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1.
Appl Microbiol Biotechnol ; 108(1): 437, 2024 Aug 12.
Artículo en Inglés | MEDLINE | ID: mdl-39133429

RESUMEN

ß-1,6-Glucan plays a crucial role in fungal cell walls by linking the outer layer of mannoproteins and the inner layer of ß-1,3-glucan, contributing significantly to the maintenance of cell wall rigidity. Therefore, the hydrolysis of ß-1,6-glucan by ß-1,6-glucanase directly leads to the disintegration of the fungal cell wall. Here, a novel ß-1,6-glucanase FlGlu30 was identified from the endophytic Flavobacterium sp. NAU1659 and heterologously expressed in Escherichia coli BL21 (DE3). The optimal reaction conditions of purified FlGlu30 were 50℃ and pH 6.0, resulting in a specific activity of 173.1 U/mg using pustulan as the substrate. The hydrolyzed products of FlGlu30 to pustulan were mainly gentianose within 1 h of reaction. With the extension of reaction time, gentianose was gradually hydrolyzed to glucose, indicating that FlGlu30 is an endo-ß-1,6-glucanase. The germination of Magnaporthe oryzae Guy11 spores could not be inhibited by FlGlu30, but the appressorium formation of spores was completely inhibited under the concentration of 250.0 U/mL FlGlu30. The disruptions of cell wall and accumulation of intracellular reactive oxide species (ROS) were observed in FlGlu30-treated M. oryzae Guy11 cells, suggesting the significant importance of ß-1,6-glucan as a potential antifungal target and the potential application of FlGlu30. KEY POINTS: • ß-1,6-Glucan is a key component maintaining the rigid structure of fungal cell wall. • ß-1,6-Glucanase is an antifungal protein with significant potential applications. • FlGlu30 is the first reported ß-1, 6-glucanase derived from Flavobacterium.


Asunto(s)
Antifúngicos , Pared Celular , Escherichia coli , Flavobacterium , Glicósido Hidrolasas , Flavobacterium/enzimología , Flavobacterium/genética , Glicósido Hidrolasas/genética , Glicósido Hidrolasas/metabolismo , Hidrólisis , Antifúngicos/farmacología , Antifúngicos/metabolismo , Pared Celular/metabolismo , Escherichia coli/genética , Escherichia coli/metabolismo , Glucanos/metabolismo , Concentración de Iones de Hidrógeno , beta-Glucanos/metabolismo , Clonación Molecular , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismo , Temperatura , Especificidad por Sustrato , Polisacáridos
2.
Front Microbiol ; 15: 1429065, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-39027104

RESUMEN

As an essential component of the fungal cell wall, ß-1,6-glucan has an important role in the growth and development of fungi, but its distribution has not been investigated in Magnaporthe oryzae. Here, a novel ß-1,6-glucanase from M. oryzae, MoGlu16, was cloned and expressed in Pichia pastoris. The enzyme was highly active on pustulan, with a specific activity of 219.0 U/mg at pH 5.0 and 50°C, and showed great selectivity for continuous ß-1,6-glycosidic bonding polysaccharides. Based on this, ß-1,6-glucan was selectively visualized in the vegetative hyphae, conidia and bud tubes of M. oryzae using a hydrolytically inactive GFP-tagged MoGlu16 with point mutations at the catalytic position (His-MoGlu16E236A-Gfp). The spore germination and appressorium formation were significantly inhibited after incubation of 105/ml conidia with 0.03 µg/µl MoGlu16. Mycelia treated with MoGlu16 produced reactive oxygen species and triggered the cell wall integrity pathway, increasing the expression levels of genes involved in cell wall polysaccharide synthesis. These results revealed that MoGlu16 participated in the remodeling of cell wall in M. oryzae, laying a foundation for the analysis of cell wall structure.

