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1.
Nat Commun ; 15(1): 4694, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38824157

ABSTRACT

Engineering natural microbiomes for biotechnological applications remains challenging, as metabolic interactions within microbiomes are largely unknown, and practical principles and tools for microbiome engineering are still lacking. Here, we present a combinatory top-down and bottom-up framework to engineer natural microbiomes for the construction of function-enhanced synthetic microbiomes. We show that application of herbicide and herbicide-degrader inoculation drives a convergent succession of different natural microbiomes toward functional microbiomes (e.g., enhanced bioremediation of herbicide-contaminated soils). We develop a metabolic modeling pipeline, SuperCC, that can be used to document metabolic interactions within microbiomes and to simulate the performances of different microbiomes. Using SuperCC, we construct bioremediation-enhanced synthetic microbiomes based on 18 keystone species identified from natural microbiomes. Our results highlight the importance of metabolic interactions in shaping microbiome functions and provide practical guidance for engineering natural microbiomes.


Subject(s)
Biodegradation, Environmental , Herbicides , Microbiota , Microbiota/genetics , Herbicides/metabolism , Soil Microbiology , Soil Pollutants/metabolism , Models, Biological , Bacteria/metabolism , Bacteria/genetics , Bacteria/classification
2.
J Agric Food Chem ; 72(20): 11405-11414, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38717990

ABSTRACT

This study investigated the multiple herbicide resistance (MHR) mechanism of one Echinochloa crus-galli population that was resistant to florpyrauxifen-benzyl (FPB), cyhalofop-butyl (CHB), and penoxsulam (PEX). This population carried an Ala-122-Asn mutation in the acetolactate synthase (ALS) gene but no mutation in acetyl-CoA carboxylase (ACCase) and transport inhibitor response1 (TIR1) genes. The metabolism rate of PEX was 2-fold higher, and the production of florpyrauxifen-acid and cyhalofop-acid was lower in the resistant population. Malathion and 4-chloro-7-nitrobenzoxadiazole (NBD-Cl) could reverse the resistance, suggesting that cytochrome P450 (CYP450) and glutathione S-transferase (GST) contribute to the enhanced metabolism. According to RNA-seq and qRT-PCR validation, two CYP450 genes (CYP71C42 and CYP71D55), one GST gene (GSTT2), two glycosyltransferase genes (rhamnosyltransferase 1 and IAAGLU), and two ABC transporter genes (ABCG1 and ABCG25) were induced by CHB, FPB, and PEX in the resistant population. This study revealed that the target mutant and enhanced metabolism were involved in the MHR mechanism in E. crus-galli.


Subject(s)
Cytochrome P-450 Enzyme System , Echinochloa , Herbicide Resistance , Herbicides , Mutation , Plant Proteins , Herbicide Resistance/genetics , Herbicides/pharmacology , Herbicides/metabolism , Echinochloa/genetics , Echinochloa/drug effects , Echinochloa/metabolism , Echinochloa/growth & development , Plant Proteins/genetics , Plant Proteins/metabolism , Cytochrome P-450 Enzyme System/genetics , Cytochrome P-450 Enzyme System/metabolism , Acetyl-CoA Carboxylase/genetics , Acetyl-CoA Carboxylase/metabolism , Plant Weeds/drug effects , Plant Weeds/genetics , Plant Weeds/metabolism , Acetolactate Synthase/genetics , Acetolactate Synthase/metabolism , Butanes , Nitriles , Sulfonamides , Uridine/analogs & derivatives
3.
J Agric Food Chem ; 72(21): 12014-12028, 2024 May 29.
Article in English | MEDLINE | ID: mdl-38748759

ABSTRACT

Alopecurus aequalis Sobol. is a predominant grass weed in Chinese winter wheat fields, posing a substantial threat to crop production owing to its escalating herbicide resistance. This study documented the initial instance of an A. aequalis population (AHFT-3) manifesting resistance to multiple herbicides targeting four distinct sites: acetyl-CoA carboxylase (ACCase), acetolactate synthase, photosystem II, and 1-deoxy-d-xylulose-5-phosphate synthase. AHFT-3 carried an Asp-to-Gly mutation at codon 2078 of ACCase, with no mutations in the remaining three herbicide target genes, and exhibited no overexpression of any target gene. Compared with the susceptible population AHFY-3, AHFT-3 metabolized mesosulfuron-methyl, isoproturon, and bixlozone faster. The inhibition and comparison of herbicide-detoxifying enzyme activities indicated the participation of cytochrome P450s in the resistance to all four herbicides, with glutathione S-transferases specifically linked to mesosulfuron-methyl. Three CYP72As and a Tau class glutathione S-transferase, markedly upregulated in resistant plants, potentially played pivotal roles in the multiple-herbicide-resistance phenotype.


