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1.
Food Microbiol ; 122: 104551, 2024 Sep.
Artículo en Inglés | MEDLINE | ID: mdl-38839219

RESUMEN

Brown rot, caused by Monilinia fructicola, is considered one of the devasting diseases of pre-harvest and post-harvest peach fruits, restricting the yield and quality of peach fruits and causing great economic losses to the peach industry every year. Presently, the management of the disease relies heavily on chemical control. In the study, we demonstrated that the volatile organic compounds (VOCs) of endophyte bacterial Pseudomonas protegens QNF1 inhibited the mycelial growth of M. fructicola by 95.35% compared to the control, thereby reducing the brown rot on postharvest fruits by 98.76%. Additionally, QNF1 VOCs severely damaged the mycelia of M. fructicola. RNA-seq analysis revealed that QNF1 VOCs significantly repressed the expressions of most of the genes related to pathogenesis (GO:0009405) and integral component of plasma membrane (GO:0005887), and further analysis revealed that QNF1 VOCs significantly altered the expressions of the genes involved in various metabolism pathways including Amino acid metabolism, Carbohydrate metabolism, and Lipid metabolism. The findings of the study indicated that QNF1 VOCs displayed substantial control efficacy by disrupting the mycelial morphology of M. fructicola, weakening its pathogenesis, and causing its metabolic disorders. The study provided a potential way and theoretical support for the management of the brown rot of peach fruits.


Asunto(s)
Ascomicetos , Frutas , Enfermedades de las Plantas , Prunus persica , Pseudomonas , Compuestos Orgánicos Volátiles , Compuestos Orgánicos Volátiles/farmacología , Compuestos Orgánicos Volátiles/metabolismo , Prunus persica/microbiología , Frutas/microbiología , Enfermedades de las Plantas/microbiología , Enfermedades de las Plantas/prevención & control , Pseudomonas/genética , Pseudomonas/metabolismo , Ascomicetos/genética , Ascomicetos/efectos de los fármacos , Ascomicetos/crecimiento & desarrollo , Ascomicetos/metabolismo , Micelio/crecimiento & desarrollo , Micelio/efectos de los fármacos , Micelio/genética , Endófitos/genética , Endófitos/metabolismo
2.
Food Res Int ; 188: 114463, 2024 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-38823831

RESUMEN

To investigate the prevalence of Pseudomonas in the pasteurized milk production process and its effect on milk quality, 106 strains of Pseudomonas were isolated from the pasteurized milk production process of a milk production plant in Shaanxi Province, China. The protease, lipase and biofilm-producing capacities of the 106 Pseudomonas strains were evaluated, and the spoilage enzyme activities of their metabolites were assessed by simulating temperature incubation in the refrigerated (7 °C) and transport environment (25 °C) segments and thermal treatments of pasteurization (75 °C, 5 min) and ultra-high temperature sterilization (121 °C, 15 s). A phylogenetic tree was drawn based on 16S rDNA gene sequencing and the top 5 strains were selected as representative strains to identify their in situ spoilage potential by examining their growth potential and ability to hydrolyze proteins and lipids in milk using growth curves, pH, whiteness, Zeta-potential, lipid oxidation, SDS-PAGE and volatile flavor compounds. The results showed that half and more of the isolated Pseudomonas had spoilage enzyme production and biofilm capacity, and the spoilage enzyme activity of metabolites was affected by the culture temperature and sterilization method, but ultra-high temperature sterilization could not completely eliminate the enzyme activity. The growth of Pseudomonas lundensis and Pseudomonas qingdaonensis was less affected by temperature and time, and the hydrolytic capacity of extracellular protease and lipase secreted by Pseudomonas lurida was the strongest, which had the greatest effect on milk quality. Therefore, it is crucial to identify the key contamination links of Pseudomonas, the main bacteria responsible for milk spoilage, and the influence of environmental factors on its deterioration.


Asunto(s)
Biopelículas , Microbiología de Alimentos , Lipasa , Leche , Pasteurización , Pseudomonas , Pseudomonas/metabolismo , Pseudomonas/genética , Pseudomonas/aislamiento & purificación , Pseudomonas/crecimiento & desarrollo , Leche/microbiología , Animales , Biopelículas/crecimiento & desarrollo , Lipasa/metabolismo , China , Filogenia , Péptido Hidrolasas/metabolismo , ARN Ribosómico 16S/genética , Contaminación de Alimentos/análisis , Temperatura
3.
Environ Pollut ; 352: 124131, 2024 Jul 01.
Artículo en Inglés | MEDLINE | ID: mdl-38734049