3.
Nano Lett ; 24(31): 9768-9775, 2024 Aug 07.
Artículo en Inglés | MEDLINE | ID: mdl-39057181

RESUMEN

Excessive production of waste polyethylene terephthalate (PET) poses an ecological challenge, which necessitates developing technologies to extract the values from end-of-life PET. Upcycling has proven effective in addressing the low profitability of current recycling strategies, yet existing upcycling technologies operate under energy-intensive conditions. Here we report a cascade strategy to steer the transformation of PET waste into glycolate in an overall yield of 92.6% under ambient conditions. The cascade approach involves setting up a robust hydrolase with 95.6% PET depolymerization into ethylene glycol (EG) monomer within 12 h, followed by an electrochemical process initiated by a CO-tolerant Pd/Ni(OH)2 catalyst to convert the EG intermediate into glycolate with high Faradaic efficiency of 97.5%. Techno-economic analysis and life cycle assessment indicate that, compared with the widely adopted electrochemical technology that heavily relies on alkaline pretreatment for PET depolymerization, our designed enzymatic-electrochemical approach offers a cost-effective and low-carbon pathway to upgrade PET.


Asunto(s)
Técnicas Electroquímicas , Tereftalatos Polietilenos , Tereftalatos Polietilenos/química , Catálisis , Glicol de Etileno/química , Poliésteres/química , Reciclaje , Hidrolasas/química
4.
Biotechnol Lett ; 2024 Jul 31.
Artículo en Inglés | MEDLINE | ID: mdl-39083114

RESUMEN

OBJECTIVE: To introduce the Cre-loxP system for constructing marker-less multiple-gene deletion mutants in Pectobacterium, overcoming limitations of antibiotic markers and enhancing the understanding of pathogenic mechanisms. RESULTS: Firstly, a plasmid named pEX18-Cre, containing a sacB sucrose suicide gene, was constructed to express Cre recombinase in Pectobacterium. Secondly, a mutant in which the loxP-Km fragment replaced the target gene was obtained through homologous recombination double-crossover with the chromosome. Finally, pEX18-Cre was introduced into the mutant to excise the DNA between the loxP sites, thereby removing the markers and achieving multiple gene deletions. By utilizing the Cre-loxP system, we successfully constructed multiple marker-less gene deletion mutants in Pectobacterium strains. CONCLUSIONS: The Cre-loxP system efficiently creates marker-less multiple-gene deletion mutants, enhancing the study of Pectobacterium pathogenic mechanisms by overcoming antibiotic marker limitations.

5.
Mol Plant Pathol ; 25(6): e13488, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38924248

RESUMEN

Xylanases derived from fungi, including phytopathogenic and nonpathogenic fungi, are commonly known to trigger plant immune responses. However, there is limited research on the ability of bacterial-derived xylanases to trigger plant immunity. Here, a novel xylanase named CcXyn was identified from the myxobacterium Cystobacter sp. 0969, which displays broad-spectrum activity against both phytopathogenic fungi and bacteria. CcXyn belongs to the glycoside hydrolases (GH) 11 family and shares a sequence identity of approximately 32.0%-45.0% with fungal xylanases known to trigger plant immune responses. Treatment of Nicotiana benthamiana with purified CcXyn resulted in the induction of hypersensitive response (HR) and defence responses, such as the production of reactive oxygen species (ROS) and upregulation of defence gene expression, ultimately enhancing the resistance of N. benthamiana to Phytophthora nicotianae. These findings indicated that CcXyn functions as a microbe-associated molecular pattern (MAMP) elicitor for plant immune responses, independent of its enzymatic activity. Similar to fungal xylanases, CcXyn was recognized by the NbRXEGL1 receptor on the cell membrane of N. benthamiana. Downstream signalling was shown to be independent of the BAK1 and SOBIR1 co-receptors, indicating the involvement of other co-receptors in signal transduction following CcXyn recognition in N. benthamiana. Moreover, xylanases from other myxobacteria also demonstrated the capacity to trigger plant immune responses in N. benthamiana, indicating that xylanases in myxobacteria are ubiquitous in triggering plant immune functions. This study expands the understanding of xylanases with plant immune response-inducing properties and provides a theoretical basis for potential applications of myxobacteria in biocontrol strategies against phytopathogens.


