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1.
Sci Rep ; 14(1): 10215, 2024 05 03.
Article in English | MEDLINE | ID: mdl-38702403

ABSTRACT

Weeds pose a major constraint in lentil cultivation, leading to decrease farmers' revenues by reducing the yield and increasing the management costs. The development of herbicide tolerant cultivars is essential to increase lentil yield. Even though herbicide tolerant lines have been identified in lentils, breeding efforts are still limited and lack proper validation. Marker assisted selection (MAS) can increase selection accuracy at early generations. Total 292 lentil accessions were evaluated under different dosages of two herbicides, metribuzin and imazethapyr, during two seasons at Marchouch, Morocco and Terbol, Lebanon. Highly significant differences among accessions were observed for days to flowering (DF) and maturity (DM), plant height (PH), biological yield (BY), seed yield (SY), number of pods per plant (NP), as well as the reduction indices (RI) for PH, BY, SY and NP. A total of 10,271 SNPs markers uniformly distributed along the lentil genome were assayed using Multispecies Pulse SNP chip developed at Agriculture Victoria, Melbourne. Meta-GWAS analysis was used to detect marker-trait associations, which detected 125 SNPs markers associated with different traits and clustered in 85 unique quantitative trait loci. These findings provide valuable insights for initiating MAS programs aiming to enhance herbicide tolerance in lentil crop.


Subject(s)
Herbicide Resistance , Herbicides , Lens Plant , Polymorphism, Single Nucleotide , Lens Plant/genetics , Lens Plant/drug effects , Lens Plant/growth & development , Herbicides/pharmacology , Herbicides/toxicity , Herbicide Resistance/genetics , Genome-Wide Association Study , Genes, Plant , Quantitative Trait Loci
2.
Bull Environ Contam Toxicol ; 112(6): 77, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38758236

ABSTRACT

Fulvic acids (FA) are environmentally prevalent components of dissolved organic carbon. Little research has evaluated their potential influence on the bioavailability of herbicides to non-target aquatic plants. This study evaluated the potential impacts of FA on the bioavailability of atrazine (ATZ) to the aquatic plant Lemna minor. Plants were exposed to 0, 15, 30, 60, 125, and 750 µg/L ATZ in media containing three FA concentrations (0, 5, and 15 mg/L) in a factorial study under static conditions. Fronds were counted after 7- and 14-days exposure and intrinsic growth rates (IGR) and total frond yields were calculated for analysis. Atrazine NOAECs and LOAECs within each FA treatment series (0, 5, or 15 mg/L) were identified and EC50s were estimated. NOAEC/LOAECs for yield and IGR were 60/125 µg/L except for yield in the 0 mg/L-FA series (30/60) and IGR in the 5 mg/L-FA series (30/60). NOAEC/LOAECs were 30/60 µg/L for all treatments and both endpoints after 14 days exposure. EC50s ranged from 88.2 to 106.1 µg/L (frond production 7 DAT), 158.0-186.0 µg/L (IGR, 7 DAT), 74.7-86.3 µg/L (frond production, 14 DAT), and 144.1-151.3 µg/L (IGR, 14 DAT). FA concentrations did not influence the toxicity of ATZ.


Subject(s)
Araceae , Atrazine , Benzopyrans , Herbicides , Water Pollutants, Chemical , Herbicides/toxicity , Benzopyrans/toxicity , Atrazine/toxicity , Araceae/drug effects , Water Pollutants, Chemical/toxicity
3.
Aquat Toxicol ; 271: 106940, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38728927

ABSTRACT

Aminomethylphosphonic acid (AMPA) is the main metabolite in the degradation of glyphosate, a broad-spectrum herbicide, and it is more toxic and persistent in the environment than the glyphosate itself. Owing to their extensive use, both chemicals pose a serious risk to aquatic ecosystems. Here, we explored the genotoxicological and physiological effects of glyphosate, AMPA, and the mixed solution in the proportion 1:1 in Lymnaea stagnalis, a freshwater gastropod snail. To do this, adult individuals were exposed to increasing nominal concentrations (0.0125, 0.025, 0.050, 0.100, 0.250, 0.500 µg/mL) in all three treatments once a week for four weeks. The genotoxicological effects were estimated as genomic damage, as defined by the number of micronuclei and nuclear buds observed in hemocytes, while the physiological effects were estimated as the effects on somatic growth and egg production. Exposure to glyphosate, AMPA, and the mixed solution caused genomic damage, as measured in increased frequency of micronuclei and nuclear buds and in adverse effects on somatic growth and egg production. Our findings suggest the need for more research into the harmful and synergistic effects of glyphosate and AMPA and of pesticides and their metabolites in general.


