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1.
World J Microbiol Biotechnol ; 40(7): 228, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38822927

ABSTRACT

Doramectin, an essential animal anthelmintic, is synthesized through the fermentation process of Streptomyces avermitilis. This study delves into the transcriptomic profiles of two strains, namely the doramectin-producing wild-type S. avermitilis N72 and its highly doramectin-producing mutant counterpart, S. avermitilis XY-62. Comparative analysis revealed 860 up-regulated genes and 762 down-regulated genes in the mutant strain, notably impacting the expression of key genes pivotal in doramectin biosynthesis, including aveA1, aveA2, aveA3, aveA4, aveE, and aveBI. These findings shed light on the molecular mechanisms underpinning the heightened doramectin production in S. avermitilis XY-62, presenting promising avenues for optimizing doramectin production processes.


Subject(s)
Gene Expression Profiling , Gene Expression Regulation, Bacterial , Ivermectin , Mutation , Streptomyces , Transcriptome , Streptomyces/genetics , Streptomyces/metabolism , Ivermectin/analogs & derivatives , Ivermectin/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Fermentation , Anthelmintics/metabolism
2.
J Agric Food Chem ; 72(19): 10842-10852, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38708761

ABSTRACT

Guvermectin, as a novel nucleoside-like biopesticide, could increase the rice yield excellently, but the potential environmental behaviors remain unclear, which pose potential health risks. Therefore, the uptake and biotransformation of guvermectin in three types of crops (rice, lettuce, and carrot) were first evaluated with a hydroponic system. Guvermectin could be rapidly absorbed and reached equilibrium in roots (12-36 h) and shoots (24-60 h) in three plants, and guvermectin was also vulnerable to dissipation in roots (t1/2 1.02-3.65 h) and shoots (t1/2 9.30-17.91 h). In addition, 8 phase I and 2 phase II metabolites, transformed from guvermectin degradation in vivo and in vitro exposure, were identified, and one was confirmed as psicofuranine, which had antibacterial and antitumor properties; other metabolites were nucleoside-like chemicals. Molecular simulation and quantitative polymerase chain reaction further demonstrated that guvermectin was metabolized by the catabolism pathway of an endogenous nucleotide. Guvermectin had similar metabolites in three plants, but the biotransformation ability had a strong species dependence. In addition, all the metabolites exhibit neglectable toxicities (bioconcentration factor <2000 L/kg b.w., LC50,rat > 5000 mg/kg b.w.) by prediction. The study provided valuable evidence for the application of guvermectin and a better understanding of the biological behavior of nucleoside-like pesticides.


Subject(s)
Biotransformation , Daucus carota , Ivermectin , Lactuca , Oryza , Plant Roots , Ivermectin/metabolism , Ivermectin/analogs & derivatives , Plant Roots/metabolism , Plant Roots/chemistry , Plant Roots/growth & development , Lactuca/metabolism , Lactuca/chemistry , Lactuca/growth & development , Oryza/metabolism , Oryza/growth & development , Oryza/chemistry , Daucus carota/metabolism , Daucus carota/chemistry , Crops, Agricultural/metabolism , Crops, Agricultural/chemistry , Crops, Agricultural/growth & development
3.
J Agric Food Chem ; 72(21): 12146-12155, 2024 May 29.
Article in English | MEDLINE | ID: mdl-38747516

ABSTRACT

In this study, an α-amylase-responsive controlled-release formulation was developed by capping polydopamine onto ß-cyclodextrin-modified abamectin-loaded hollow mesoporous silica nanoparticles. The prepared Aba@HMS@CD@PDA were subjected to characterization using various analytical techniques. The findings revealed that Aba@HMS@CD@PDA, featuring a loading rate of 18.8 wt %, displayed noteworthy release behavior of abamectin in the presence of α-amylase. In comparison to abamectin EC, Aba@HMS@CD@PDA displayed a significantly foliar affinity and improved rainfastness on lotus leaves. The results of field trail demonstrated a significantly higher control efficacy against Spodoptera litura Fabricius compared to abamectin EC at all concentrations after 7, 14, and 21 days of spaying, showcasing the remarkable persistence of Aba@HMS@CD@PDA. These results underscore the potential of Aba@HMS@CD@PDA as a novel and persistently effective strategy for sustainable on-demand crop protection. The application of nanopesticides can enhance the effectiveness and efficiency of pesticide utilization, contributing to more sustainable agricultural practices.