RESUMEN

Polyethylene terephthalate (PET) plastic pollution is widely found in deep-sea sediments. Despite being an international environmental issue, it remains unclear whether PET can be degraded through bioremediation in the deep sea. Pelagic sediments obtained from 19 sites across a wide geographic range in the Pacific Ocean were used to screen for bacteria with PET degrading potential. Bacterial consortia that could grow on PET as the sole carbon and energy source were found in 10 of the 19 sites. These bacterial consortia showed PET removal rate of 1.8%-16.2% within two months, which was further confirmed by the decrease of carbonyl and aliphatic hydrocarbon groups using attenuated total reflectance-Fourier-transform infrared analysis (ATR-FTIR). Analysis of microbial diversity revealed that Alcanivorax and Pseudomonas were predominant in all 10 PET degrading consortia. Meanwhile, Thalassospira, Nitratireductor, Nocardioides, Muricauda, and Owenweeksia were also found to possess PET degradation potential. Metabolomic analysis showed that Alcanivorax sp. A02-7 and Pseudomonas sp. A09-2 could turn PET into mono-(2-hydroxyethyl) terephthalate (MHET) even in situ stimulation (40 MPa, 10 °C) conditions. These findings widen the currently knowledge of deep-sea PET biodegrading process with bacteria isolates and degrading mechanisms, and indicating that the marine environment is a source of biotechnologically promising bacterial isolates and enzymes.


Asunto(s)
Bacterias , Biodegradación Ambiental , Sedimentos Geológicos , Tereftalatos Polietilenos , Contaminantes Químicos del Agua , Tereftalatos Polietilenos/metabolismo , Océano Pacífico , Sedimentos Geológicos/microbiología , Sedimentos Geológicos/química , Bacterias/metabolismo , Bacterias/aislamiento & purificación , Contaminantes Químicos del Agua/metabolismo , Contaminantes Químicos del Agua/análisis , Agua de Mar/microbiología , Pseudomonas/metabolismo
4.
Chemosphere ; 359: 142354, 2024 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-38759812

RESUMEN

Degradation of ibuprofen, one of the most consumed drugs globally, by a mixed bacterial consortium was investigated. A contaminated hospital soil was used to enrich a bacterial consortium possessing the ability to degrade 4 mg/L ibuprofen in 6 days, fed on 6 mM acetate as a supplementary carbon source. Maximum ibuprofen degradation achieved was 99.51%, and for optimum ibuprofen degradation modelled statistically, the initial ibuprofen concentration, and temperature were determined to be 0.515 mg/L and 35 °C, respectively. The bacterial community analyses demonstrated an enrichment of Pseudomonas, Achromobacter, Bacillus, and Enterococcus in the presence of ibuprofen, suggesting their probable association with the biodegradation process. The biodegradation pathway developed using open-source metabolite predictors, GLORYx and BioTransformer suggested multiple degradation routes. Hydroxylation and oxidation were found to be the major mechanisms in ibuprofen degradation. Mono-hydroxylated metabolites were identified as well as predicted by the bioinformatics-based packages. Oxidation, dehydrogenation, super-hydroxylation, and hydrolysis were some other identified mechanisms.


Asunto(s)
Biodegradación Ambiental , Ibuprofeno , Consorcios Microbianos , Ibuprofeno/metabolismo , Redes y Vías Metabólicas , Bacterias/metabolismo , Microbiología del Suelo , Oxidación-Reducción , Hidroxilación , Pseudomonas/metabolismo , Achromobacter/metabolismo , Contaminantes del Suelo/metabolismo , Bacillus/metabolismo
5.
Nat Commun ; 15(1): 4438, 2024 May 28.
Artículo en Inglés | MEDLINE | ID: mdl-38806462

RESUMEN

Various microbes isolated from healthy plants are detrimental under laboratory conditions, indicating the existence of molecular mechanisms preventing disease in nature. Here, we demonstrated that application of sodium chloride (NaCl) in natural and gnotobiotic soil systems is sufficient to induce plant disease caused by an otherwise non-pathogenic root-derived Pseudomonas brassicacearum isolate (R401). Disease caused by combinatorial treatment of NaCl and R401 triggered extensive, root-specific transcriptional reprogramming that did not involve down-regulation of host innate immune genes, nor dampening of ROS-mediated immunity. Instead, we identified and structurally characterized the R401 lipopeptide brassicapeptin A as necessary and sufficient to promote disease on salt-treated plants. Brassicapeptin A production is salt-inducible, promotes root colonization and transitions R401 from being beneficial to being detrimental on salt-treated plants by disturbing host ion homeostasis, thereby bolstering susceptibility to osmolytes. We conclude that the interaction between a global change stressor and a single exometabolite from a member of the root microbiome promotes plant disease in complex soil systems.


Asunto(s)
Presión Osmótica , Enfermedades de las Plantas , Raíces de Plantas , Pseudomonas , Enfermedades de las Plantas/microbiología , Pseudomonas/metabolismo , Pseudomonas/genética , Raíces de Plantas/microbiología , Raíces de Plantas/metabolismo , Cloruro de Sodio/farmacología , Cloruro de Sodio/metabolismo , Microbiología del Suelo , Lipopéptidos/farmacología , Lipopéptidos/metabolismo , Arabidopsis/microbiología , Arabidopsis/metabolismo , Arabidopsis/genética , Arabidopsis/efectos de los fármacos
6.
Sci Rep ; 14(1): 11976, 2024 05 25.
Artículo en Inglés | MEDLINE | ID: mdl-38796616