Subject(s)
Glycine , Glyphosate , Herbicides , Lymnaea , Organophosphonates , Water Pollutants, Chemical , Animals , Glycine/analogs & derivatives , Glycine/toxicity , Lymnaea/drug effects , Lymnaea/genetics , Water Pollutants, Chemical/toxicity , Organophosphonates/toxicity , Herbicides/toxicity , Micronucleus Tests , DNA Damage/drug effects , Hemocytes/drug effects , Tetrazoles/toxicity
4.
Chemosphere ; 358: 142219, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38704040

ABSTRACT

The worldwide used herbicide Glyphosate can interact with environmental variables, but there is limited information on the influence of environmental stressors on its toxicity. Environmental changes could modify glyphosate effects on non-target organisms, including parasites such as gordiids. The freshwater microscopic larvae of the gordiid Chordodes nobilii are sensitive to several pollutants and environmental variables, but their combined effect has not been evaluated yet. The aim of this study was to evaluate the impact of temperature, pH and exposure time on the toxicity of Glyphosate to C. nobilii larvae. A protocol was followed to evaluate the infectivity of larvae treated with factorial combinations of concentration (0 and 0.067 mg/L), exposure time (24 and 48 h), temperature (18, 23 and 28 °C), and pH (7, 8 and 9). The reference values were 23 °C, pH 8 and 48 h. The interaction effect on the infectivity of gordiid larvae was assessed post-exposure using Aedes aegyptii larvae as host. Results were evaluated using GLMM, which does not require data transformation. The modeling results revealed three highly significant triple interactions. Glyphosate toxicity varied depending on the combination of variables, with a decrease being observed after 24 h-exposure at pH 7 and 23 °C. Glyphosate and 28 °C combination led to slightly reduced infectivity compared to temperature alone. This study is the first to report the combined effects of glyphosate, temperature, pH and time on a freshwater animal. It demonstrates that a specific combination of factors determines the effect of glyphosate on a non-target organism. The potential use of C. nobilli as a bioindicator is discussed. In the context of global warming and considering that the behavioral manipulation of terrestrial hosts by gordiids can shape community structure and the energy flow through food webs, our results raise concerns about possible negative effects of climate change on host-parasite dynamics.


Subject(s)
Glycine , Glyphosate , Herbicides , Larva , Temperature , Glycine/analogs & derivatives , Glycine/toxicity , Animals , Herbicides/toxicity , Larva/drug effects , Water Pollutants, Chemical/toxicity , Hydrogen-Ion Concentration , Helminths/drug effects , Helminths/physiology , Aedes/drug effects , Parasites/drug effects
5.
Ecotoxicol Environ Saf ; 278: 116410, 2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38696871

ABSTRACT

Environmental exposure to endocrine disruptors, such as pesticides, could contribute to a decline of human fertility. Glyphosate (GLY) is the main component of Glyphosate Based Herbicides (GBHs), which are the most commonly herbicides used in the world. Various animal model studies demonstrated its reprotoxicity. In Europe, GLY authorization in agriculture has been extended until 2034. Meanwhile the toxicity of GLY in humans is still in debate. The aims of our study were firstly to analyse the concentration of GLY and its main metabolite, amino-methyl-phosphonic acid (AMPA) by LC/MS-MS in the seminal and blood plasma in an infertile French men population (n=128). We secondly determined Total Antioxidant Status (TAS) and Total Oxidant Status (TOS) using commercial colorimetric kits and some oxidative stress biomarkers including malondialdehyde (MDA) and 8-hydroxy-2'-deoxyguanosine (8-OHdG) by ELISA assays. We next analysed potential correlations between GLY and oxidative stress biomarkers concentration and sperm parameters (sperm concentration, progressive speed, anormal forms). Here, we detected for the first time GLY in the human seminal plasma in significant proportions and we showed that its concentration was four times higher than those observed in blood plasma. At the opposite, AMPA was undetectable. We also observed a strong positive correlation between plasma blood GLY concentrations and plasma seminal GLY and 8-OHdG concentrations, the latter reflecting DNA impact. In addition, TOS, Oxidative Stress Index (OSI) (TOS/TAS), MDA blood and seminal plasma concentrations were significantly higher in men with glyphosate in blood and seminal plasma, respectively. Taken together, our results suggest a negative impact of GLY on the human reproductive health and possibly on his progeny. A precaution principle should be applied at the time of the actual discussion of GLY and GBHs formulants uses in Europe by the authorities.