Subject(s)
Crop Protection , Insecticides , Nanoparticles , Spodoptera , alpha-Amylases , Animals , alpha-Amylases/chemistry , alpha-Amylases/metabolism , alpha-Amylases/antagonists & inhibitors , Nanoparticles/chemistry , Crop Protection/methods , Spodoptera/drug effects , Insecticides/chemistry , Insecticides/pharmacology , Ivermectin/analogs & derivatives , Ivermectin/chemistry , Ivermectin/pharmacology , Polymers/chemistry , Silicon Dioxide/chemistry , Insect Control , Pesticides/chemistry , Pesticides/pharmacology , Indoles/chemistry , Indoles/pharmacology
4.
Langmuir ; 40(21): 10992-11010, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38743441

ABSTRACT

The exploration of environmentally friendly, less toxic, sustained-release insecticide is increasing with the growing demand for food to meet the requirements of the expanding population. As a sustained-release carrier, the unique, environmentally friendly intelligent responsive hydrogel system is an important factor in improving the efficiency of insecticide utilization and accurate release. In this study, we developed a facile approach for incorporating the natural compound rosin (dehydroabietic acid, DA) and zinc ions (Zn2+) into a poly(N-isopropylacrylamide) (PNIPAM) hydrogel network to construct a controlled-release hydrogel carrier (DA-PNIPAM-Zn2+). Then, the model insecticide avermectin (AVM) was encapsulated in the carrier at a drug loading rate of 36.32% to form AVM@DA-PNIPAM-Zn2+. Surprisingly, the smart controlled carrier exhibited environmental responsiveness, strongly enhanced mechanical properties, self-healing ability, hydrophobicity, and photostability to ensure a balance between environmental friendliness and the precision of the drug release. The release experiments showed that the carboxyl and amide groups in the polymer chains alter the intermolecular forces within the hydrogel meshes and ingredient diffusion by changing temperatures (25 and 40 °C) and pH values (5.8, 7.4, and 8.5), leading to different release behaviors. The insecticidal activity of the AVM@DA-PNIPAM-Zn2+ against oriental armyworms was good, with an effective minimum toxicity toward aquatic animals. Therefore, AVM@DA-PNIPAM-Zn2+ is an effective drug delivery system against oriental armyworms. We anticipate that this ecofriendly, sustainable, smart-response carrier may broaden the utilization rosin and its possible applications in the agricultural sector.


Subject(s)
Drug Carriers , Hydrogels , Insecticides , Ivermectin , Resins, Plant , Ivermectin/analogs & derivatives , Ivermectin/chemistry , Ivermectin/pharmacology , Ivermectin/toxicity , Hydrogels/chemistry , Hydrogels/pharmacology , Animals , Hydrogen-Ion Concentration , Insecticides/chemistry , Insecticides/pharmacology , Resins, Plant/chemistry , Drug Carriers/chemistry , Temperature , Delayed-Action Preparations/chemistry , Delayed-Action Preparations/pharmacology , Drug Liberation , Moths/drug effects , Rosaceae/chemistry , Zinc/chemistry , Zinc/pharmacology , Acrylic Resins
5.
ACS Nano ; 18(21): 13781-13793, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38752333

ABSTRACT

Pine wood nematode (PWN) disease is a globally devastating forest disease caused by infestation with PWN, Bursaphelenchus xylophilus, which mainly occurs through the vector insect Japanese pine sawyer (JPS), Monochamus alternatus. PWN disease is notoriously difficult to manage effectively and is known as the "cancer of pine trees." In this study, dual enzyme-responsive nanopesticides (AVM@EC@Pectin) were prepared using nanocoating avermectin (AVM) after modification with natural polymers. The proposed treatment can respond to the cell wall-degrading enzymes secreted by PWNs and vector insects during pine tree infestation to intelligently release pesticides to cut off the transmission and infestation pathways and realize the integrated control of PWN disease. The LC50 value of AVM@EC@Pectin was 11.19 mg/L for PWN and 26.31 mg/L for JPS. The insecticidal activity of AVM@EC@Pectin was higher than that of the commercial emulsifiable concentrate (AVM-EC), and the photostability, adhesion, and target penetration were improved. The half-life (t1/2) of AVM@EC@Pectin was 133.7 min, which is approximately twice that of AVM-EC (68.2 min). Sprayed and injected applications showed that nanopesticides had superior bidirectional transportation, with five-times higher AVM contents detected in the roots relative to those of AVM-EC when sprayed at the top. The safety experiment showed that the proposed treatment had lower toxicity and higher safety for nontarget organisms in the application environment and human cells. This study presents a green, safe, and effective strategy for the integrated management of PWN disease.


Subject(s)
Biomass , Ivermectin , Pinus , Animals , Pinus/parasitology , Pinus/chemistry , Ivermectin/analogs & derivatives , Ivermectin/pharmacology , Ivermectin/chemistry , Ivermectin/metabolism , Plant Diseases/parasitology , Plant Diseases/prevention & control , Nematoda/drug effects , Insecticides/pharmacology , Insecticides/chemistry , Nanoparticles/chemistry , Humans
6.
Sci Total Environ ; 933: 173126, 2024 Jul 10.
Article in English | MEDLINE | ID: mdl-38734105