RESUMEN

Hydrocarbon contamination, including contamination with polycyclic aromatic hydrocarbons (PAHs), is a major concern in Antarctica due to the toxicity, recalcitrance and persistence of these compounds. Under the Antarctic Treaty, nonindigenous species are not permitted for use in bioremediation at polluted sites in the Antarctic region. In this study, three bacterial consortia (C13, C15, and C23) were isolated from Antarctic soils for phenanthrene degradation. All isolated bacterial consortia demonstrated phenanthrene degradation percentages ranging from 45 to 85% for 50 mg/L phenanthrene at 15 â„ƒ within 5 days. Furthermore, consortium C13 exhibited efficient phenanthrene degradation potential across a wide range of environmental conditions, including different temperature (4-30 â„ƒ) and water availability (without polyethylene glycol (PEG) 6000 or 30% PEG 6000 (w/v)) conditions. Sequencing analysis of 16S rRNA genes revealed that Pseudomonas and Pseudarthrobacter were the dominant genera in the phenanthrene-degrading consortia. Moreover, six cultivable strains were isolated from these consortia, comprising four strains of Pseudomonas, one strain of Pseudarthrobacter, and one strain of Paeniglutamicibacter. These isolated strains exhibited the ability to degrade 50 mg/L phenanthrene, with degradation percentages ranging from 4 to 22% at 15 â„ƒ within 15 days. Additionally, the constructed consortia containing Pseudomonas spp. and Pseudarthrobacter sp. exhibited more effective phenanthrene degradation (43-52%) than did the individual strains. These results provide evidence that Pseudomonas and Pseudarthrobacter can be potential candidates for synergistic phenanthrene degradation at low temperatures. Overall, our study offers valuable information for the bioremediation of PAH contamination in Antarctic environments.


Asunto(s)
Biodegradación Ambiental , Fenantrenos , Pseudomonas , Fenantrenos/metabolismo , Pseudomonas/metabolismo , Pseudomonas/genética , Frío , ARN Ribosómico 16S/genética , Microbiología del Suelo , Contaminantes del Suelo/metabolismo , Regiones Antárticas , Consorcios Microbianos , Filogenia
7.
Appl Microbiol Biotechnol ; 108(1): 344, 2024 May 27.
Artículo en Inglés | MEDLINE | ID: mdl-38801472

RESUMEN

Modulating the soil microbiome by applying microbial inoculants has gained increasing attention as eco-friendly option to improve soil disease suppressiveness. Currently, studies unraveling the interplay of inoculants, root-associated microbiome, and plant response are lacking for apple trees. Here, we provide insights into the ability of Bacillus velezensis FZB42 or Pseudomonas sp. RU47 to colonize apple root-associated microhabitats and to modulate their microbiome. We applied the two strains to apple plants grown in soils from the same site either affected by apple replant disease (ARD) or not (grass), screened their establishment by selective plating, and measured phytoalexins in roots 3, 16, and 28 days post inoculation (dpi). Sequencing of 16S rRNA gene and ITS fragments amplified from DNA extracted 28 dpi from different microhabitat samples revealed significant inoculation effects on fungal ß-diversity in root-affected soil and rhizoplane. Interestingly, only in ARD soil, most abundant bacterial amplicon sequence variants (ASVs) changed significantly in relative abundance. Relative abundances of ASVs affiliated with Enterobacteriaceae were higher in rhizoplane of apple grown in ARD soil and reduced by both inoculants. Bacterial communities in the root endosphere were not affected by the inoculants but their presence was indicated. Interestingly and previously unobserved, apple plants responded to the inoculants with increased phytoalexin content in roots, more pronounced in grass than ARD soil. Altogether, our results indicate that FZB42 and RU47 were rhizosphere competent, modulated the root-associated microbiome, and were perceived by the apple plants, which could make them interesting candidates for an eco-friendly mitigation strategy of ARD. KEY POINTS: • Rhizosphere competent inoculants modulated the microbiome (mainly fungi) • Inoculants reduced relative abundance of Enterobacteriaceae in the ARD rhizoplane • Inoculants increased phytoalexin content in roots, stronger in grass than ARD soil.


Asunto(s)
Bacillus , Malus , Microbiota , Fitoalexinas , Raíces de Plantas , Pseudomonas , ARN Ribosómico 16S , Rizosfera , Sesquiterpenos , Microbiología del Suelo , Malus/microbiología , Raíces de Plantas/microbiología , Bacillus/genética , Bacillus/metabolismo , ARN Ribosómico 16S/genética , Sesquiterpenos/metabolismo , Pseudomonas/genética , Pseudomonas/metabolismo , Pseudomonas/fisiología , Inoculantes Agrícolas/fisiología , Inoculantes Agrícolas/genética , Hongos/genética , Hongos/clasificación , Hongos/metabolismo , Hongos/fisiología , Enfermedades de las Plantas/microbiología , Enfermedades de las Plantas/prevención & control
8.
Food Res Int ; 186: 114313, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38729689