Subject(s)
Acetyl-CoA Carboxylase , Herbicide Resistance , Herbicides , Plant Proteins , Poaceae , Herbicide Resistance/genetics , Herbicides/pharmacology , Herbicides/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Acetyl-CoA Carboxylase/genetics , Acetyl-CoA Carboxylase/metabolism , Poaceae/genetics , Poaceae/metabolism , Poaceae/drug effects , Acetolactate Synthase/genetics , Acetolactate Synthase/metabolism , Cytochrome P-450 Enzyme System/genetics , Cytochrome P-450 Enzyme System/metabolism , Mutation , Plant Weeds/drug effects , Plant Weeds/genetics , Plant Weeds/metabolism
4.
Biochemistry ; 63(9): 1206-1213, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38587893

ABSTRACT

Quinone analogue molecules, functioning as herbicides, bind to the secondary quinone site, QB, in type-II photosynthetic reaction centers, including those from purple bacteria (PbRC). Here, we investigated the impact of herbicide binding on electron transfer branches, using herbicide-bound PbRC crystal structures and employing the linear Poisson-Boltzmann equation. In contrast to urea and phenolic herbicides [Fufezan, C. Biochemistry 2005, 44, 12780-12789], binding of atrazine and triazine did not cause significant changes in the redox-potential (Em) values of the primary quinone (QA) in these crystal structures. However, a slight Em difference at the bacteriopheophytin in the electron transfer inactive branch (HM) was observed between the S(-)- and R(+)-triazine-bound PbRC structures. This discrepancy is linked to variations in the protonation pattern of the tightly coupled Glu-L212 and Glu-H177 pairs, crucial components of the proton uptake pathway in native PbRC. These findings suggest the existence of a QB-mediated link between the electron transfer inactive HM and the proton uptake pathway in PbRCs.


Subject(s)
Atrazine , Herbicides , Photosynthetic Reaction Center Complex Proteins , Triazines , Herbicides/chemistry , Herbicides/metabolism , Atrazine/chemistry , Atrazine/metabolism , Electron Transport , Triazines/chemistry , Triazines/metabolism , Photosynthetic Reaction Center Complex Proteins/metabolism , Photosynthetic Reaction Center Complex Proteins/chemistry , Oxidation-Reduction , Models, Molecular , Rhodobacter sphaeroides/metabolism , Crystallography, X-Ray
5.
Chemosphere ; 357: 141912, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38582166

ABSTRACT

The efficiency of the Fenton reaction is markedly contingent upon the operational pH related to iron solubility. Therefore, a heterogeneous Fenton reaction has been developed to function at neutral pH. In the present study, the Bio-Fenton reaction was carried out using magnetite (Fe(II)Fe(III)2O4) and H2O2 generated by a newly isolated H2O2-producing bacterium, Desemzia sp. strain C1 at pH 6.8 to degrade chloroacetanilide herbicides. The optimal conditions for an efficient Bio-Fenton reaction were 10 mM of lactate, 0.5% (w/v) of magnetite, and resting-cells (O.D.600 = 1) of strain C1. During the Bio-Fenton reaction, 1.8-2.0 mM of H2O2 was generated by strain C1 and promptly consumed by the Fenton reaction with magnetite, maintaining stable pH conditions. Approximately, 40-50% of the herbicides underwent oxidation through non-specific reactions of •OH, leading to dealkylation, dechlorination, and hydroxylation via hydrogen atom abstraction. These findings will contribute to advancing the Bio-Fenton system for non-specific oxidative degradation of diverse organic pollutants under in-situ environmental conditions with bacteria producing high amount of H2O2 and magnetite under a neutral pH condition.


Subject(s)
Acetamides , Biodegradation, Environmental , Ferrosoferric Oxide , Herbicides , Hydrogen Peroxide , Iron , Herbicides/metabolism , Herbicides/chemistry , Hydrogen Peroxide/metabolism , Ferrosoferric Oxide/metabolism , Ferrosoferric Oxide/chemistry , Iron/metabolism , Iron/chemistry , Acetamides/metabolism , Acetamides/chemistry , Oxidation-Reduction , Hydrogen-Ion Concentration
6.
J Hazard Mater ; 471: 134336, 2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38640665