Asunto(s)
Nicotiana , Inmunidad de la Planta , Nicotiana/microbiología , Nicotiana/inmunología , Nicotiana/genética , Enfermedades de las Plantas/microbiología , Enfermedades de las Plantas/inmunología , Endo-1,4-beta Xilanasas/metabolismo , Endo-1,4-beta Xilanasas/genética , Especies Reactivas de Oxígeno/metabolismo , Regulación de la Expresión Génica de las Plantas
6.
J Agric Food Chem ; 72(27): 15213-15227, 2024 Jul 10.
Artículo en Inglés | MEDLINE | ID: mdl-38916250

RESUMEN

Researchers often consider microorganisms from Stenotrophomonas sp. to be beneficial for plants. In this study, the biocidal effects and action mechanisms of volatile organic compounds (VOCs) produced by Stenotrophomonas sp. NAU1697 were investigated. The mycelial growth and spore germination of Fusarium oxysporum f. sp. cucumerinum (FOC), which is a pathogen responsible for cucumber wilt disease, were significantly inhibited by VOCs emitted from NAU1697. Among the VOCs, 33 were identified, 11 of which were investigated for their antifungal properties. Among the tested compounds, 2-ethylhexanol exhibited the highest antifungal activity toward FOC, with a minimum inhibitory volume (MIV) of 3.0 µL/plate (equal to 35.7 mg/L). Damage to the hyphal cell wall and cell membrane integrity caused a decrease in the ergosterol content and a burst of reactive oxygen species (ROS) after 2-ethylhexanol treatment. DNA damage, which is indicative of apoptosis-like cell death, was monitored in 2-ethylhexanol-treated FOC cells by using micro-FTIR analysis. Furthermore, the activities of mitochondrial dehydrogenases and mitochondrial respiratory chain complex III in 2-ethylhexanol-treated FOC cells were significantly decreased. The transcription levels of genes associated with redox reactions and the cell wall integrity (CWI) pathway were significantly upregulated, thus indicating that stress was caused by 2-ethylhexanol. The findings of this research provide a new avenue for the sustainable management of soil-borne plant fungal diseases.


Asunto(s)
Fungicidas Industriales , Fusarium , Hexanoles , Enfermedades de las Plantas , Stenotrophomonas , Compuestos Orgánicos Volátiles , Fusarium/efectos de los fármacos , Fusarium/crecimiento & desarrollo , Compuestos Orgánicos Volátiles/farmacología , Compuestos Orgánicos Volátiles/química , Enfermedades de las Plantas/microbiología , Fungicidas Industriales/farmacología , Fungicidas Industriales/química , Hexanoles/farmacología , Hexanoles/química , Stenotrophomonas/efectos de los fármacos , Stenotrophomonas/genética , Stenotrophomonas/metabolismo , Especies Reactivas de Oxígeno/metabolismo , Pruebas de Sensibilidad Microbiana
7.
J Hazard Mater ; 472: 134493, 2024 Jul 05.
Artículo en Inglés | MEDLINE | ID: mdl-38696960

RESUMEN

Environmental pollution caused by plastic waste has become global problem that needs to be considered urgently. In the pursuit of a circular plastic economy, biodegradation provides an attractive strategy for managing plastic wastes, whereas effective plastic-degrading microbes and enzymes are required. In this study, we report that Blastobotrys sp. G-9 isolated from discarded plastic in landfills is capable of depolymerizing polyurethanes (PU) and poly (butylene adipate-co-terephthalate) (PBAT). Strain G-9 degrades up to 60% of PU foam after 21 days of incubation at 28 â„ƒ by breaking down carbonyl groups via secretory hydrolase as confirmed by structural characterization of plastics and degradation products identification. Within the supernatant of strain G-9, we identify a novel cutinase BaCut1, belonging to the esterase family, that can reproduce the same effect. BaCut1 demonstrates efficient degradation toward commercial polyester plastics PU foam (0.5 mg enzyme/25 mg plastic) and agricultural film PBAT (0.5 mg enzyme/10 mg plastic) with 50% and 18% weight loss at 37 â„ƒ for 48 h, respectively. BaCut1 hydrolyzes PU into adipic acid as a major end-product with 42.9% recovery via ester bond cleavage, and visible biodegradation is also identified from PBAT, which is a beneficial feature for future recycling economy. Molecular docking, along with products distribution, elucidates a special substrate-binding modes of BaCut1 with plastic substrate analogue. BaCut1-mediated polyester plastic degradation offers an alternative approach for managing PU plastic wastes through possible bio-recycling.