ABSTRACT

Studying the toxic effects of pesticides on bees has consistently been a prominent area of interest for researchers. Nonetheless, existing research has predominantly concentrated on individual toxicity assessments, leaving a gap in our understanding of mixed toxicity. This study delves into the individual and combined toxic effects of abamectin (ABA) and lambda-cyhalothrin (LCY) on honey bees (Apis mellifera) in laboratory settings. We discovered that ABA (96 h-LC50 value of 0.079 mg/L) exhibited greater acute toxicity to honey bees compared to LCY (96 h-LC50 value of 9.177 mg/L). Moreover, the mixture of ABA and LCY presented an acute antagonistic effect on honey bees. Additionally, our results indicated that exposure to LCY, at medium concentration, led to a reduction in the abundance of gut core bacterium Snodgrassella. However, an increase in the abundance of Bifidobacterium was noted when exposed to a medium concentration of LCY and its mixture with ABA. Transcriptomic analysis revealed significant regulation of certain genes in the medium concentration of all three treatments compared to the control group, primarily enriching in metabolism and immune-related pathways. Following chronic exposure to field-relevant concentrations of ABA, LCY, and their mixture, there were significant alterations in the activities of immunity-related enzyme polyphenol oxidase (PPO) and detoxification enzymes glutathione S-transferase (GST) and carboxylesterase (CarE). Additionally, the expression of four genes (abaecin, cyp9e2, cyp302a1, and GstD1) associated with immune and detoxification metabolism was significantly altered. These findings suggest a potential health risk posed by the insecticides ABA and LCY to honey bees. Despite exhibiting acute antagonistic effect, mixed exposure still induced damage to bees at all levels. This study advances our knowledge of the potential adverse effects of individual or combined exposure to these two pesticides on non-target pollinators and offers crucial guidance for the use of insecticides in agricultural production.


Subject(s)
Insecticides , Ivermectin , Nitriles , Pyrethrins , Animals , Pyrethrins/toxicity , Bees/drug effects , Bees/physiology , Nitriles/toxicity , Ivermectin/analogs & derivatives , Ivermectin/toxicity , Insecticides/toxicity
7.
Toxicon ; 244: 107755, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38740097

ABSTRACT

Avermectin (AVM) has been utilized extensively in agricultural production since it is a low-toxicity pesticide. However, the pollution caused by its residues to fisheries aquaculture has been neglected. As an abundant polyphenolic substance in plants, ferulic acid (FA) possesses anti-inflammatory and antioxidant effects. The goal of the study is to assess the FA's ability to reduce liver damage in carp brought on by AVM exposure. Four groups of carp were created at random: the control group; the AVM group; the FA group; and the FA + AVM group. On day 30, and the liver tissues of carp were collected and examined for the detection of four items of blood lipid as well as the activity of the antioxidant enzymes catalase (CAT), glutathione (GSH) and malondialdehyde (MDA) in carp liver tissues by biochemical kits, and the transcript levels of indicators of oxidative stress, inflammation and apoptosis by qPCR. The results showed that liver injury, inflammation, oxidative stress, and apoptosis were attenuated in the FA + AVM group compared to the AVM group. In summary, dietary addition of FA could ameliorate the hepatotoxicity caused by AVM in carp by alleviating oxidative stress, inflammation, apoptosis in liver tissues.


Subject(s)
Apoptosis , Carps , Coumaric Acids , Inflammation , Ivermectin , Liver , Oxidative Stress , Animals , Coumaric Acids/pharmacology , Oxidative Stress/drug effects , Liver/drug effects , Liver/pathology , Liver/metabolism , Ivermectin/analogs & derivatives , Ivermectin/toxicity , Apoptosis/drug effects , Inflammation/drug therapy , Dietary Supplements , Antioxidants/pharmacology
8.
J Agric Food Chem ; 72(22): 12489-12497, 2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38773677

ABSTRACT

The glutathione S-transferases (GSTs) are important detoxifying enzymes in insects. Our previous studies found that the susceptibility of Chilo suppressalis to abamectin was significantly increased when the CsGST activity was inhibited by glutathione (GSH) depletory. In this study, the potential detoxification mechanisms of CsGSTs to abamectin were explored. Six CsGSTs of C. suppressalis were expressed in vitro. Enzymatic kinetic parameters including Km and Vmax of recombinant CsGSTs were determined, and results showed that all of the six CsGSTs were catalytically active and displaying glutathione transferase activity. Insecticide inhibitions revealed that a low concentration of abamectin could effectively inhibit the activities of CsGSTs including CsGSTd1, CsGSTe4, CsGSTo2, CsGSTs3, and CsGSTu1. However, the in vitro metabolism assay found that the six CsGSTs could not metabolize abamectin directly. Additionally, the glutathione transferase activity of CsGSTs in C. suppressalis was significantly increased post-treatment with abamectin. Comprehensive analysis of the results in present and our previous studies demonstrated that CsGSTs play an important role in detoxification of abamectin by catalyzing the conjugation of GSH to abamectin in C. suppressalis, and the high binding affinities of CsGSTd1, CsGSTe4, CsGSTo2, CsGSTs3, and CsGSTu1 with abamectin might also suggest the involvement of CsGSTs in detoxification of abamectin via the noncatalytic passive binding and sequestration instead of direct metabolism. These studies are helpful to better understand the detoxification mechanisms of GSTs in insects.