Subject(s)
Glycine , Glyphosate , Herbicides , Infertility, Male , Oxidative Stress , Spermatozoa , Humans , Male , Glycine/analogs & derivatives , Glycine/toxicity , Oxidative Stress/drug effects , France , Adult , Herbicides/toxicity , Spermatozoa/drug effects , Infertility, Male/chemically induced , Semen/drug effects , Biomarkers/blood , Malondialdehyde/metabolism , Organophosphonates/toxicity , Middle Aged
6.
Sci Total Environ ; 933: 173041, 2024 Jul 10.
Article in English | MEDLINE | ID: mdl-38723972

ABSTRACT

Although many organochlorine pesticides (OCPs) have been banned or restricted because of their persistence and linkage to neurodegenerative diseases, there is evidence of continued human exposure. In contrast, registered herbicides are reported to have a moderate to low level of toxicity; however, there is little information regarding their toxicity to humans or their combined effects with OCPs. This study aimed to characterize the mechanism of toxicity of banned OCP insecticides (aldrin, dieldrin, heptachlor, and lindane) and registered herbicides (trifluralin, triallate, and clopyralid) detected at a legacy contaminated pesticide manufacturing and packing site using SH-SY5Y cells. Cell viability, LDH release, production of reactive oxygen species (ROS), and caspase 3/7 activity were evaluated following 24 h of exposure to the biocides. In addition, RNASeq was conducted at sublethal concentrations to investigate potential mechanisms involved in cellular toxicity. Our findings suggested that aldrin and heptachlor were the most toxic, while dieldrin, lindane, trifluralin, and triallate exhibited moderate toxicity, and clopyralid was not toxic to SH-SY5Y cells. While aldrin and heptachlor induced their toxicity through damage to the cell membrane, the toxicity of dieldrin was partially attributed to necrosis and apoptosis. Moreover, toxic effects of lindane, trifluralin, and triallate, at least partially, were associated with ROS generation. Gene expression profiles suggested that decreased cell viability induced by most of the tested biocides was related to inhibited cell proliferation. The dysregulation of genes encoding for proteins with anti-apoptotic properties also supported the absence of caspase activation. Identified enriched terms showed that OCP toxicity in SH-SY5Y cells was mediated through pathways associated with the pathogenesis of neurodegenerative diseases. In conclusion, this study provides a basis for elucidating the molecular mechanisms of pesticide-induced neurotoxicity. Moreover, it introduced SH-SY5Y cells as a relevant in vitro model for investigating the neurotoxicity of pesticides in humans.


Subject(s)
Neuroblastoma , Neurodegenerative Diseases , Reactive Oxygen Species , Humans , Neurodegenerative Diseases/chemically induced , Cell Line, Tumor , Reactive Oxygen Species/metabolism , Pesticides/toxicity , Dieldrin/toxicity , Insecticides/toxicity , Cell Survival/drug effects , Hydrocarbons, Chlorinated/toxicity , Apoptosis/drug effects , Herbicides/toxicity , Aldrin/toxicity , Hexachlorocyclohexane/toxicity
7.
Environ Sci Pollut Res Int ; 31(24): 35308-35319, 2024 May.
Article in English | MEDLINE | ID: mdl-38727975