Asunto(s)
Biodegradación Ambiental , Hidrolasas de Éster Carboxílico , Poliuretanos , Reciclaje , Poliuretanos/química , Hidrolasas de Éster Carboxílico/metabolismo , Hidrolasas de Éster Carboxílico/química , Burkholderiales/enzimología , Burkholderiales/metabolismo , Ácidos Ftálicos/metabolismo , Ácidos Ftálicos/química , Plásticos/química , Plásticos/metabolismo , Proteínas Bacterianas/metabolismo , Proteínas Bacterianas/química , Poliésteres
8.
Int J Biol Macromol ; 266(Pt 2): 131413, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38582482

RESUMEN

ß-1,3-Galactanases selectively degrade ß-1,3-galactan, thus it is an attractive enzyme technique to map high-galactan structure and prepare galactooligosaccharides. In this work, a gene encoding exo-ß-1,3-galactanase (PxGal43) was screened form Paenibacillus xylanexedens, consisting of a GH43 domain, a CBM32 domain and α-L-arabinofuranosidase B (AbfB) domain. Using ß-1,3-galactan (AG-II-P) as substrate, the recombined enzyme expressed in Escherichia coli BL21 (DE3) exhibited an optimal activity at pH 7.0 and 30 °C. The enzyme was thermostable, retaining >70 % activity after incubating at 50 °C for 2 h. In addition, it showed high tolerance to various metal ions, denaturants and detergents. Substrate specificity indicated that PxGal43 hydrolysis only ß-1,3-linked galactosyl oligosaccharides and polysaccharides, releasing galactose as an exo-acting manner. The function of the CBM32 and AbfB domain was revealed by their sequential deletion and suggested that their connection to the catalytic domain was crucial for the oligomerization, catalytic activity, substrate binding and thermal stability of PxGal43. The substrate docking and site-directed mutagenesis proposed that Glu191, Gln244, Asp138 and Glu81 served as the catalytic acid, catalytic base, pKa modulator, and substrate identifier in PxGal43, respectively. These results provide a better understanding and optimization of multi-domain bacterial GH43 ß-1,3-galactanase for the degradation of arabinogalactan.


Asunto(s)
Glicósido Hidrolasas , Paenibacillus , Paenibacillus/enzimología , Paenibacillus/genética , Glicósido Hidrolasas/genética , Glicósido Hidrolasas/metabolismo , Glicósido Hidrolasas/química , Especificidad por Sustrato , Dominios Proteicos , Concentración de Iones de Hidrógeno , Estabilidad de Enzimas , Cinética , Hidrólisis , Galactanos/metabolismo , Secuencia de Aminoácidos , Temperatura
9.
Appl Environ Microbiol ; 90(4): e0147723, 2024 Apr 17.
Artículo en Inglés | MEDLINE | ID: mdl-38445906

RESUMEN

Plastic degradation by biological systems emerges as a prospective avenue for addressing the pressing global concern of plastic waste accumulation. The intricate chemical compositions and diverse structural facets inherent to polyurethanes (PU) substantially increase the complexity associated with PU waste management. Despite the extensive research endeavors spanning over decades, most known enzymes exhibit a propensity for hydrolyzing waterborne PU dispersion (i.e., the commercial Impranil DLN-SD), with only a limited capacity for the degradation of bulky PU materials. Here, we report a novel cutinase (CpCut1) derived from Cladosporium sp. P7, which demonstrates remarkable efficiency in the degrading of various polyester-PU materials. After 12-h incubation at 55°C, CpCut1 was capable of degrading 40.5% and 20.6% of thermoplastic PU film and post-consumer foam, respectively, while achieving complete depolymerization of Impranil DLN-SD. Further analysis of the degradation intermediates suggested that the activity of CpCut1 primarily targeted the ester bonds within the PU soft segments. The versatile performance of CpCut1 against a spectrum of polyester-PU materials positions it as a promising candidate for the bio-recycling of waste plastics.IMPORTANCEPolyurethane (PU) has a complex chemical composition that frequently incorporates a variety of additives, which poses significant obstacles to biodegradability and recyclability. Recent advances have unveiled microbial degradation and enzymatic depolymerization as promising waste PU disposal strategies. In this study, we identified a gene encoding a cutinase from the PU-degrading fungus Cladosporium sp. P7, which allowed the expression, purification, and characterization of the recombinant enzyme CpCut1. Furthermore, this study identified the products derived from the CpCut1 catalyzed PU degradation and proposed its underlying mechanism. These findings highlight the potential of this newly discovered fungal cutinase as a remarkably efficient tool in the degradation of PU materials.