Subject(s)
Glutathione Transferase , Insect Proteins , Insecticides , Ivermectin , Moths , Glutathione Transferase/metabolism , Glutathione Transferase/genetics , Glutathione Transferase/chemistry , Animals , Insecticides/metabolism , Insecticides/pharmacology , Insecticides/chemistry , Moths/metabolism , Moths/drug effects , Moths/enzymology , Ivermectin/analogs & derivatives , Ivermectin/metabolism , Ivermectin/pharmacology , Ivermectin/chemistry , Insect Proteins/metabolism , Insect Proteins/genetics , Insect Proteins/chemistry , Kinetics , Oryza/metabolism , Oryza/parasitology , Oryza/chemistry , Glutathione/metabolism , Glutathione/chemistry
9.
Int J Biol Macromol ; 270(Pt 2): 132228, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38734355

ABSTRACT

Panonychus citri (McGregor) strains have developed a high level of resistance to abamectin, but the underlying molecular mechanism is unknown. Uridine diphosphate (UDP)-glycosyltransferases (UGTs) are critical for the removal of a variety of exogenous and endogenous substances. In this study, an enzyme activity assay revealed that UGTs potentially contribute to P. citri abamectin resistance. Spatiotemporal expression profiles showed that only PcUGT202A9 was significantly overexpressed in the abamectin-resistant strain (AbR) at all developmental stages. Moreover, UGT activity decreased significantly, whereas abamectin susceptibility increased significantly, in AbR after PcUGT202A9 was silenced. Three-dimensional modeling and molecular docking analyses revealed that PcUGT202A9 can bind stably to abamectin. Recombinant PcUGT202A9 activity was detected when α-naphthol was used, but the enzymatic activity was inhibited by abamectin (50 % inhibitory concentration: 803.3 ±â€¯14.20 µmol/L). High-performance liquid chromatography and mass spectrometry analyses indicated that recombinant PcUGT202A9 can effectively degrade abamectin and catalyze the conjugation of UDP-glucose to abamectin. These results imply PcUGT202A9 contributes to P. citri abamectin resistance.


Subject(s)
Glycosyltransferases , Ivermectin , Molecular Docking Simulation , Ivermectin/analogs & derivatives , Ivermectin/pharmacology , Glycosyltransferases/genetics , Glycosyltransferases/metabolism , Glycosyltransferases/chemistry , Animals , Drug Resistance/genetics
10.
Parasit Vectors ; 17(1): 211, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38730429

ABSTRACT

BACKGROUND: The health and productivity of dairy goats continue to be impacted by gastrointestinal nematodes (GIN) and lungworms (LW). Eprinomectin (EPN) is frequently selected for treatment because it is generally effective and does not require a milk withdrawal period. However, some factors, such as lactation, can have an impact on EPN pharmacokinetics and potentially its efficacy. To evaluate whether this can alter the efficacy of Eprecis® 2%, an eprinomectin injectable solution, a study was performed in lactating goats using the dose currently registered in cattle, sheep and goats (0.2 mg/kg). METHODS: This study was a blinded, randomized, controlled trial performed according to the VICH guidelines. Eighteen (18) worm-free lactating goats were included and experimentally challenged on day 28 with a mixed culture of infective gastrointestinal and lung nematode larvae (Haemonchus contortus, Trichostrongylus colubriformis, Teladorsagia circumcincta, Dictyocaulus filaria). At D-1, fecal samples were collected to confirm patent infection in all animals. On D0, the goats were randomly allocated into two groups of nine goats; group 1 was treated with Eprecis® 2% at 0.2 mg/kg BW by subcutaneous injection, while group 2 remained untreated. Fecal samples for egg counts were collected from all animals on days 3, 5, 7, 9, 11 and 14. On D14, all goats were killed, and the abomasum, small intestine and lungs were removed, processed and subsampled to record the number and species of worms. RESULTS: The treatment was well tolerated. After treatment, the arithmetic mean FEC decreased in the treated group and remained < 5 EPG until the end of the study, while the arithmetic mean FEC in the control group remained > 849.0 EPG. At D14, goats in the treated group had very limited or zero total worm counts, whereas all animals from the control group had a high worm burden. The measured efficacy was 100.0% against H. contortus and T. colubriformis, 99.9% against T. circumcincta and 98.0% against D. filaria. CONCLUSIONS: Eprinomectin (Eprecis®, 20 mg/ml), administered at the label dose (0.2 mg/kg), is highly effective against gastrointestinal nematodes and lungworms in lactating goats.


Subject(s)
Feces , Goat Diseases , Goats , Ivermectin , Lactation , Nematode Infections , Animals , Ivermectin/analogs & derivatives , Ivermectin/administration & dosage , Ivermectin/pharmacokinetics , Ivermectin/therapeutic use , Goat Diseases/drug therapy , Goat Diseases/parasitology , Female , Nematode Infections/veterinary , Nematode Infections/drug therapy , Nematode Infections/parasitology , Feces/parasitology , Lactation/drug effects , Parasite Egg Count/veterinary , Injections, Subcutaneous/veterinary , Anthelmintics/administration & dosage , Anthelmintics/therapeutic use , Anthelmintics/pharmacokinetics , Nematoda/drug effects , Gastrointestinal Diseases/veterinary , Gastrointestinal Diseases/parasitology , Gastrointestinal Diseases/drug therapy , Lung/parasitology
11.
Chemosphere ; 359: 142288, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38750729