ABSTRACT

Microbial herbicide degradation is an efficient bioremediation method. In this study, a strain of Streptomyces nigra, LM01, which efficiently degrades atrazine and nicosulfuron, was isolated from a corn field using a direct isolation method. The degradation effects of the identified strain on two herbicides were investigated and optimized using an artificial neural network. The maximum degradation rates of S. nigra LM01 were 58.09 % and 42.97 % for atrazine and nicosulfuron, respectively. The degradation rate of atrazine in the soil reached 67.94 % when the concentration was 108 CFU/g after 5 d and was less effective than that of nicosulfuron. Whole genome sequencing of strain LM01 helped elucidate the possible degradation pathways of atrazine and nicosulfuron. The protein sequences of strain LM01 were aligned with the sequences of the degraded proteins of the two herbicides by using the National Center for Biotechnology Information platform. The sequence (GE005358, GE001556, GE004212, GE005218, GE004846, GE002487) with the highest query cover was retained and docked with the small-molecule ligands of the herbicides. The results revealed a binding energy of - 6.23 kcal/mol between GE005358 and the atrazine ligand and - 6.66 kcal/mol between GE002487 and the nicosulfuron ligand.


Subject(s)
Atrazine , Biodegradation, Environmental , Herbicides , Pyridines , Streptomyces , Sulfonylurea Compounds , Atrazine/metabolism , Atrazine/chemistry , Streptomyces/metabolism , Streptomyces/genetics , Herbicides/metabolism , Herbicides/chemistry , Sulfonylurea Compounds/metabolism , Sulfonylurea Compounds/chemistry , Pyridines/metabolism , Pyridines/chemistry , Soil Pollutants/metabolism , Genes, Bacterial , Neural Networks, Computer
7.
J Hazard Mater ; 471: 134251, 2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38640669

ABSTRACT

Corn planting is often associated with serious atrazine pollution and excessive corn straw amounts, causing severe threats to environmental and ecological security, as well as to green agricultural development. In this context, a Paenarthrobacter sp. KN0901 strain was applied to simultaneously remove atrazine and straw at low temperatures. The results of whole genome sequencing indicated that KN0901 encoded over nine straw biodegradation-related enzymes. In addition, 100 % and 27.3 % of atrazine and straw were simultaneously degraded by KN0901 following an incubation period of seven days at 15 ºC and 180 rpm in darkness. The KN0901 strain maintained high atrazine and straw biodegradation rates under temperature and pH ranges of 4-25 ºC and 5-9, respectively. The simultaneous atrazine and corn straw additions improved the microbial growth and biodegradation rates by increasing the functional gene expression level, cell viability, inner membrane permeability, and extracellular polymeric substance contents of KN0901. The hydroponic experiment results demonstrated the capability of the KN0901 strain to mitigate the toxicity of atrazine to soybeans in four days under the presence of corn straw. The present study provides a new perspective on the development of bioremediation approaches and their application to restore atrazine-polluted cornfields with large straw quantities, particularly in cold areas.


Subject(s)
Atrazine , Biodegradation, Environmental , Cold Temperature , Herbicides , Zea mays , Atrazine/toxicity , Atrazine/metabolism , Herbicides/toxicity , Herbicides/metabolism , Whole Genome Sequencing , Genome, Bacterial
8.
J Hazard Mater ; 471: 134397, 2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38677114

ABSTRACT

Biochar and organic compost are widely used in agricultural soil remediation as soil immobilization agents. However, the effects of biochar and compost on microbial community assembly processes in polluted soil under freezingthawing need to be further clarified. Therefore, a freezethaw cycle experiment was conducted with glyphosate (herbicide), imidacloprid (insecticide) and pyraclostrobin (fungicide) polluted to understand the effect of biochar and compost on microbial community assembly and metabolic behavior. We found that biochar and compost could significantly promote the degradation of glyphosate, imidacloprid and pyraclostrobin in freezethaw soil decrease the half-life of the three pesticides. The addition of immobilization agents improved soil bacterial and fungal communities and promoted the transformation from homogeneous dispersal to homogeneous selection. For soil metabolism, the combined addition of biochar and compost alleviated the pollution of glyphosate, imidacloprid and imidacloprid to soil through up-regulation of metabolites (DEMs) in amino acid metabolism pathway and down-regulation of DEMs in fatty acid metabolism pathway. The structural equation modeling (SEM) results showed that soil pH and DOC were the main driving factors affecting microbial community assembly and metabolites. In summary, the combined addition of biochar and compost reduced the adverse effects of pesticides residues.