ABSTRACT

Daphnia spinulata Birabén, 1917 is an endemic cladoceran species, frequent in the zooplankton communities of the shallow lakes of the Pampean region of Argentina. These lakes have varying salinity levels and, being located in agricultural areas, are frequently subject to pesticide pollution. This study aimed to determine the effects of the herbicide glyphosate (Panzer Gold®) in combination with different salinity levels on the biological parameters of D. spinulata and its recovery ability after a short exposure. Three types of assays were performed: an acute toxicity test, a chronic assessment to determine survival, growth and reproduction, and recovery assays under optimal salinity conditions (1 g L-1). The LC50-48 h of glyphosate was 7.5 mg L-1 (CL 3.15 to 11.72). Longevity and the number of offspring and clutches were significantly reduced due to the combined exposure of glyphosate and increased salinity. The timing of the first offspring did not recover after glyphosate exposure. Our results reveal that D. spinulata is sensitive to the herbicide Panzer Gold® at concentrations well below those indicated in the safety data sheet of this commercial formulation, which causes stronger negative effects in conditions of higher salinity. Further research is needed to shed light on the sensitivity of this cladoceran to glyphosate and its variability under other interactive stress factors.


Subject(s)
Daphnia , Glycine , Glyphosate , Herbicides , Salinity , Animals , Glycine/analogs & derivatives , Glycine/toxicity , Daphnia/drug effects , Herbicides/toxicity , Water Pollutants, Chemical/toxicity , Argentina , Reproduction/drug effects
8.
J Hazard Mater ; 472: 134559, 2024 Jul 05.
Article in English | MEDLINE | ID: mdl-38735189

ABSTRACT

Parkinson's disease (PD) is a prevalent neurodegenerative disease and approximately one third of patients with PD are estimated to experience depression. Paraquat (PQ) is the most widely used herbicide worldwide and PQ exposure is reported to induce PD with depression. However, the specific brain region and neural networks underlying the etiology of depression in PD, especially in the PQ-induced model, have not yet been elucidated. Here, we report that the VGluT2-positive glutamatergic neurons in the paraventricular thalamic nucleus (PVT) promote depression in the PQ-induced PD mouse model. Our results show that PVTVGluT2 neurons are activated by PQ and their activation increases the susceptibility to depression in PD mice. Conversely, inhibition of PVTVGluT2 neurons reversed the depressive-behavioral changes induced by PQ. Similar to the effects of intervention the soma of PVTVGluT2 neurons, stimulation of their projections into the central amygdaloid nucleus (CeA) also strongly influenced depression in PD mice. PQ induced malfunctioning of the glutamate system and changes in the dendritic and synaptic morphology in the CeA through its role on PVTVGluT2 neuronal activation. In summary, our results demonstrate that PVTVGluT2 neurons are key neuronal subtypes for depression in PQ-induced PD and promote depression processes through the PVTVGluT2-CeA pathway.


Subject(s)
Midline Thalamic Nuclei , Neurons , Paraquat , Vesicular Glutamate Transport Protein 2 , Animals , Paraquat/toxicity , Male , Vesicular Glutamate Transport Protein 2/metabolism , Neurons/drug effects , Midline Thalamic Nuclei/drug effects , Midline Thalamic Nuclei/metabolism , Depression/chemically induced , Depression/metabolism , Mice, Inbred C57BL , Herbicides/toxicity , Mice , Parkinson Disease/metabolism
9.
Sci Total Environ ; 933: 173150, 2024 Jul 10.
Article in English | MEDLINE | ID: mdl-38735312

ABSTRACT

The intensive and widespread application of pesticides in agroecosystems can lead to the simultaneous exposure of non-target aquatic organisms to insecticides and herbicides. However, the underlying mechanisms through which aquatic organisms undergo metabolic reprogramming to withstand the combined effects of the insecticide imidacloprid (IMI) and herbicide sulfentrazone (SUL) remain poorly elucidated. This study employs metabolomics to investigate the effects of individual and combined exposures to IMI and SUL on zebrafish (Danio rerio), aiming to simulate complex environmental conditions. Metabolomics analysis revealed extensive metabolic reprogramming in larvae induced by the selected agrochemicals. Both individual and combined exposures disrupted nucleotide metabolism, inhibited glycolysis, and led to the accumulation of acetylcholine through the shared modulation of differential metabolites. Notably, individual exposure exhibited a unique mode of action. Larvae exposed to IMI alone showed mitochondrial dysfunction, potentially stemming from interference with the electron transport chain, while SUL-induced disruptions were associated with glycerophospholipid accumulation, marking it as a critical target. Additionally, calculations of the metabolic effect level index indicated antagonistic interactions between SUL and IMI mixtures at an overall metabolic level. The results obtained through investigating the lethal and sub-lethal effects also revealed that the simultaneous application of SUL and IMI may have the potential to diminish acute and developmental toxicity in zebrafish. This study underscores the significance of metabolomics as a valuable and effective strategy for deciphering the toxicity and interactions of agrochemical mixtures.