ABSTRACT

Helicoverpa armigera, a ubiquitous polyphagous pest, poses a significant threat to global agriculture, causing substantial economic losses and demonstrating resistance to synthetic pesticides. This study investigates the potential of emamectin benzoate (EMB), an avermectin derivative, as an effective control agent against H. armigera. The larvae of the NBII-MP-NOC-01 strain of H. armigera were reared on an artificial diet. The impact of dietary EMB was examined on four midgut enzymes; alanine aminotransferase (ALT), aspartate aminotransferase (AST), acid phosphatase (ACP), and alkaline phosphatase (ALP). Results showed a dose-dependent and time-dependent reduction in ALT and AST activity, while an initial increase and subsequent decline in ACP and ALP activity at higher EMB concentrations. Computational modelling of enzyme structures and molecular docking studies revealed differential binding of EMB with the midgut enzymes. The strongest interaction was observed between EMB and ALT residues, contrasting with weakest interactions observed with AST. The study also showed that decreased activity of transaminases in H. armigera caused by EMB may be because of stability-activity trade-off, while in phosphatases reverse may be the case. This research provides crucial insights into the biochemical responses and the intricate insecticide-enzyme interactions in H. armigera caused by EMB exposure. This study lays the foundation for further research aimed at developing environmentally friendly approaches for managing H. armigera, addressing the challenges associated with conventional pesticides.


Subject(s)
Acid Phosphatase , Alanine Transaminase , Alkaline Phosphatase , Aspartate Aminotransferases , Insecticides , Ivermectin , Larva , Molecular Docking Simulation , Moths , Animals , Ivermectin/analogs & derivatives , Ivermectin/toxicity , Larva/drug effects , Moths/drug effects , Insecticides/toxicity , Insecticides/chemistry , Insecticides/metabolism , Alkaline Phosphatase/metabolism , Acid Phosphatase/metabolism , Alanine Transaminase/metabolism , Aspartate Aminotransferases/metabolism , Helicoverpa armigera
12.
Microb Cell Fact ; 23(1): 103, 2024 Apr 08.
Article in English | MEDLINE | ID: mdl-38584273

ABSTRACT

BACKGROUND: The macrolide antibiotic avermectin, a natural product derived from Streptomyces avermitilis, finds extensive applications in agriculture, animal husbandry and medicine. The mtrA (sav_5063) gene functions as a transcriptional regulator belonging to the OmpR family. As a pleiotropic regulator, mtrA not only influences the growth, development, and morphological differentiation of strains but also modulates genes associated with primary metabolism. However, the regulatory role of MtrA in avermectin biosynthesis remains to be elucidated. RESULTS: In this study, we demonstrated that MtrA, a novel OmpR-family transcriptional regulator in S. avermitilis, exerts global regulator effects by negatively regulating avermectin biosynthesis and cell growth while positively controlling morphological differentiation. The deletion of the mtrA gene resulted in an increase in avermectin production, accompanied by a reduction in biomass and a delay in the formation of aerial hyphae and spores. The Electrophoretic Mobility Shift Assay (EMSA) revealed that MtrA exhibited binding affinity towards the upstream region of aveR, the intergenic region between aveA1 and aveA2 genes, as well as the upstream region of aveBVIII in vitro. These findings suggest that MtrA exerts a negative regulatory effect on avermectin biosynthesis by modulating the expression of avermectin biosynthesis cluster genes. Transcriptome sequencing and fluorescence quantitative PCR analysis showed that mtrA deletion increased the transcript levels of the cluster genes aveR, aveA1, aveA2, aveC, aveE, aveA4 and orf-1, which explains the observed increase in avermectin production in the knockout strain. Furthermore, our findings demonstrate that MtrA positively regulates the cell division and differentiation genes bldM and ssgC, while exerting a negative regulatory effect on bldD, thereby modulating the primary metabolic processes associated with cell division, differentiation and growth in S. avermitilis, consequently impacting avermectin biosynthesis. CONCLUSIONS: In this study, we investigated the negative regulatory effect of the global regulator MtrA on avermectin biosynthesis and its effects on morphological differentiation and cell growth, and elucidated its transcriptional regulatory mechanism. Our findings indicate that MtrA plays crucial roles not only in the biosynthesis of avermectin but also in coordinating intricate physiological processes in S. avermitilis. These findings provide insights into the synthesis of avermectin and shed light on the primary and secondary metabolism of S. avermitilis mediated by OmpR-family regulators.