Subject(s)
Charcoal , Composting , Glycine , Glyphosate , Herbicides , Neonicotinoids , Nitro Compounds , Soil Microbiology , Soil Pollutants , Strobilurins , Neonicotinoids/metabolism , Neonicotinoids/toxicity , Nitro Compounds/metabolism , Nitro Compounds/toxicity , Strobilurins/metabolism , Strobilurins/toxicity , Soil Pollutants/metabolism , Soil Pollutants/toxicity , Charcoal/chemistry , Glycine/analogs & derivatives , Glycine/metabolism , Glycine/toxicity , Herbicides/metabolism , Herbicides/toxicity , Carbamates/metabolism , Carbamates/toxicity , Microbiota/drug effects , Fungicides, Industrial/toxicity , Fungicides, Industrial/metabolism , Pyrazoles/metabolism , Pyrazoles/toxicity , Insecticides/metabolism , Insecticides/toxicity , Biodegradation, Environmental , Soil/chemistry , Bacteria/metabolism , Bacteria/drug effects
9.
J Hazard Mater ; 471: 134454, 2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38688223

ABSTRACT

Parallel to the important use of pesticides in conventional agriculture there is a growing interest for green technologies to clear contaminated soil from pesticides and their degradation products. Bioaugmentation i. e. the inoculation of degrading micro-organisms in polluted soil, is a promising method still in needs of further developments. Specifically, improvements in the understanding of how degrading microorganisms must overcome abiotic filters and interact with the autochthonous microbial communities are needed in order to efficiently design bioremediation strategies. Here we designed a protocol aiming at studying the degradation of two herbicides, glyphosate (GLY) and isoproturon (IPU), via experimental modifications of two source bacterial communities. We used statistical methods stemming from genomic prediction to link community composition to herbicides degradation potentials. Our approach proved to be efficient with correlation estimates over 0.8 - between model predictions and measured pesticide degradation values. Multi-degrading bacterial communities were obtained by coalescing bacterial communities with high GLY or IPU degradation ability based on their community-level properties. Finally, we evaluated the efficiency of constructed multi-degrading communities to remove pesticide contamination in a different soil. While results are less clear in the case of GLY, we showed an efficient transfer of degrading capacities towards the receiving soil even at relatively low inoculation levels in the case of IPU. Altogether, we developed an innovative protocol for building multi-degrading simplified bacterial communities with the help of genomic prediction tools and coalescence, and proved their efficiency in a contaminated soil.


Subject(s)
Bacteria , Biodegradation, Environmental , Glycine , Glyphosate , Herbicides , Soil Microbiology , Soil Pollutants , Soil Pollutants/metabolism , Glycine/analogs & derivatives , Glycine/metabolism , Bacteria/metabolism , Bacteria/genetics , Herbicides/metabolism , Herbicides/chemistry , Phenylurea Compounds/metabolism , Pesticide Residues/metabolism
10.
Spectrochim Acta A Mol Biomol Spectrosc ; 316: 124338, 2024 Aug 05.
Article in English | MEDLINE | ID: mdl-38678839

ABSTRACT

In this work, the interaction between different chloro-substituted phenylurea herbicides (diuron (DIU) and chlortoluron (CHL)) and BSA were investigated and compared at three different temperatures (283 K, 298 K and 310 K) adopting UV-vis, fluorescence, and circular dichroism spectra. The quenching mechanism of the interaction was also proposed. The energy transfer between BSA and DIU/CHL was investigated. The binding sites of DIU/CHL and BSA and the variations in the microenvironment of amino acid residues were studied. The changes of the secondary structure of BSA were analyzed. The results indicate that both DIU and CHL can significantly interact with BSA, and the degree of the interaction between DIU/CHL and BSA increases with the increase of the DIU/CHL concentration. The fluorescence quenching of BSA by DIU/CHL results from the combination of static and dynamic quenching. The DIU/CHL has a weak to moderate binding affinity for BSA, and the binding stoichiometry is 1:1. Their binding processes are spontaneous, and hydrophobic interaction, hydrogen bonds and van der Waals forces are the main interaction forces. DIU/CHL has higher affinity for subdomain IIA (Site I) of BSA than subdomain IIIA (Site II), and also interacts with tryptophan more than tyrosine residues. The energy transfer can occur from BSA to DIU/CHL. By comparison, the strength of the interaction of DIU-BSA is always greater than that of CHL-BSA, and DIU can destroy the secondary structure of BSA molecules greater than CHL and thus the potential toxicity of DIU is higher due to DIU with more chlorine substituents than CHL. It is expected that this study on the interaction can offer in-depth insights into the toxicity of phenylurea herbicides, as well as their impact on human and animal health at the molecular level.