RESUMEN

Exploring the contribution of common microorganisms to spoilage is of great significance in inhibiting spoilage in lamb. This work investigated the extent of protein degradation and profile changes of free amino acids (FAAs), free fatty acids (FFAs) and volatile organic compounds (VOCs) in lamb caused by single- and co-culture of the common aerobic spoilage bacteria, P. paralactis, Ac. MN21 and S. maltophilia. Meanwhile, some key VOCs produced by the three bacteria during lamb spoilage were also screened by orthogonal partial least square discriminant analysis and difference value in VOCs content between inoculated groups and sterile group. Lamb inoculated with P. paralactis had the higher total viable counts, pH, total volatile base nitrogen and TCA-soluble peptides than those with the other two bacteria. Some FAAs and FFAs could be uniquely degraded by P. paralactis but not Ac. MN21 and S. maltophilia, such as Arg, Glu, C15:0, C18:0 and C18:1n9t. Co-culture of the three bacteria significantly promoted the overall spoilage, including bacterial growth, proteolysis and lipolysis. Key VOCs produced by P. paralactis were 2, 3-octanedione, those by Ac. MN21 were 1-octanol, octanal, hexanoic acid, 1-pentanol and hexanoic acid methyl ester, and that by S. maltophilia were hexanoic acid. The production of extensive key-VOCs was significantly and negatively correlated with C20:0, C23:0 and C18:ln9t degradation. This study can provide a basis for inhibiting common spoilage bacteria and promoting high-quality processing of fresh lamb.


Asunto(s)
Acinetobacter , Técnicas de Cocultivo , Microbiología de Alimentos , Pseudomonas , Carne Roja , Stenotrophomonas maltophilia , Compuestos Orgánicos Volátiles , Animales , Compuestos Orgánicos Volátiles/análisis , Compuestos Orgánicos Volátiles/metabolismo , Pseudomonas/metabolismo , Pseudomonas/crecimiento & desarrollo , Acinetobacter/crecimiento & desarrollo , Acinetobacter/metabolismo , Stenotrophomonas maltophilia/crecimiento & desarrollo , Stenotrophomonas maltophilia/metabolismo , Carne Roja/microbiología , Carne Roja/análisis , Ovinos , Almacenamiento de Alimentos , Frío , Ácidos Grasos no Esterificados/metabolismo , Ácidos Grasos no Esterificados/análisis , Aminoácidos/metabolismo , Aminoácidos/análisis , Oveja Doméstica/microbiología , Proteolisis
9.
Microbiol Res ; 284: 127738, 2024 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-38692035

RESUMEN

This study aimed to (i) investigate the potential for enhanced phytoremediation to remove contaminants from soil historically co-contaminated with petroleum hydrocarbons (PHs) and heavy metals (HMs) and (ii) analyze the expression of crucial bacterial genes and whole metatranscriptomics profiles for better understanding of soil processes during applied treatment. Phytoremediation was performed using Zea mays and supported by the Pseudomonas qingdaonensis ZCR6 strain and a natural biofertilizer: meat and bone meal (MBM). In previous investigations, mechanisms supporting plant growth and PH degradation were described in the ZCR6 strain. Here, ZCR6 survived in the soil throughout the experiment, but the efficacy of PH removal from all soils fertilized with MBM reached 32 % regardless of the bacterial inoculation. All experimental groups contained 2 % (w/w) MBM. The toxic effect of this amendment on plants was detected 30 days after germination, irrespective of ZCR6 inoculation. Among the 17 genes tested using the qPCR method, only expression of the acdS gene, encoding 1-aminocyclopropane-1-carboxylic acid deaminase, and the CYP153 gene, encoding cytochrome P450-type alkane hydroxylase, was detected in soils. Metatranscriptomic analysis of soils indicated increased expression of methane particulated ammonia monooxygenase subunit A (pmoA-amoA) by Nitrosomonadales bacteria in all soils enriched with MBM compared to the non-fertilized control. We suggest that the addition of 2 % (w/w) MBM caused the toxic effect on plants via the rapid release of ammonia, and this led to high pmoA-amoA expression. In parallel, due to its wide substrate specificity, enhanced bacterial hydrocarbon removal in MBM-treated soils was observed. The metatranscriptomic results indicate that MBM application should be considered to improve bioremediation of soils polluted with PHs rather than phytoremediation. However, lower concentrations of MBM could be considered for phytoremediation enhancement. From a broader perspective, these results indicated the superior capability of metatranscriptomics to investigate the microbial mechanisms driving various bioremediation techniques.