Subject(s)
Ivermectin , Ivermectin/analogs & derivatives , Streptomyces , Ivermectin/metabolism , Streptomyces/metabolism , Macrolides/metabolism , Gene Expression Regulation, Bacterial , Bacterial Proteins/metabolism
13.
Sci Rep ; 14(1): 9385, 2024 04 24.
Article in English | MEDLINE | ID: mdl-38654030

ABSTRACT

This study aims to assess in situ the impact of effluents originating from an Atlantic salmon (Salmo salar) farm on a nearby slender sea pen (Virgularia mirabilis) field. We evidenced (1) the presence and persistence of emamectin residues (i.e. a common chemotherapeutants used for treating ectoparasites in salmons) in V. mirabilis tissue 56 days after treatment and (2) lethal and sublethal responses of V. mirabilis to effluents discharged by the salmon farm. Particularly, sea pens near the fish farm exhibited significant overproduction of mucus, contraction of polyps' tentacles, and disappearance of associated fauna. Furthermore, sea pens located directly underneath the farm showed substantial tissue necrosis and, in the most severe case, complete tissue loss and mortality. Our results suggest that lethal damages on sea pens occur directly below the farm, and that sublethal effects are visible up to 500 m from the farm. However, the presence of V. mirabilis below the studied farm, which has been active for more than twenty years, suggests that V. mirabilis population possesses the capacity to recover from the impacts of the farm, thereby preventing the complete disappearance from the area. In this context, it would be particularly interesting to run a temporal survey following the health state of V. mirabilis during an entire production cycle to have a more precise overview of fish farm impacts on this species, including during and after the post-production fallowing period.


Subject(s)
Aquaculture , Salmo salar , Animals , Salmo salar/parasitology , Water Pollutants, Chemical/toxicity , Ivermectin/analogs & derivatives , Ivermectin/pharmacology
14.
Hum Exp Toxicol ; 43: 9603271241249965, 2024.
Article in English | MEDLINE | ID: mdl-38662433

ABSTRACT

BACKGROUND: The mechanism of emamectin benzoate (EMB-a macrocyclic lactone insecticide like abamectin) action involves the disruption of glutamate-gated chloride channels and GABA receptors in insects, leading to paralysis and death. EMB overdose can breach the blood-brain barrier, resulting in severe poisoning and altered consciousness. AIM: Review EMB poisoning presentations in patients and reevaluate clinical manifestations. MATERIALS AND METHODS: This retrospective study reviewed (August 31, 2008-August 31, 2023) medical university hospital records. We analyzed symptoms, patient characteristics, vital signs, Glasgow Coma Scale scores, laboratory findings, and outcomes. RESULTS: Ten patients (males: 6, females: 4, median age = 64.5 years) experienced EMB poisoning. Common symptoms included sore throat, gastrointestinal distress, dyspnea, and altered consciousness; two patients showed laryngeal corrosive injuries. Management involved activated charcoal administration, gastric lavage, and intensive care unit admission. DISCUSSION: Sore throat and corrosive injuries were distinctive presentations of EMB poisoning, warranting vigilance. Potential mechanisms of corrosive injury include skin and eye irritation effects of EMB, the solvents of which might exert corrosive action. CONCLUSION: EMB poisoning manifests as diverse symptoms, including sore throat, gastrointestinal symptoms, central nervous system depression, and potential aspiration pneumonia. Recognizing and promptly managing EMB poisoning are crucial for enhancing patient outcomes and minimizing complications.


Subject(s)
Ivermectin , Ivermectin/analogs & derivatives , Humans , Ivermectin/poisoning , Ivermectin/toxicity , Female , Middle Aged , Male , Retrospective Studies , Aged , Insecticides/poisoning , Insecticides/toxicity , Adult , Aged, 80 and over
15.
Sci Rep ; 14(1): 7931, 2024 04 04.
Article in English | MEDLINE | ID: mdl-38575641

ABSTRACT

Phthorimaea absoluta is an invasive solanaceous plant pest with highly devastating effects on tomato plant. Heavy reliance on insecticide use to tackle the pest has been linked to insecticide resistance selection in P. absoluta populations. To underline insights on P. absoluta insecticide resistance mechanisms to diamides and avermectins, we evaluated the transcriptomic profile of parental (field-collected) and F8 (lab-reared) populations. Furthermore, to screen for the presence of organophosphate and pyrethroid resistance, we assessed the gene expression levels of acetylcholinesterase (ace1) and para-type voltage-gated sodium channel (VGSG) genes in the F1 to F8 lab-reared progeny of diamide and avermectin exposed P. absoluta field-collected populations. The VGSG gene showed up-regulation in 12.5% and down-regulation in 87.5% of the screened populations, while ace1 gene showed up-regulation in 37.5% and down-regulation in 62.5% of the screened populations. Gene ontology of the differentially expressed genes from both parental and eighth generations of diamide-sprayed P. absoluta populations revealed three genes involved in the metabolic detoxification of diamides in P. absoluta. Therefore, our study showed that the detoxification enzymes found could be responsible for P. absoluta diamide-based resistance, while behavioural resistance, which is stimulus-dependent, could be attributed to P. absoluta avermectin resistance.