Subject(s)
Herbicides , Serum Albumin, Bovine , Spectrometry, Fluorescence , Serum Albumin, Bovine/chemistry , Serum Albumin, Bovine/metabolism , Herbicides/chemistry , Herbicides/metabolism , Animals , Cattle , Diuron/chemistry , Diuron/metabolism , Spectrophotometry, Ultraviolet , Binding Sites , Protein Binding , Circular Dichroism , Energy Transfer , Thermodynamics , Hydrogen Bonding
11.
Pestic Biochem Physiol ; 201: 105895, 2024 May.
Article in English | MEDLINE | ID: mdl-38685222

ABSTRACT

In this study, the interaction of triazine herbicides with three kinds of different alkyl groups (simetryne, ametryn and terbutryn) with human serum albumin (HSA) are investigated through UV-vis, fluorescence, and circular dichroism (CD) spectra. The mechanisms on the fluorescence quenching of HSA initiated by triazine herbicides are obtained using Stern-Volmer, Lineweaver-Burk and Double logarithm equations. The quenching rate constant (Kq), Stern-Volmer quenching constant (Ksv), binding constant (KA), thermodynamic parameters such as enthalpy change (∆H), entropy change (∆S) and Gibbs free energy (∆G) and number of binding site (n) are calculated and compared. The variations in the microenvironment of amino acid residues are studied by synchronous fluorescence spectroscopy. The binding sites and subdomains are identified using warfarin and ibuprofen as site probes. The conformational changes of HSA are measured using CD spectra. The results reveal that the triazine herbicides with different alkyl groups can interact with HSA by static quenching. The combination of the three herbicides and HSA are equally proportional, and the binding processes are spontaneous. Hydrophobic interaction forces play important roles in simetryne-HSA and ametryn-HSA, while the interaction of terbutryn-HSA is Van der Waals forces and hydrogen bonding. Moreover, the three herbicides can bind to HSA at site I (sub-domain IIA) more than site II (subdomain IIIA), and combine with tryptophan (Trp) more easily than tyrosine (Tyr) residues, respectively. By comparison, the order of interaction strength is terbutryn-HSA > ametryn-HSA > simetryne-HSA. Terbutryn can destroy the secondary structure of HSA more than simetryne and ametryn, and the potential toxicity of terbutryn is higher. It is expected that the interactions of triazine herbicides with HSA via multi-spectral analysis can offer some valuable information for studying the toxicity and the harm of triazine herbicides on human health at molecular level in life science.


Subject(s)
Herbicides , Serum Albumin, Human , Spectrometry, Fluorescence , Thermodynamics , Triazines , Triazines/chemistry , Triazines/metabolism , Herbicides/chemistry , Herbicides/metabolism , Humans , Serum Albumin, Human/chemistry , Serum Albumin, Human/metabolism , Circular Dichroism , Binding Sites , Protein Binding , Hydrophobic and Hydrophilic Interactions
12.
World J Microbiol Biotechnol ; 40(5): 137, 2024 Mar 20.
Article in English | MEDLINE | ID: mdl-38504029

ABSTRACT

The present study evaluated the performance of the fungus Trichoderma reesei to tolerate and biodegrade the herbicide diuron in its agrochemical presentation in agar plates, liquid culture, and solid-state fermentation. The tolerance of T. reesei to diuron was characterized through a non-competitive inhibition model of the fungal radial growth on the PDA agar plate and growth in liquid culture with glucose and ammonium nitrate, showing a higher tolerance to diuron on the PDA agar plate (inhibition constant 98.63 mg L-1) than in liquid culture (inhibition constant 39.4 mg L-1). Diuron biodegradation by T. reesei was characterized through model inhibition by the substrate on agar plate and liquid culture. In liquid culture, the fungus biotransformed diuron into 3,4-dichloroaniline using the amide group from the diuron structure as a carbon and nitrogen source, yielding 0.154 mg of biomass per mg of diuron. A mixture of barley straw and agrolite was used as the support and substrate for solid-state fermentation. The diuron removal percentage in solid-state fermentation was fitted by non-multiple linear regression to a parabolic surface response model and reached the higher removal (97.26%) with a specific aeration rate of 1.0 vkgm and inoculum of 2.6 × 108 spores g-1. The diuron removal in solid-state fermentation by sorption on barley straw and agrolite was discarded compared to the removal magnitude of the biosorption and biodegradation mechanisms of Trichoderma reesei. The findings in this work about the tolerance and capability of Trichoderma reesei to remove diuron in liquid and solid culture media demonstrate the potential of the fungus to be implemented in bioremediation technologies of herbicide-polluted sites.


