACT

BACKGROUND: Apple Replant Disease (ARD) is common in major apple-growing regions worldwide, but the role of rhizosphere microbiota in conferring ARD resistance and promoting plant growth remains unclear. RESULTS: In this study, a synthetic microbial community (SynCom) was developed to enhance apple plant growth and combat apple pathogens. Eight unique bacteria selected via microbial culture were used to construct the antagonistic synthetic community, which was then inoculated into apple seedlings in greenhouse experiments. Changes in the rhizomicroflora and the growth of aboveground plants were monitored. The eight strains, belonging to the genera Bacillus and Streptomyces, have the ability to antagonize pathogens such as Fusarium oxysporum, Rhizoctonia solani, Botryosphaeria ribis, and Physalospora piricola. Additionally, these eight strains can stably colonize in apple rhizosphere and some of them can produce siderophores, ACC deaminase, and IAA. Greenhouse experiments with Malus hupehensis Rehd indicated that SynCom promotes plant growth (5.23%) and increases the nutrient content of the soil, including soil organic matter (9.25%) and available K (1.99%), P (7.89%), and N (0.19%), and increases bacterial richness and the relative abundance of potentially beneficial bacteria. SynCom also increased the stability of the rhizosphere microbial community, the assembly of which was dominated by deterministic processes (|ß NTI| > 2). CONCLUSIONS: Our results provide insights into the contribution of the microbiome to pathogen inhibition and host growth. The formulation and manipulation of similar SynComs may be a beneficial strategy for promoting plant growth and controlling soil-borne disease.


Subject(s)
Malus , Plant Diseases , Rhizosphere , Malus/microbiology , Malus/growth & development , Plant Diseases/microbiology , Plant Diseases/prevention & control , Soil Microbiology , Microbiota/physiology , Rhizoctonia/physiology , Biological Control Agents , Bacillus/physiology , Antibiosis
15.
Sci Rep ; 14(1): 13580, 2024 06 12.
Article in English | MEDLINE | ID: mdl-38866928

ABSTRACT

Rhizoctonia solani, the causal agent of banded leaf and sheath blight (BL&SB), poses a significant threat to maize and various crops globally. The increasing concerns surrounding the environmental and health impacts of chemical fungicides have encouraged intensified concern in the development of biological control agents (BCAs) as eco-friendly alternatives. In this study, we explored the potential of 22 rhizobacteria strains (AS1-AS22) isolates, recovered from the grasslands of the Pithoragarh region in the Central Himalayas, as effective BCAs against BL&SB disease. Among these strains, two Pseudomonas isolates, AS19 and AS21, exhibited pronounced inhibition of fungal mycelium growth in vitro, with respective inhibition rates of 57.04% and 54.15% in cell cultures and 66.56% and 65.60% in cell-free culture filtrates. Additionally, both strains demonstrated effective suppression of sclerotium growth. The strains AS19 and AS21 were identified as Pseudomonas sp. by 16S rDNA phylogeny and deposited under accession numbers NAIMCC-B-02303 and NAIMCC-B-02304, respectively. Further investigations revealed the mechanisms of action of AS19 and AS21, demonstrating their ability to induce systemic resistance (ISR) and exhibit broad-spectrum antifungal activity against Alternaria triticina, Bipolaris sorokiniana, Rhizoctonia maydis, and Fusarium oxysporum f. sp. lentis. Pot trials demonstrated significant reductions in BL&SB disease incidence (DI) following foliar applications of AS19 and AS21, with reductions ranging from 25 to 38.33% compared to control treatments. Scanning electron microscopy revealed substantial degradation of fungal mycelium by the strains, accompanied by the production of hydrolytic enzymes. These findings suggest the potential of Pseudomonas strains AS19 and AS21 as promising BCAs against BL&SB and other fungal pathogens. However, further field trials are warranted to validate their efficacy under natural conditions and elucidate the specific bacterial metabolites responsible for inducing systemic resistance. This study contributes to the advancement of sustainable disease management strategies and emphasizes the potential of Pseudomonas strains AS19 and AS21 in combating BL&SB and other fungal diseases affecting agricultural crops.