Subject(s)
Insecticides , Ivermectin/analogs & derivatives , Lepidoptera , Moths , Animals , Lepidoptera/genetics , Insecticides/pharmacology , Insecticides/metabolism , Moths/genetics , Acetylcholinesterase/metabolism , Diamide , Gene Expression Profiling , Larva
16.
Food Chem ; 449: 139256, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38636286

ABSTRACT

In this report, we firstly synthesized nitro calix [4] resorcinarene compound (referred as KA30) and characterized it though proton (1H) nuclear magnetic resonance (NMR) spectroscopy, electrospray ionization mass spectrometry (ESI-MS) and Fourier Transform Infra-red (FTIR) spectroscopy. KA30 was applied as functionalizing agent for the formation of silver nanoparticles (KA30-AgNPs). These NPs were confirmed as highly selective and extremely sensitive colorimetric sensor for ultra-low level detection of emamectin (EMA) as a novel report. Significant aspect of the sensor is its unique detection range between 0.0005 and 29.5 µM via color change from yellow to colorless with hypochromic-bathochromic shift exhibiting limit of detection (LOD) and limit of quantification (LOQ) as 0.12 nM and 0.4 nM respectively. The sensor was applied to colorimetrically and optically detect EMA in real samples of serum, urine and food. The sensor was further allied with smartphone for real-time, and on-site detection of EMA and results were validated through UPLC.


Subject(s)
Colorimetry , Food Contamination , Ivermectin , Metal Nanoparticles , Silver , Smartphone , Silver/chemistry , Colorimetry/methods , Metal Nanoparticles/chemistry , Food Contamination/analysis , Ivermectin/analogs & derivatives , Ivermectin/chemistry , Ivermectin/analysis , Limit of Detection , Calixarenes/chemistry , Humans , Water Pollutants, Chemical/analysis , Water Pollutants, Chemical/chemistry
17.
Microb Biotechnol ; 17(5): e14470, 2024 May.
Article in English | MEDLINE | ID: mdl-38683675

ABSTRACT

Avermectins (AVEs), a family of macrocyclic polyketides produced by Streptomyces avermitilis, have eight components, among which B1a is noted for its strong insecticidal activity. Biosynthesis of AVE "a" components requires 2-methylbutyryl-CoA (MBCoA) as starter unit, and malonyl-CoA (MalCoA) and methylmalonyl-CoA (MMCoA) as extender units. We describe here a novel strategy for increasing B1a production by enhancing acyl-CoA precursor supply. First, we engineered meilingmycin (MEI) polyketide synthase (PKS) for increasing MBCoA precursor supply. The loading module (using acetyl-CoA as substrate), extension module 7 (using MMCoA as substrate) and TE domain of MEI PKS were assembled to produce 2-methylbutyrate, providing the starter unit for B1a production. Heterologous expression of the newly designed PKS (termed Mei-PKS) in S. avermitilis wild-type (WT) strain increased MBCoA level, leading to B1a titer 262.2 µg/mL - 4.36-fold higher than WT value (48.9 µg/mL). Next, we separately inhibited three key nodes in essential pathways using CRISPRi to increase MalCoA and MMCoA levels in WT. The resulting strains all showed increased B1a titer. Combined inhibition of these key nodes in Mei-PKS expression strain increased B1a titer to 341.9 µg/mL. Overexpression of fatty acid ß-oxidation pathway genes in the strain further increased B1a titer to 452.8 µg/mL - 8.25-fold higher than WT value. Finally, we applied our precursor supply strategies to high-yield industrial strain A229. The strategies, in combination, led to B1a titer 8836.4 µg/mL - 37.8% higher than parental A229 value. These findings provide an effective combination strategy for increasing AVE B1a production in WT and industrial S. avermitilis strains, and our precursor supply strategies can be readily adapted for overproduction of other polyketides.


Subject(s)
Acyl Coenzyme A , Ivermectin , Ivermectin/analogs & derivatives , Metabolic Engineering , Metabolic Networks and Pathways , Polyketide Synthases , Streptomyces , Polyketide Synthases/genetics , Polyketide Synthases/metabolism , Acyl Coenzyme A/metabolism , Acyl Coenzyme A/genetics , Streptomyces/genetics , Streptomyces/metabolism , Streptomyces/enzymology , Metabolic Networks and Pathways/genetics , Ivermectin/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism
18.
ACS Appl Mater Interfaces ; 16(17): 22558-22570, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38637157

ABSTRACT

The development of nanopesticides provides new avenues for pesticide reduction and efficiency improvement. However, the size effect of nanopesticides remains unclear, and its underlying mechanisms of influence have become a major obstacle in the design and application of pesticide nanoformulations. In this research, the noncarrier-coated emamectin benzoate (EB) solid dispersions (Micro-EB and Nano-EB) were produced under a constant surfactant-to-active ingredient ratio by a self-emulsifying-carrier solidification technique. The particle size of Micro-EB was 162 times that of spherical Nano-EB. The small size and large specific surface area of Nano-EB facilitated the adsorption of surfactants on the surface of the particles, thereby improving its dispersibility, suspensibility, and stability. The pinning effect of nanoparticles significantly suppressed droplet retraction and rebounding. Moreover, Nano-EB exhibited a 25% higher retention of the active ingredient on cabbage leaves and a 70% higher washing resistance than Micro-EB, and both were significantly different. The improvement of abilities in wetting, spreading, and retention of Nano-EB on crop leaves contributed to the increase in foliar utilization, which further resulted in a 1.6-fold enhancement of bioactivity against target Spodoptera exigua compared to Micro-EB. Especially, Nano-EB did not exacerbate the safety risk to the nontarget organism zebrafish with no significant difference. This study elaborates the size effect on the effectiveness and safety of pesticide formulations and lays a theoretical foundation for the development and rational utilization of efficient and environmentally friendly nanopesticides.