Subject(s)
Insecticides , Larva , Neonicotinoids , Nitro Compounds , Water Pollutants, Chemical , Zebrafish , Animals , Neonicotinoids/toxicity , Nitro Compounds/toxicity , Larva/drug effects , Water Pollutants, Chemical/toxicity , Insecticides/toxicity , Herbicides/toxicity , Metabolomics
10.
Pestic Biochem Physiol ; 201: 105908, 2024 May.
Article in English | MEDLINE | ID: mdl-38685229

ABSTRACT

The inclination toward natural products has led to the onset of the discovery of new bioactive metabolites that could be targeted for specific therapeutic or agronomic applications. Despite increasing knowledge coming to light of plant-derived materials as leads for new herbicides, relatively little is known about the mode of action on herbicide-resistant weeds. Cyanamide (CA) is a naturally occurring herbicide synthesized by hairy vetch (Vicia villosa Roth.). However, it has not been experimentally verified whether CA suppresses target plants via sustained discharge at low concentrations, as is often the case with most plant-derived materials. This study aimed to detect the toxicity and the mode of action of CA to alfalfa (Medicago sativa L.) and redroot pigweed (Amaranthus retroflexus L.). The toxicity of CA toward the alfalfa and redroot pigweed by three different exposure patterns was compared: low-concentration repeated exposure with 0.3 g/L CA (LRE), high-concentration single exposure with 1.2 g/L CA (HSE), and distilled water spray as control. The results showed that CA had a stronger inhibitory effect on redroot pigweed growth compared to alfalfa under both LRE and HSE exposure modes, with leaves gradually turning yellow and finally wilting. Beyond that, field trials were conducted to corroborate the toxicity of CA to alfalfa and redroot pigweed. The results have also shown that CA could inhibit the growth of redroot pigweed without significant adverse effects on alfalfa. The outcomes concerning electrolyte permeability, root activity, and malondialdehyde (MDA) content indicated that CA suppressed the growth of redroot pigweed by interfering with the structure of the cell membrane and impacting cellular osmotic potential. CA could destroy the cell membrane structure to inhibit the growth of the redroot pigweed by both LRE and HSE exposure modes, which provides a theoretical basis for preventing and controlling redroot pigweed in alfalfa fields.


Subject(s)
Amaranthus , Cyanamide , Herbicides , Medicago sativa , Medicago sativa/drug effects , Herbicides/toxicity , Herbicides/pharmacology , Amaranthus/drug effects , Cyanamide/pharmacology , Malondialdehyde/metabolism , Plant Weeds/drug effects
11.
Sci Total Environ ; 928: 172305, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38593872

ABSTRACT

Thiram is a member of the dithiocarbamate family and is widely used in agriculture, especially in low-income countries. Its residues lead to various diseases, among which tibial dyschondroplasia (TD) in broiler chickens is the most common. Recent studies have also demonstrated that thiram residues may harm human health. Our previous study showed that the activity of the mTOR (mammalian target of rapamycin) signaling pathway has changed after thiram exposure. In the current study, we investigated the effect of autophagy via the mTOR signaling pathway after thiram exposure in vitro and in vivo. Our results showed that thiram inhibited the protein expression of mTOR signaling pathway-related genes such as p-4EBP1 and p-S6K1. The analysis showed a significant increase in the expression of key autophagy-related proteins, including LC3, ULK1, ATG5, and Beclin1. Further investigation proved that the effects of thiram were mediated through the downregulation of mTOR. The mTOR agonist MHY-1485 reverse the upregulation of autophagy caused by thiram in vitro. Moreover, our experiment using knockdown of TSC1 resulted in chondrocytes expressing lower levels of autophagy. In conclusion, our results demonstrate that thiram promotes autophagy via the mTOR signaling pathway in chondrogenesis, providing a potential pharmacological target for the prevention of TD.