Subject(s)
Cellulase , Herbicides , Hypocreales , Trichoderma , Fermentation , Trichoderma/metabolism , Diuron/metabolism , Agar/metabolism , Herbicides/metabolism , Biodegradation, Environmental , Cellulase/metabolism
13.
J Environ Sci Health B ; 59(5): 215-222, 2024.
Article in English | MEDLINE | ID: mdl-38459769

ABSTRACT

Atrazine (ATZ) is the third most sold herbicide in Brazil, occupying the seventh position between most widely used pesticides. Due to its easy outflow, low reactivity and solubility, moderate adsorption to organic matter and clay, and long soil persistence, residual herbicide can be identified after long periods following application, and its usage has been prohibited in diverse countries. Amphibians are important bioindicators to assess impact of pesticide like atrazine, due to having a partial aquatic life cycle. This study had as objective to assess the response of bullfrog (Lithobates catesbeianus) tadpoles when exposed to this herbicide. Animals were exposed for a total of 168h to following concentrations: negative control, 40 µg/L, 200 µg/L, 2000 µg/L, 20000 µg/L of ATZ. Analysis of swimming activity was performed, and biochemical profile was assessed by analysis of blood and plasma glucose levels, urea, creatinine, cholesterol, HDL, triglycerides, glutamic pyruvic transaminase (GPT), alkaline phosphatase (AP), calcium, total proteins, phenol, peroxidase and polyphenol oxidase activity. Results exhibited malnutrition, anemia, likely muscle mass loss, and hepatic damage, indicating that ATZ can lead to an increase in energy to maintain homeostasis for animal survival.


Subject(s)
Atrazine , Herbicides , Pesticides , Water Pollutants, Chemical , Animals , Herbicides/metabolism , Larva , Pesticides/metabolism , Rana catesbeiana/metabolism , Water Pollutants, Chemical/metabolism
14.
Curr Microbiol ; 81(5): 117, 2024 Mar 16.
Article in English | MEDLINE | ID: mdl-38492090

ABSTRACT

Atrazine is an important herbicide that has been widely used for weed control in recent decades. However, with the extensive use of atrazine, its residue seriously pollutes the environment. Therefore, the microbial degradation and detoxification of atrazine have received extensive attention. To date, the aerobic degradation pathway of atrazine has been well studied; however, little is known about its anaerobic degradation in the environment. In this study, an anaerobic microbial consortium capable of efficiently degrading atrazine was enriched from soil collected from an herbicide-manufacturing plant. Six metabolites including hydroxyatrazine, deethylatrazine, N-isopropylammelide, deisopropylatrazine, cyanuric acid, and the novel metabolite 4-ethylamino-6-isopropylamino-1,3,5-triazine (EIPAT) were identified, and two putative anaerobic degradation pathways of atrazine were proposed: a hydrolytic dechlorination pathway is similar to that seen in aerobic degradation, and a novel pathway initiated by reductive dechlorination. During enrichment, Denitratisoma, Thiobacillus, Rhodocyclaceae_unclassified, Azospirillum, and Anaerolinea abundances significantly increased, dominating the enriched consortium, indicating that they may be involved in atrazine degradation. These findings provide valuable evidence for elucidating the anaerobic catabolism of atrazine and facilitating anaerobic remediation of residual atrazine pollution.


Subject(s)
Atrazine , Herbicides , Soil Pollutants , Atrazine/analysis , Atrazine/chemistry , Atrazine/metabolism , Herbicides/metabolism , Soil/chemistry , Anaerobiosis , Microbial Consortia , Biodegradation, Environmental , Soil Microbiology , Soil Pollutants/metabolism
15.
J Hazard Mater ; 469: 133974, 2024 May 05.
Article in English | MEDLINE | ID: mdl-38518695

ABSTRACT

Pesticides and fertilisers are frequently used and may co-exist on farmlands. The overfertilisation of soil may have a profound influence on pesticide residues, but the mechanism remains unclear. The effects of chemical fertilisers on the environmental behaviour of atrazine and their underlying mechanisms were investigated. The present outcomes indicated that the degradation of atrazine was inhibited and the half-life was prolonged 6.0 and 7.6 times by urea and compound fertilisers (NPK) at 1.0 mg/g (nitrogen content), respectively. This result, which was confirmed in both sterilised and transfected soils, was attributed to the inhibitory effect of nitrogen fertilisers on soil microorganisms. The abundance of soil bacteria was inhibited by nitrogen fertilisers, and five families of potential atrazine degraders (Micrococcaceae, Rhizobiaceae, Bryobacteraceae, Chitinophagaceae, and Sphingomonadaceae) were strongly and positively (R > 0.8, sig < 0.05) related to the decreased functional genes (atzA and trzN), which inhibited hydroxylation metabolism and ultimately increased the half-life of atrazine. In addition, nitrogen fertilisers decreased the sorption and vertical migration behaviour of atrazine in sandy loam might increase the in-situ residual and ecological risk. Our findings verified the weakened atrazine degradation with nitrogen fertilisers, providing new insights into the potential risks and mechanisms of atrazine in the context of overfertilisation.