Asunto(s)
Biodegradación Ambiental , Pseudomonas , Microbiología del Suelo , Contaminantes del Suelo , Zea mays , Contaminantes del Suelo/metabolismo , Zea mays/metabolismo , Zea mays/microbiología , Pseudomonas/genética , Pseudomonas/metabolismo , Pseudomonas/aislamiento & purificación , Metales Pesados/metabolismo , Petróleo/metabolismo , Suelo/química , Hidrocarburos/metabolismo , Perfilación de la Expresión Génica , Liasas de Carbono-Carbono/metabolismo , Liasas de Carbono-Carbono/genética , Transcriptoma
10.
Chemosphere ; 358: 142136, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38692363

RESUMEN

The soil-water interface is replete with photic biofilm and iron minerals; however, the potential of how iron minerals promote biotic nitrate removal is still unknown. This study investigates the physiological and ecological responses of photic biofilm to hematite (Fe2O3), in order to explore a practically feasible approach for in-situ nitrate removal. The nitrate removal by photic biofilm was significantly higher in the presence of Fe2O3 (92.5%) compared to the control (82.8%). Results show that the presence of Fe2O3 changed the microbial community composition of the photic biofilm, facilitates the thriving of Magnetospirillum and Pseudomonas, and promotes the growth of photic biofilm represented by the extracellular polymeric substance (EPS) and the content of chlorophyll. The presence of Fe2O3 also induces oxidative stress (•O2-) in the photic biofilm, which was demonstrated by electron spin resonance spectrometry. However, the photic biofilm could improve the EPS productivity to prevent the entrance of Fe2O3 to cells in the biofilm matrix and mitigate oxidative stress. The Fe2O3 then promoted the relative abundance of Magnetospirillum and Pseudomonas and the activity of nitrate reductase, which accelerates nitrate reduction by the photic biofilm. This study provides an insight into the interaction between iron minerals and photic biofilm and demonstrates the possibility of combining biotic and abiotic methods to improve the in-situ nitrate removal rate.


Asunto(s)
Biopelículas , Compuestos Férricos , Nitratos , Compuestos Férricos/metabolismo , Compuestos Férricos/química , Nitratos/metabolismo , Estrés Oxidativo , Pseudomonas/fisiología , Pseudomonas/metabolismo
11.
Molecules ; 29(9)2024 May 05.
Artículo en Inglés | MEDLINE | ID: mdl-38731634

RESUMEN

Cellular slime molds are excellent model organisms in the field of cell and developmental biology because of their simple developmental patterns. During our studies on the identification of bioactive molecules from secondary metabolites of cellular slime molds toward the development of novel pharmaceuticals, we revealed the structural diversity of secondary metabolites. Cellular slime molds grow by feeding on bacteria, such as Klebsiella aerogenes and Escherichia coli, without using medium components. Although changing the feeding bacteria is expected to affect dramatically the secondary metabolite production, the effect of the feeding bacteria on the production of secondary metabolites is not known. Herein, we report the isolation and structure elucidation of clavapyrone (1) from Dictyostelium clavatum, intermedipyrone (2) from D. magnum, and magnumiol (3) from D. intermedium. These compounds are not obtained from usual cultural conditions with Klebsiella aerogenes but obtained from coincubated conditions with Pseudomonas spp. The results demonstrate the diversity of the secondary metabolites of cellular slime molds and suggest that widening the range of feeding bacteria for cellular slime molds would increase their application potential in drug discovery.


Asunto(s)
Dictyostelium , Pseudomonas , Pironas , Pironas/química , Pironas/farmacología , Pseudomonas/metabolismo , Pseudomonas/química , Estructura Molecular , Metabolismo Secundario
12.
PeerJ ; 12: e17442, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-38818456

RESUMEN

Confronting the environmental threat posed by textile dyes, this study highlights bioremediation as a pivotal solution to mitigate the impacts of Crystal Violet, a widely-utilized triphenylmethane dye known for its mutagenic and mitotic toxicity. We isolated and identified several bacterial strains capable of degrading Crystal Violet under various environmental conditions. Newly identified strains, including Mycolicibacterium nivoides, Chryseobacterium sp., Agrobacterium rhizogenes, Pseudomonas crudilactis, and Pseudomonas koreensis demonstrated significant decolorization activity of Crystal Violet, complementing the already known capabilities of Stenotrophomonas maltophilia. Initial experiments using crude extracts confirmed their degradation potential, followed by detailed studies that investigated the impact of different pH levels and temperatures on some strains' degradation efficiency. Depending on the bacteria, the degree of activity change according to pH and temperature was different. At 37 °C, Chryseobacterium sp. and Stenotrophomonas maltophilia exhibited higher degradation activity compared to 25 °C, while Pseudomonas crudilactis and Mycolicibacterium nivoides did not exhibit a statistically significant difference between the two temperatures. Mycolicibacterium nivoides performed optimally at pH 8, while Pseudomonas crudilactis showed high activity at pH 5. Stenotrophomonas maltophilia's activity remained consistent across the pH range. These findings not only underscore the effectiveness of these bacteria as agents for Crystal Violet degradation but also pave the way for their application in large-scale bioremediation processes for the treatment of textile effluents, marking them as vital to environmental sustainability efforts.