Subject(s)
Plant Diseases , Pseudomonas , Rhizoctonia , Zea mays , Plant Diseases/microbiology , Plant Diseases/prevention & control , Zea mays/microbiology , Pseudomonas/metabolism , Rhizoctonia/physiology , Rhizoctonia/drug effects , Plant Leaves/microbiology , Biological Control Agents , Pest Control, Biological/methods , Antibiosis , Phylogeny
16.
Arch Microbiol ; 206(7): 286, 2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38829426

ABSTRACT

Controlling the hazard of sclerotia produced by the Sclerotinia sclerotiorum is very complex, and it is urgent to adopt an effective method that is harmonious environmentally to control the disease. Among the six isolates isolated from the rhizosphere of lettuce, the isolate HZA84 demonstrated a high activity in its antagonism towards Sclerotinia sclerotiorum in vitro, and produces siderophore. By amplification of internal transcribed spacer (ITS), translation elongation factor 1-alpha (TEF1-α), and RNA polymerase II subunit (RPB2) genes, the isolate HZA84 was identified as Trichoderma asperellum, which was confirmed by analysis of phylogenetic tree. The Scanning electron microscope monitoring detected that the isolate HZA84 spread over the sclerotial surface, thus, damaging, decomposing, and distorting the globular cells of the outer cortex of the sclerotia. The Real-time polymerase chain reaction (RT-qPCR) analysis disclosed the overexpression of two genes (chit33 and chit37) encoding the endochitinase in addition to one gene (prb1) encoding the proteinase during 4 and 8 days of the parasitism behavior of isolate HZA84 on the sclerotia surface. These enzymes aligned together in the sclerotia destruction by hyperparasitism. On the other hand, the pots trial revealed that spraying of isolate HZA84 reduced the drop disease symptoms of lettuce. The disease severity was decreased by 19.33 and the biocontrol efficiency was increased by 80.67% within the fourth week of inoculation. These findings magnify the unique role of Trichoderma in disrupting the development of plant diseases in sustainable ways.


Subject(s)
Ascomycota , Lactuca , Phylogeny , Plant Diseases , Lactuca/microbiology , Ascomycota/genetics , Ascomycota/physiology , Plant Diseases/microbiology , Fungal Proteins/genetics , Fungal Proteins/metabolism , Rhizosphere , Antibiosis , Hypocreales/genetics , Hypocreales/metabolism , Hypocreales/isolation & purification , Soil Microbiology , Trichoderma/genetics , Trichoderma/isolation & purification , Trichoderma/physiology , Trichoderma/metabolism
17.
Microb Pathog ; 192: 106680, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38729380

ABSTRACT

Biocontrol of phytopathogens involving the use of bioactive compounds produced by lactic acid bacteria (LAB), is a promising approach to manage many diseases in agriculture. In this study, a lactic acid bacterium designated YB1 was isolated from fermented olives and selected for its antagonistic activity against Verticillium dahliae (V. dahliae) and Agrobacterium tumefaciens (A. tumefaciens). Based on the 16S rRNA gene nucleotide sequence analysis (1565 pb, accession number: OR714267), the new isolate YB1 bacterium was assigned as Leuconostoc mesenteroides YB1 (OR714267) strain. This bacterium produces an active peptide "bacteriocin" called BacYB1, which was purified in four steps. Matrix-assisted lasers desorption/ionization (MALDI) time-of-flight (TOF) mass spectrometry (MS) based approach was performed to identify and characterize BacYB1. The exact mass was 5470.75 Da, and the analysis of the N-terminal sequence (VTRASGASTPPGTASPFKTL) of BacYB1 revealed no significant similarity to currently available antimicrobial peptides. The BacYB1 displayed a bactericidal mode of action against A. tumefaciens. The potentiel role of BacYB1 to supress the growth of A. tumefaciens was confirmed by live-dead cells viability assay. In pot experiments, the biocontrol efficacy of BacYB1 against V. dahliae wilt on young olive trees was studied. The percentage of dead plants (PDP) and the final mean symptomes severity (FMS) of plants articifialy infected by V. dahliae and treated with the pre-purified peptide BacYB1 (preventive and curative treatments) were significantly inferior to untreated plants. Biochemical analysis of leaves of the plants has shown that polyophenols contents were highly detected in plants infected by V. dahliae and the highest contents of chlorophyl a, b and total chlorophyll were recorded in plants treated with the combination of BacYB1 with the biofertilisant Humivital. BacYB1 presents a promising alternative for the control of Verticillium wilt and crown gall diseases.