Subject(s)
Atrazine , Herbicides , Soil Pollutants , Atrazine/chemistry , Soil/chemistry , Fertilizers , Nitrogen , Metabolome , Soil Microbiology , Soil Pollutants/metabolism , Herbicides/metabolism , Biodegradation, Environmental
16.
J Hazard Mater ; 469: 133967, 2024 May 05.
Article in English | MEDLINE | ID: mdl-38457978

ABSTRACT

Diclofop-methyl, an aryloxyphenoxypropionate (AOPP) herbicide, is a chiral compound with two enantiomers. Microbial detoxification and degradation of various enantiomers is garnering immense research attention. However, enantioselective catabolism of diclofop-methyl has been rarely explored, especially at the molecular level. This study cloned two novel hydrolase genes (dcmA and dcmH) in Sphingopyxis sp. DBS4, and characterized them for diclofop-methyl degradation. DcmA, a member of the amidase superfamily, exhibits 26.1-45.9% identity with functional amidases. Conversely, DcmH corresponded to the DUF3089 domain-containing protein family (a family with unknown function), sharing no significant similarity with other biochemically characterized proteins. DcmA exhibited a broad spectrum of substrates, with preferential hydrolyzation of (R)-(+)-diclofop-methyl, (R)-(+)-quizalofop-ethyl, and (R)-(+)-haloxyfop-methyl. DcmH also preferred (R)-(+)-quizalofop-ethyl and (R)-(+)-haloxyfop-methyl degradation while displaying no apparent enantioselective activity towards diclofop-methyl. Using site-directed mutagenesis and molecular docking, it was determined that Ser175 was the fundamental residue influencing DcmA's activity against the two enantiomers of diclofop-methyl. For the degradation of AOPP herbicides, DcmA is an enantioselective amidase that has never been reported in research. This study provided novel hydrolyzing enzyme resources for the remediation of diclofop-methyl in the environment and deepened the understanding of enantioselective degradation of chiral AOPP herbicides mediated by microbes.


Subject(s)
Halogenated Diphenyl Ethers , Herbicides , Maleates , Propionates , Quinoxalines , Herbicides/metabolism , Hydrolases , Molecular Docking Simulation , Stereoisomerism , Advanced Oxidation Protein Products
17.
J Agric Food Chem ; 72(13): 6931-6941, 2024 Apr 03.
Article in English | MEDLINE | ID: mdl-38514379

ABSTRACT

Tembotrione is a triketone herbicide widely used for broad-spectrum weed control in corn but not registered for use in wheat. A wide collection of spring, winter, and EMS-derived mutant lines of wheat was evaluated for their response to tembotrione treatment. Two winter wheat (WW) genotypes (WW-1 and WW-2) were found to be least sensitive to this herbicide, surviving >6 times the field recommended dose (92 g ai ha-1) compared to the most sensitive genotype (WW-24). Further, HPLC analysis using [14C] tembotrione suggested that both WW-1 and WW-2 metabolized tembotrione rapidly to nontoxic metabolites. Pretreatment with a P450 inhibitor (malathion) followed by tembotrione application increased the sensitivity of WW-1 and WW-2 genotypes to this herbicide, suggesting likely involvement of P450 enzymes in metabolizing tembotrione similar to corn. Overall, our results suggest that the genotypes WW-1 and WW-2 can potentially be used to develop tembotrione-resistant wheat varieties.


Subject(s)
Herbicides , Herbicides/pharmacology , Herbicides/metabolism , Triticum/genetics , Triticum/metabolism , Cyclohexanones/pharmacology , Sulfones/pharmacology , Cytochrome P-450 Enzyme System/metabolism , Zea mays/metabolism
18.
Plant Physiol Biochem ; 208: 108506, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38461753