Asunto(s)
Biodegradación Ambiental , Violeta de Genciana , Violeta de Genciana/metabolismo , Concentración de Iones de Hidrógeno , Temperatura , Pseudomonas/metabolismo , Pseudomonas/genética , Stenotrophomonas maltophilia/metabolismo , Colorantes/metabolismo , Bacterias/metabolismo , Bacterias/genética
13.
Methods Enzymol ; 697: 345-422, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-38816129

RESUMEN

This chapter describes how to test different amyloid preparations for catalytic properties. We describe how to express, purify, prepare and test two types of pathological amyloid (tau and α-synuclein) and two functional amyloid proteins, namely CsgA from Escherichia coli and FapC from Pseudomonas. We therefore preface the methods section with an introduction to these two examples of functional amyloid and their remarkable structural and kinetic properties and high physical stability, which renders them very attractive for a range of nanotechnological designs, both for structural, medical and catalytic purposes. The simplicity and high surface exposure of the CsgA amyloid is particularly useful for the introduction of new functional properties and we therefore provide a computational protocol to graft active sites from an enzyme of interest into the amyloid structure. We hope that the methods described will inspire other researchers to explore the remarkable opportunities provided by bacterial functional amyloid in biotechnology.


Asunto(s)
Amiloide , Proteínas de Escherichia coli , Escherichia coli , Ingeniería de Proteínas , alfa-Sinucleína , Proteínas tau , Amiloide/química , Amiloide/metabolismo , Proteínas de Escherichia coli/metabolismo , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/genética , alfa-Sinucleína/química , alfa-Sinucleína/metabolismo , Escherichia coli/genética , Escherichia coli/metabolismo , Ingeniería de Proteínas/métodos , Proteínas tau/metabolismo , Proteínas tau/química , Humanos , Proteínas Bacterianas/química , Proteínas Bacterianas/metabolismo , Proteínas Bacterianas/genética , Pseudomonas/metabolismo , Pseudomonas/química , Catálisis , Dominio Catalítico
14.
PLoS One ; 19(5): e0301252, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-38696454

RESUMEN

Bacteria are exposed to reactive oxygen and nitrogen species that provoke oxidative and nitrosative stress which can lead to macromolecule damage. Coping with stress conditions involves the adjustment of cellular responses, which helps to address metabolic challenges. In this study, we performed a global transcriptomic analysis of the response of Pseudomonas extremaustralis to nitrosative stress, induced by S-nitrosoglutathione (GSNO), a nitric oxide donor, under microaerobic conditions. The analysis revealed the upregulation of genes associated with inositol catabolism; a compound widely distributed in nature whose metabolism in bacteria has aroused interest. The RNAseq data also showed heightened expression of genes involved in essential cellular processes like transcription, translation, amino acid transport and biosynthesis, as well as in stress resistance including iron-dependent superoxide dismutase, alkyl hydroperoxide reductase, thioredoxin, and glutathione S-transferase in response to GSNO. Furthermore, GSNO exposure differentially affected the expression of genes encoding nitrosylation target proteins, encompassing metalloproteins and proteins with free cysteine and /or tyrosine residues. Notably, genes associated with iron metabolism, such as pyoverdine synthesis and iron transporter genes, showed activation in the presence of GSNO, likely as response to enhanced protein turnover. Physiological assays demonstrated that P. extremaustralis can utilize inositol proficiently under both aerobic and microaerobic conditions, achieving growth comparable to glucose-supplemented cultures. Moreover, supplementing the culture medium with inositol enhances the stress tolerance of P. extremaustralis against combined oxidative-nitrosative stress. Concordant with the heightened expression of pyoverdine genes under nitrosative stress, elevated pyoverdine production was observed when myo-inositol was added to the culture medium. These findings highlight the influence of nitrosative stress on proteins susceptible to nitrosylation and iron metabolism. Furthermore, the activation of myo-inositol catabolism emerges as a protective mechanism against nitrosative stress, shedding light on this pathway in bacterial systems, and holding significance in the adaptation to unfavorable conditions.


Asunto(s)
Inositol , Estrés Nitrosativo , Pseudomonas , Inositol/metabolismo , Pseudomonas/metabolismo , Pseudomonas/genética , Regulación Bacteriana de la Expresión Génica/efectos de los fármacos , S-Nitrosoglutatión/metabolismo , S-Nitrosoglutatión/farmacología , Aerobiosis , Proteínas Bacterianas/metabolismo , Proteínas Bacterianas/genética , Perfilación de la Expresión Génica , Estrés Oxidativo
15.
J Hazard Mater ; 470: 134178, 2024 May 15.
Artículo en Inglés | MEDLINE | ID: mdl-38608581

RESUMEN

Triclocarban (TCC), an emerging organic contaminant, poses a potential threat to human health with long-term exposure. Here, Rhodococcus rhodochrous BX2 and Pseudomonas sp. LY-1 were utilized to degrade TCC at environmental related concentrations for enhancing TCC biodegradation and investigating whether the toxicity of intermediate metabolites is lower than that of the parent compound. The results demonstrated that the bacterial consortium could degrade TCC by 82.0% within 7 days. The calculated 96 h LC50 for TCC, as well as its main degradation product 3,4-Dichloroaniline (DCA) were 0.134 mg/L and 1.318 mg/L respectively. Biodegradation also alleviated histopathological lesions induced by TCC in zebrafish liver and gut tissues. Liver transcriptome analysis revealed that biodegradation weakened differential expression of genes involved in disrupted immune regulation and lipid metabolism caused by TCC, verified through RT-qPCR analysis and measurement of related enzyme activities and protein contents. 16 S rRNA sequencing indicated that exposure to TCC led to gut microbial dysbiosis, which was efficiently improved through TCC biodegradation, resulting in decreased relative abundances of major pathogens. Overall, this study evaluated potential environmental risks associated with biodegradation of TCC and explored possible biodetoxification mechanisms, providing a theoretical foundation for efficient and harmless bioremediation of environmental pollutants.