Subject(s)
Ivermectin , Ivermectin/analogs & derivatives , Nanoparticles , Particle Size , Spodoptera , Ivermectin/pharmacology , Ivermectin/chemistry , Animals , Spodoptera/drug effects , Nanoparticles/chemistry , Insecticides/pharmacology , Insecticides/chemistry , Plant Leaves/chemistry , Plant Leaves/metabolism , Surface-Active Agents/chemistry , Surface-Active Agents/pharmacology , Brassica/drug effects
19.
Bull Entomol Res ; 114(2): 159-171, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38563228

ABSTRACT

The fall armyworm (FAW) Spodoptera frugiperda (J.E. Smith) is a highly damaging invasive omnivorous pest that has developed varying degrees of resistance to commonly used insecticides. To investigate the molecular mechanisms of tolerance to tetraniliprole, spinetoram, and emamectin benzoate, the enzyme activity, synergistic effect, and RNA interference were implemented in S. frugiperda. The functions of cytochrome P450 monooxygenase (P450) in the tolerance to tetraniliprole, spinetoram, and emamectin benzoate in S. frugiperda was determined by analysing changes in detoxification metabolic enzyme activity and the effects of enzyme inhibitors on susceptibility to the three insecticides. 102 P450 genes were screened via transcriptome and genome, of which 67 P450 genes were differentially expressed in response to tetraniliprole, spinetoram, and emamectin benzoate and validated by quantitative real-time PCR. The expression patterns of CYP9A75, CYP340AA4, CYP340AX8v2, CYP340L16, CYP341B15v2, and CYP341B17v2 were analysed in different tissues and at different developmental stages in S. frugiperda. Silencing CYP340L16 significantly increased the susceptibility of S. frugiperda to tetraniliprole, spinetoram, and emamectin benzoate. Furthermore, knockdown of CYP340AX8v2, CYP9A75, and CYP341B17v2 significantly increased the sensitivity of S. frugiperda to tetraniliprole. Knockdown of CYP340AX8v2 and CYP340AA4 significantly increased mortality of S. frugiperda to spinetoram. Knockdown of CYP9A75 and CYP341B15v2 significantly increased the susceptibility of S. frugiperda to emamectin benzoate. These results may help to elucidate the mechanisms of tolerance to tetraniliprole, spinetoram and emamectin benzoate in S. frugiperda.


Subject(s)
Cytochrome P-450 Enzyme System , Insecticides , Ivermectin , Spodoptera , Animals , Spodoptera/genetics , Spodoptera/metabolism , Spodoptera/drug effects , Ivermectin/analogs & derivatives , Cytochrome P-450 Enzyme System/metabolism , Cytochrome P-450 Enzyme System/genetics , Insecticides/pharmacology , Larva/growth & development , Larva/drug effects , Larva/genetics , Insecticide Resistance/genetics , Inactivation, Metabolic , RNA Interference , Macrolides
20.
Int J Biol Macromol ; 267(Pt 2): 131510, 2024 May.
Article in English | MEDLINE | ID: mdl-38608989

ABSTRACT

Bacterial diseases caused substantial yield losses worldwide, with the rise of antibiotic resistance, there is a critical need for alternative antibacterial compounds. Natural products (NPs) from microorganisms have emerged as promising candidates due to their potential as cost-effective and environmentally friendly bactericides. However, the precise mechanisms underlying the antibacterial activity of many NPs, including Guvermectin (GV), remain poorly understood. Here, we sought to explore how GV interacts with Guanosine 5'-monophosphate synthetase (GMPs), an enzyme crucial in bacterial guanine synthesis. We employed a combination of biochemical and genetic approaches, enzyme activity assays, site-directed mutagenesis, bio-layer interferometry, and molecular docking assays to assess GV's antibacterial activity and its mechanism targeting GMPs. The results showed that GV effectively inhibits GMPs, disrupting bacterial guanine synthesis. This was confirmed through drug-resistant assays and direct enzyme inhibition studies. Bio-layer interferometry assays demonstrated specific binding of GV to GMPs, with dependency on Xanthosine 5'-monophosphate. Site-directed mutagenesis identified key residues crucial for the GV-GMP interaction. This study elucidates the antibacterial mechanism of GV, highlighting its potential as a biocontrol agent in agriculture. These findings contribute to the development of novel antibacterial agents and underscore the importance of exploring natural products for agricultural disease management.


Subject(s)
Adenosine/analogs & derivatives , Anti-Bacterial Agents , Ivermectin , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Ivermectin/pharmacology , Ivermectin/analogs & derivatives , Ivermectin/chemistry , Molecular Docking Simulation , Biological Products/pharmacology , Biological Products/chemistry , Microbial Sensitivity Tests , Carbon-Nitrogen Ligases/metabolism , Carbon-Nitrogen Ligases/chemistry , Carbon-Nitrogen Ligases/antagonists & inhibitors , Enzyme Inhibitors/pharmacology , Enzyme Inhibitors/chemistry , Mutagenesis, Site-Directed
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