ABSTRACT

Acetolactate synthase inhibitors (ALS inhibitors) and glyphosate are two classes of herbicides that act by inhibiting an enzyme in the biosynthetic pathway of branched-chain or aromatic amino acids, respectively. Besides amino acid synthesis inhibition, both herbicides trigger similar physiological effects in plants. The main aim of this study was to evaluate the role of glutathione metabolism, with special emphasis on glutathione S-transferases (GSTs), in the mode of action of glyphosate and ALS inhibitors in Amaranthus palmeri. For that purpose, plants belonging to a glyphosate-sensitive (GLS) and a glyphosate-resistant (GLR) population were treated with different doses of glyphosate, and plants belonging to an ALS-inhibitor sensitive (AIS) and an ALS-inhibitor resistant (AIR) population were treated with different doses of the ALS inhibitor nicosulfuron. Glutathione-related contents, GST activity, and related gene expressions (glutamate-cysteine ligase, glutathione reductase, Phi GST and Tau GST) were analysed in leaves. According to the results of the analytical determinations, there were virtually no basal differences between GLS and GLR plants or between AIS and AIR plants. Glutathione synthesis and turnover did not follow a clear pattern in response to herbicides, but GST activity and gene expression (especially Phi GSTs) increased with both herbicides in treated sensitive plants, possibly related to the rocketing H2O2 accumulation. As GSTs offered the clearest results, these were further investigated with a multiple resistant (MR) population, compressing target-site resistance to both glyphosate and the ALS inhibitor pyrithiobac. As in single-resistant plants, measured parameters in the MR population were unaffected by herbicides, meaning that the increase in GST activity and expression occurs due to herbicide interactions with the target enzymes.


Subject(s)
Amaranthus , Herbicides , Herbicides/pharmacology , Herbicides/metabolism , Hydrogen Peroxide/metabolism , Herbicide Resistance , Glyphosate , Glutathione/metabolism , Transferases/metabolism
19.
J Agric Food Chem ; 72(11): 5595-5608, 2024 Mar 20.
Article in English | MEDLINE | ID: mdl-38446412

ABSTRACT

Metabolic resistance to the maize-selective, HPPD-inhibiting herbicide, mesotrione, occurs via Phase I ring hydroxylation in resistant waterhemp and Palmer amaranth; however, mesotrione detoxification pathways post-Phase I are unknown. This research aims to (1) evaluate Palmer amaranth populations for mesotrione resistance via survivorship, foliar injury, and aboveground biomass, (2) determine mesotrione metabolism rates in Palmer amaranth populations during a time course, and (3) identify mesotrione metabolites including and beyond Phase I oxidation. The Palmer amaranth populations, SYNR1 and SYNR2, exhibited higher survival rates (100%), aboveground biomass (c.a. 50%), and lower injury (25-30%) following mesotrione treatment than other populations studied. These two populations also metabolized mesotrione 2-fold faster than sensitive populations, PPI1 and PPI2, and rapidly formed 4-OH-mesotrione. Additionally, SYNR1 and SYNR2 formed 5-OH-mesotrione, which is not produced in high abundance in waterhemp or naturally tolerant maize. Metabolite features derived from 4/5-OH-mesotrione and potential Phase II mesotrione-conjugates were detected and characterized by liquid chromatography-mass spectrometry (LCMS).


Subject(s)
4-Hydroxyphenylpyruvate Dioxygenase , Amaranthus , Cyclohexanones , Herbicides , Herbicides/pharmacology , Herbicides/metabolism , Amaranthus/metabolism , 4-Hydroxyphenylpyruvate Dioxygenase/metabolism , Herbicide Resistance , Amaranth Dye/metabolism
20.
Sci Total Environ ; 923: 170949, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38365020

ABSTRACT

The herbicide linuron can cause endocrine disrupting effects in Xenopus tropicalis frogs, including offspring that were never exposed to the contaminant. The mechanisms by which these effects are transmitted across generations need to be further investigated. Here, we examined transgenerational alterations of brain and testis DNA methylation profiles paternally inherited from grandfathers developmentally exposed to an environmentally relevant concentration of linuron. Reduced representation bisulfite sequencing (RRBS) revealed numerous differentially methylated regions (DMRs) in brain (3060 DMRs) and testis (2551 DMRs) of the adult male F2 generation. Key genes in the brain involved in somatotropic (igfbp4) and thyrotropic signaling (dio1 and tg) were differentially methylated and correlated with phenotypical alterations in body size, weight, hind limb length and plasma glucose levels, indicating that these methylation changes could be potential mediators of the transgenerational effects of linuron. Testis DMRs were found in genes essential for spermatogenesis, meiosis and germ cell development (piwil1, spo11 and tdrd9) and their methylation levels were correlated with the number of germ cells nests per seminiferous tubule, an endpoint of disrupted spermatogenesis. DMRs were also identified in several genes central for the machinery that regulates the epigenetic landscape including DNA methylation (dnmt3a and mbd2) and histone acetylation (hdac8, ep300, elp3, kat5 and kat14), which may at least partly drive the linuron-induced transgenerational effects. The results from this genome-wide DNA methylation profiling contribute to better understanding of potential transgenerational epigenetic inheritance mechanisms in amphibians.


Subject(s)
DNA Methylation , Herbicides , Animals , Male , Testis , Herbicides/metabolism , Spermatozoa , Linuron , Xenopus laevis , Xenopus , Epigenesis, Genetic , Brain
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