Asunto(s)
Hidrolasas de Éster Carboxílico , Cladosporium , Poliuretanos , Poliuretanos/química , Poliuretanos/metabolismo , Cladosporium/genética , Cladosporium/metabolismo , Estudios Prospectivos , Biodegradación Ambiental , Poliésteres/metabolismo , Plásticos
10.
Environ Res ; 249: 118468, 2024 May 15.
Artículo en Inglés | MEDLINE | ID: mdl-38354881

RESUMEN

Microorganisms have the potential to be applied for the degradation or depolymerization of polyurethane (PU) and other plastic waste, which have attracted global attention. The appropriate strain or enzyme that can effectively degrade PU is the key to treat PU plastic wastes by biological methods. Here, a polyester PU-degrading bacterium Bacillus sp. YXP1 was isolated and identified from a plastic landfill. Three PU substrates with increasing structure complexities, including Impranil DLN, poly (1,4-butylene adipate)-based PU (PBA-PU), and polyester PU foam, were used to evaluate the degradation capacity of Bacillus sp. YXP1. Under optimal conditions, strain YXP1 could completely degrade 0.5% Impranil DLN within 7 days. After 30 days, the weight loss of polyester PU foam by strain YXP1 was as high as 42.1%. In addition, PBA-PU was applied for degradation pathway analysis due to its clear composition and chemical structure. Five degradation intermediates of PBA-PU were identified, including 4,4'-methylenedianiline (MDA), 1,4-butanediol, adipic acid, and two MDA derivates, indicating that strain YXP1 could depolymerize PBA-PU by the hydrolysis of ester and urethane bonds. Furthermore, the extracellular enzymes produced by strain YXP1 could hydrolyze PBA-PU to generate MDA. Together, this study provides a potential bacterium for the biological treatment of PU plastic wastes and for the mining of functional enzymes.


Asunto(s)
Bacillus , Biodegradación Ambiental , Poliuretanos , Poliuretanos/química , Bacillus/metabolismo , Bacillus/aislamiento & purificación , Bacillus/genética , Poliésteres/metabolismo
11.
Nat Plants ; 10(4): 618-632, 2024 04.
Artículo en Inglés | MEDLINE | ID: mdl-38409290

RESUMEN

Effector proteins secreted by plant pathogenic fungi are important artilleries against host immunity, but there is no precedent of such effectors being explored as antifungal targets. Here we demonstrate that MoErs1, a species-specific effector protein secreted by the rice blast fungus Magnaporthe oryzae, inhibits the function of rice papain-like cysteine protease OsRD21 involved in rice immunity. Disrupting MoErs1-OsRD21 interaction effectively controls rice blast. In addition, we show that FY21001, a structure-function-based designer compound, specifically binds to and inhibits MoErs1 function. FY21001 significantly and effectively controls rice blast in field tests. Our study revealed a novel concept of targeting pathogen-specific effector proteins to prevent and manage crop diseases.


Asunto(s)
Proteínas Fúngicas , Oryza , Enfermedades de las Plantas , Oryza/microbiología , Enfermedades de las Plantas/microbiología , Proteínas Fúngicas/metabolismo , Proteínas Fúngicas/genética , Proteínas de Plantas/metabolismo , Proteínas de Plantas/genética , Interacciones Huésped-Patógeno , Papaína/metabolismo , Ascomicetos , Magnaporthe
12.
Spectrochim Acta A Mol Biomol Spectrosc ; 310: 123895, 2024 Apr 05.
Artículo en Inglés | MEDLINE | ID: mdl-38262294

RESUMEN

Using optical density at 600 nm (OD600) to measure the microbial concentration is a popular approach due to its advantages like quick response and non-destructive. However, the OD600 measurement might be affected by the metabolic pigment, and it would become invalid when the solution dilution is insufficient. To overcome these issues, we proposed to adopt a more robust wavelength at 890 nm to quantify the attenuation of transmission light. After selecting this light source, we designed the light path and the circuit of the online monitoring device. Meanwhile, the random forest algorithm was introduced for temperature compensation and improving the stability of the device. This device was verified by monitoring the microbial concentration of four strains (Yeast, Bacillus, Arthrobacter, and Escherichia coli). The experimental result suggested that the mean absolute percentage error reached 4.11 %, 4.28 %, 4.49 %, and 4.53 % respectively, which is helpful to improve the accuracy of microbial concentration measurement.


Asunto(s)
Bacillus , Escherichia coli/metabolismo , Temperatura
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