Subject(s)
Agrobacterium tumefaciens , Bacteriocins , Leuconostoc mesenteroides , Olea , Plant Diseases , RNA, Ribosomal, 16S , Agrobacterium tumefaciens/metabolism , Bacteriocins/pharmacology , Bacteriocins/metabolism , Olea/microbiology , Plant Diseases/microbiology , Plant Diseases/prevention & control , RNA, Ribosomal, 16S/genetics , Leuconostoc mesenteroides/metabolism , Leuconostoc mesenteroides/genetics , Biological Control Agents/metabolism , Biological Control Agents/pharmacology , Verticillium/drug effects , Spectrometry, Mass, Matrix-Assisted Laser Desorption-Ionization , Antibiosis , Phylogeny , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/metabolism
18.
Appl Environ Microbiol ; 90(6): e0045524, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38809045

ABSTRACT

Phytopathogenic Fusarium graminearum poses significant threats to crop health and soil quality. Although our laboratory-cultivated Pseudomonas sp. P13 exhibited potential biocontrol capacities, its effectiveness against F. graminearum and underlying antifungal mechanisms are still unclear. In light of this, our study investigated a significant inhibitory effect of P13 on F. graminearum T1, both in vitro and in a soil environment. Conducting genomic, metabolomic, and transcriptomic analyses of P13, we sought to identify evidence supporting its antagonistic effects on T1. The results revealed the potential of P13, a novel Pseudomonas species, to produce active antifungal components, including phenazine-1-carboxylate (PCA), hydrogen cyanide (HCN), and siderophores [pyoverdine (Pvd) and histicorrugatin (Hcs)], as well as the dynamic adaptive changes in the metabolic pathways of P13 related to these active ingredients. During the logarithmic growth stage, T1-exposed P13 strategically upregulated PCA and HCN biosynthesis, along with transient inhibition of the tricarboxylic acid (TCA) cycle. However, with growth stabilization, upregulation of PCA and HCN synthesis ceased, whereas the TCA cycle was enhanced, increasing siderophores secretion (Pvd and Hcs), suggesting that this mechanism might have caused continuous inhibition of T1. These findings improved our comprehension of the biocontrol mechanisms of P13 and provided the foundation for potential application of Pseudomonas strains in the biocontrol of phytopathogenic F. graminearum. IMPORTANCE: Pseudomonas spp. produces various antifungal substances, making it an effective natural biocontrol agent against pathogenic fungi. However, the inhibitory effects and the associated antagonistic mechanisms of Pseudomonas spp. against Fusarium spp. are unclear. Multi-omics integration analyses of the in vitro antifungal effects of novel Pseudomonas species, P13, against F. graminearum T1 revealed the ability of P13 to produce antifungal components (PCA, HCN, Pvd, and Hcs), strategically upregulate PCA and HCN biosynthesis during logarithmic growth phase, and enhance the TCA cycle during stationary growth phase. These findings improved our understanding of the biocontrol mechanisms of P13 and its potential application against pathogenic fungi.


Subject(s)
Fusarium , Phenazines , Plant Diseases , Pseudomonas , Fusarium/physiology , Fusarium/growth & development , Pseudomonas/physiology , Pseudomonas/metabolism , Pseudomonas/genetics , Plant Diseases/microbiology , Plant Diseases/prevention & control , Phenazines/metabolism , Siderophores/metabolism , Hydrogen Cyanide/metabolism , Antibiosis , Antifungal Agents/pharmacology , Antifungal Agents/metabolism , Pest Control, Biological , Biological Control Agents , Metabolomics , Soil Microbiology , Multiomics
19.
Appl Environ Microbiol ; 90(6): e0066524, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38814060

ABSTRACT

Ash dieback, caused by the fungal pathogen Hymenoscyphus fraxineus (Helotiales, Ascomycota), is threatening the existence of the European ash, Fraxineus excelsior. During our search for biological control agents for this devastating disease, endophytic fungi were isolated from healthy plant tissues and co-cultivated with H. fraxineus to assess their antagonistic potential. Among the strains screened, Penicillium cf. manginii DSM 104493 most strongly inhibited the pathogen. Initially, DSM 104493 showed promise in planta as a biocontrol agent. Inoculation of DSM 104493 into axenically cultured ash seedlings greatly decreased the development of disease symptoms in seedlings infected with H. fraxineus. The fungus was thus cultivated on a larger scale in order to obtain sufficient material to identify active metabolites that accounted for the antibiosis observed in dual culture. We isolated PF1140 (1) and identified it as the main active compound in the course of a bioassay-guided isolation strategy. Furthermore, its derivative 2, the mycotoxin citreoviridin (3), three tetramic acids of the vancouverone type (4-6), and penidiamide (7) were isolated by preparative chromatography. The structures were elucidated mainly by NMR spectroscopy and high-resolution mass spectrometry (HRMS), of which compounds 2 and 6 represent novel natural products. Of the compounds tested, not only PF1140 (1) strongly inhibited H. fraxineus in an agar diffusion assay but also showed phytotoxic effects in a leaf puncture assay. Unfortunately, both the latent virulent attributes of DSM 104493 observed subsequent to these experiments in planta and the production of mycotoxins exclude strain Penicillium cf. manginii DSM 104493 from further development as a safe biocontrol agent.IMPORTANCEEnvironmentally friendly measures are urgently needed to control the causative agent of ash dieback, Hymenoscyphus fraxineus. Herein, we show that the endophyte DSM 104493 exhibits protective effects in vitro and in planta. We traced the activity of DSM 104493 to the antifungal natural product PF1140, which unfortunately also showed phytotoxic effects. Our results have important implications for understanding plant-fungal interactions mediated by secondary metabolites, not only in the context of ash dieback but also generally in plant-microbial interactions.