Asunto(s)
Biodegradación Ambiental , Carbanilidas , Microbioma Gastrointestinal , Hígado , Pseudomonas , Rhodococcus , Pez Cebra , Animales , Carbanilidas/toxicidad , Hígado/metabolismo , Hígado/efectos de los fármacos , Microbioma Gastrointestinal/efectos de los fármacos , Rhodococcus/metabolismo , Pseudomonas/metabolismo , Contaminantes Químicos del Agua/toxicidad , Contaminantes Químicos del Agua/metabolismo , Consorcios Microbianos/efectos de los fármacos , Compuestos de Anilina/toxicidad , Compuestos de Anilina/metabolismo , Inactivación Metabólica
16.
Sci Total Environ ; 927: 172402, 2024 Jun 01.
Artículo en Inglés | MEDLINE | ID: mdl-38608888

RESUMEN

Microbial fuel cells (MFCs) have significant potential for environmental remediation and energy recycling directly from refractory aromatic hydrocarbons. To boost the capacities of toluene removal and the electricity production in MFCs, this study constructed a polyaniline@carbon nanotube (PANI@CNT) bioanode with a three-dimensional framework structure. Compared with the control bioanode based on graphite sheet, the PANI@CNT bioanode increased the output voltage and toluene degradation kinetics by 2.27-fold and 1.40-fold to 0.399 V and 0.60 h-1, respectively. Metagenomic analysis revealed that the PANI@CNT bioanode promoted the selective enrichment of Pseudomonas, with the dual functions of degrading toluene and generating exogenous electrons. Additionally, compelling genomic evidence elucidating the relationship between functional genes and microorganisms was found. It was interesting that the genes derived from Pseudomonas related to extracellular electron transfer, tricarboxylic acid cycle, and toluene degradation were upregulated due to the existence of PANI@CNT. This study provided biomolecular insights into key genes and related microorganisms that effectively facilitated the organic pollutant degradation and energy recovery in MFCs, offering a novel alternative for high-performance bioanode.


Asunto(s)
Fuentes de Energía Bioeléctrica , Metagenómica , Nanotubos de Carbono , Tolueno , Tolueno/metabolismo , Compuestos de Anilina , Biodegradación Ambiental , Electricidad , Pseudomonas/metabolismo , Pseudomonas/genética , Electrodos
17.
PLoS Biol ; 22(4): e3002232, 2024 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-38662644

RESUMEN

Plant-associated microbes play vital roles in promoting plant growth and health, with plants secreting root exudates into the rhizosphere to attract beneficial microbes. Exudate composition defines the nature of microbial recruitment, with different plant species attracting distinct microbiota to enable optimal adaptation to the soil environment. To more closely examine the relationship between plant genotype and microbial recruitment, we analysed the rhizosphere microbiomes of landrace (Chevallier) and modern (NFC Tipple) barley (Hordeum vulgare) cultivars. Distinct differences were observed between the plant-associated microbiomes of the 2 cultivars, with the plant-growth promoting rhizobacterial genus Pseudomonas substantially more abundant in the Tipple rhizosphere. Striking differences were also observed between the phenotypes of recruited Pseudomonas populations, alongside distinct genotypic clustering by cultivar. Cultivar-driven Pseudomonas selection was driven by root exudate composition, with the greater abundance of hexose sugars secreted from Tipple roots attracting microbes better adapted to growth on these metabolites and vice versa. Cultivar-driven selection also operates at the molecular level, with both gene expression and the abundance of ecologically relevant loci differing between Tipple and Chevallier Pseudomonas isolates. Finally, cultivar-driven selection is important for plant health, with both cultivars showing a distinct preference for microbes selected by their genetic siblings in rhizosphere transplantation assays.


Asunto(s)
Genotipo , Hordeum , Microbiota , Raíces de Plantas , Pseudomonas , Rizosfera , Hordeum/microbiología , Hordeum/genética , Hordeum/metabolismo , Raíces de Plantas/microbiología , Raíces de Plantas/metabolismo , Microbiota/fisiología , Microbiota/genética , Pseudomonas/genética , Pseudomonas/metabolismo , Pseudomonas/fisiología , Microbiología del Suelo , Exudados de Plantas/metabolismo
18.
Nat Commun ; 15(1): 3520, 2024 Apr 25.
Artículo en Inglés | MEDLINE | ID: mdl-38664402