Subject(s)
Antifungal Agents , Ascomycota , Endophytes , Fraxinus , Plant Diseases , Fraxinus/microbiology , Endophytes/metabolism , Endophytes/isolation & purification , Ascomycota/drug effects , Ascomycota/metabolism , Plant Diseases/microbiology , Plant Diseases/prevention & control , Antifungal Agents/pharmacology , Antifungal Agents/metabolism , Antibiosis , Secondary Metabolism , Penicillium/metabolism , Penicillium/drug effects , Biological Control Agents/pharmacology , Biological Control Agents/metabolism
20.
World J Microbiol Biotechnol ; 40(7): 205, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38755302

ABSTRACT

Jojoba shrubs are wild plants cultivated in arid and semiarid lands and characterized by tolerance to drought, salinity, and high temperatures. Fungi associated with such plants may be attributed to the tolerance of host plants against biotic stress in addition to the promotion of plant growth. Previous studies showed the importance of jojoba as jojoba oil in the agricultural field; however, no prior study discussed the role of jojoba-associated fungi (JAF) in reflecting plant health and the possibility of using JAF in biocontrol. Here, the culture-independent and culture-dependent approaches were performed to study the diversity of the jojoba-associated fungi. Then, the cultivable fungi were evaluated for in-vitro antagonistic activity and in vitro plant growth promotion assays. The metagenome analysis revealed the existence of four fungal phyla: Ascomycota, Aphelidiomycota, Basidiomycota, and Mortierellomycota. The phylum Ascomycota was the most common and had the highest relative abundance in soil, root, branch, and fruit samples (59.7%, 50.7%, 49.8%, and 52.4%, respectively). Alternaria was the most abundant genus in aboveground tissues: branch (43.7%) and fruit (32.1%), while the genus Discosia had the highest abundance in the underground samples: soil (24%) and root (30.7%). For the culture-dependent method, a total of 14 fungi were isolated, identified, and screened for their chitinolytic and antagonist activity against three phytopathogenic fungi (Fusarium oxysporum, Alternaria alternata and Rhizoctonia solani) as well as their in vitro plant growth promotion (PGP) activity. Based on ITS sequence analysis, the selected potent isolates were identified as Aspergillus stellatusEJ-JFF3, Aspergillus flavus EJ-JFF4, Stilbocrea sp. EJ-JLF1, Fusarium solani EJ-JRF3, and Amesia atrobrunneaEJ-JSF4. The endophyte strain A. flavus EJ-JFF4 exhibited the highest chitinolytic activity (9 Enzyme Index) and antagonistic potential against Fusarium oxysporum, Alternaria alternata, and Rhizoctonia solani phytopathogens with inhibitory percentages of 72, 70, and 80 respectively. Also, A. flavus EJ-JFF4 had significant multiple PGP properties, including siderophore production (69.3%), phosphate solubilization (95.4 µg ml-1). The greatest production of Indol-3-Acetic Acid was belonged to A. atrobrunnea EJ-JSF4 (114.5 µg ml-1). The analysis of FUNGuild revealed the abundance of symbiotrophs over other trophic modes, and the guild of endophytes was commonly assigned in all samples. For the first time, this study uncovered fungal diversity associated with jojoba plants using a culture-independent approach and in-vitro assessed the roles of cultivable fungal strains in promoting plant growth and biocontrol. The present study indicated the significance of jojoba shrubs as a potential source of diverse fungi with high biocontrol and PGP activities.


Subject(s)
Alternaria , Fungi , Soil Microbiology , Fungi/genetics , Fungi/classification , Fungi/isolation & purification , Alternaria/genetics , Alternaria/growth & development , Metagenome , Rhizoctonia/growth & development , Phylogeny , Plant Diseases/microbiology , Plant Diseases/prevention & control , Fusarium/genetics , Fusarium/growth & development , Antibiosis , Plant Roots/microbiology , Biodiversity , Biological Control Agents , Ascomycota/growth & development , Ascomycota/genetics , Plant Development
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