RESUMEN

The root-associated microbiota plays an important role in the response to environmental stress. However, the underlying mechanisms controlling the interaction between salt-stressed plants and microbiota are poorly understood. Here, by focusing on a salt-tolerant plant wild soybean (Glycine soja), we demonstrate that highly conserved microbes dominated by Pseudomonas are enriched in the root and rhizosphere microbiota of salt-stressed plant. Two corresponding Pseudomonas isolates are confirmed to enhance the salt tolerance of wild soybean. Shotgun metagenomic and metatranscriptomic sequencing reveal that motility-associated genes, mainly chemotaxis and flagellar assembly, are significantly enriched and expressed in salt-treated samples. We further find that roots of salt stressed plants secreted purines, especially xanthine, which induce motility of the Pseudomonas isolates. Moreover, exogenous application for xanthine to non-stressed plants results in Pseudomonas enrichment, reproducing the microbiota shift in salt-stressed root. Finally, Pseudomonas mutant analysis shows that the motility related gene cheW is required for chemotaxis toward xanthine and for enhancing plant salt tolerance. Our study proposes that wild soybean recruits beneficial Pseudomonas species by exudating key metabolites (i.e., purine) against salt stress.


Asunto(s)
Glycine max , Raíces de Plantas , Pseudomonas , Rizosfera , Pseudomonas/genética , Pseudomonas/metabolismo , Glycine max/microbiología , Glycine max/metabolismo , Glycine max/genética , Raíces de Plantas/microbiología , Raíces de Plantas/metabolismo , Microbiota/efectos de los fármacos , Purinas/metabolismo , Purinas/farmacología , Estrés Salino/genética , Quimiotaxis/genética , Tolerancia a la Sal/genética , Microbiología del Suelo , Xantina/metabolismo , Proteínas Bacterianas/metabolismo , Proteínas Bacterianas/genética
19.
Microb Ecol ; 87(1): 62, 2024 Apr 29.
Artículo en Inglés | MEDLINE | ID: mdl-38683223

RESUMEN

Here, we demonstrate the beneficial effect of surfactant-producing pseudomonads on Pantoea eucalypti 299R. We conducted a series of experiments in environments of increasing complexity. P. eucalypti 299R (Pe299R), and Pseudomonas sp. FF1 (Pff1) or Pe299R and surfactant-production deficient Pseudomonas sp. FF1::ΔviscB (Pff1ΔviscB) were co-inoculated in broth, on swarming agar plates, and on plants. In broth, there were no differences in the growth dynamics of Pe299R when growing in the presence of Pff1 or Pff1ΔviscB. By contrast, on swarming agar plates, Pe299R was able to co-swarm with Pff1 which led to a significant increase in Pe299R biomass compared to Pe299R growing with Pff1ΔviscB or in monoculture. Finally in planta, and using the single-cell bioreporter for reproductive success (CUSPER), we found a temporally distinct beneficial effect of Pff1 on co-inoculated Pe299R subpopulations that did not occur in the presence of Pff1ΔviscB. We tested three additional surfactant-producing pseudomonads and their respective surfactant knockout mutants on PE299R on swarming agar showing similar results. This led us to propose a model for the positive effect of surfactant production during leaf colonization. Our results indicate that co-motility might be common during leaf colonization and adds yet another facet to the already manyfold roles of surfactants.


Asunto(s)
Pantoea , Pseudomonas , Tensoactivos , Pantoea/genética , Pantoea/metabolismo , Pantoea/fisiología , Pantoea/crecimiento & desarrollo , Pseudomonas/metabolismo , Pseudomonas/genética , Pseudomonas/crecimiento & desarrollo , Pseudomonas/fisiología , Tensoactivos/metabolismo
20.
J Environ Manage ; 358: 120826, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38608579

RESUMEN

Hydroxylamine can disrupt the protein translation process of most reported nitrogen-converting bacteria, and thus hinder the reproduction of bacteria and nitrogen conversion capacity. However, the effect of hydroxylamine on the denitrification ability of strain EN-F2 is unclear. In this study, the cell growth, aerobic denitrification ability, and nitrous oxide (N2O) emission by Pseudomonas taiwanensis were carefully investigated by addition of hydroxylamine at different concentrations. The results demonstrated that the rates of nitrate and nitrite reduction were enhanced by 2.51 and 2.78 mg/L/h after the addition of 8.0 and 12.0 mg/L hydroxylamine, respectively. The N2O production from nitrate and nitrite reaction systems were strongly promoted by 4.39 and 8.62 mg/L, respectively, through the simultaneous acceleration of cell growth and both of nitrite and nitrate reduction. Additionally, the enzymatic activities of nitrate reductase and nitrite reductase climbed from 0.13 and 0.01 to 0.22 and 0.04 U/mg protein when hydroxylamine concentration increased from 0 to 6.0 and 12.0 mg/L. This may be the main mechanism for controlling the observed higher denitrification rate and N2O release. Overall, hydroxylamine supplementation supported the EN-F2 strain cell growth, denitrification and N2O emission rates.


Asunto(s)
Desnitrificación , Hidroxilamina , Óxido Nitroso , Pseudomonas , Óxido Nitroso/metabolismo , Pseudomonas/metabolismo , Hidroxilamina/metabolismo , Nitratos/metabolismo , Nitritos/metabolismo
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