Subject(s)
Autophagy , Chickens , Osteochondrodysplasias , Poultry Diseases , Signal Transduction , TOR Serine-Threonine Kinases , Thiram , Animals , Thiram/toxicity , TOR Serine-Threonine Kinases/metabolism , Autophagy/drug effects , Signal Transduction/drug effects , Osteochondrodysplasias/chemically induced , Osteochondrodysplasias/veterinary , Poultry Diseases/chemically induced , Tuberous Sclerosis Complex 1 Protein/genetics , Tibia/drug effects , Herbicides/toxicity
12.
Sci Rep ; 14(1): 8905, 2024 04 17.
Article in English | MEDLINE | ID: mdl-38632282

ABSTRACT

Glyphosate is the active ingredient of glyphosate-based herbicides and the most commonly used pesticide in the world. The goal of the present study was to verify whether low doses of glyphosate (equivalent to the environmental exposure) evoke changes in galanin expression in intramural neurons in the small intestine in pigs and to quantitatively determine changes in the level of galanin receptor encoding mRNA (GALR1, GALR2, GALR3) in the small intestine wall. The experiment was conducted on 15 sexually immature gilts divided into three study groups: control (C)-animals receiving empty gelatin capsules; experimental 1 (G1)-animals receiving a low dose of glyphosate (0.05 mg/kg b.w./day); experimental 2 (G2)-animals receiving a higher dose of glyphosate (0.5 mg/kg b.w./day) orally in gelatine capsules for 28 days. Glyphosate ingestion led to an increase in the number of GAL-like immunoreactive intramural neurons in the porcine small intestine. The results of RT-PCR showed a significant increase in the expression of mRNA, which encodes the GAL-receptors in the ileum, a decreased expression in the duodenum and no significant changes in the jejunum. Additionally, intoxication with glyphosate increased the expression of SOD2-encoding mRNA in the duodenum and decreased it in the jejunum and ileum, but it did not affect SOD1 expression. The results suggest that it may be a consequence of the cytotoxic and/or neurotoxic properties of glyphosate and/or its ability to induce oxidative stress.


Subject(s)
Galanin , Glyphosate , Animals , Female , Galanin/metabolism , Glyphosate/metabolism , Glyphosate/toxicity , Intestine, Small/drug effects , Intestine, Small/metabolism , Receptor, Galanin, Type 2/drug effects , Receptor, Galanin, Type 2/genetics , Receptor, Galanin, Type 2/metabolism , RNA, Messenger/metabolism , Sus scrofa/genetics , Swine , Receptor, Galanin, Type 1/drug effects , Receptor, Galanin, Type 1/genetics , Receptor, Galanin, Type 1/metabolism , Receptor, Galanin, Type 3/drug effects , Receptor, Galanin, Type 3/genetics , Receptor, Galanin, Type 3/metabolism , Herbicides/toxicity
13.
Funct Plant Biol ; 512024 04.
Article in English | MEDLINE | ID: mdl-38669460

ABSTRACT

We evaluated changes in growth, chlorophyll fluorescence and basic physiological and biochemical parameters of the microalgae Thalassiosira weissflogii cells under the influence of the herbicide glyphosate in concentrations 0, 25, 95 and 150µgL-1 . The toxic effect of glyphosate on algae is weakly dependent on the level of cell mineral nutrition. High concentrations of the herbicide do not lead to the death of microalgae but block the process of algae cell division. An increase in the glyphosate concentration in the medium leads to a slowdown or stop of algal growth, a decrease in their final biomass, an increase in the production of reactive oxygen species (ROS), depolarisation of mitochondrial membranes and metabolic activity of algae. Glyphosate inhibits the photosynthetic activity of cells and inhibits the relative rate of electron transport in the photosynthetic apparatus. Glyphosate at the studied concentrations does not affect the size characteristics of cells and the intracellular content of chlorophyll in T. weissflogii . The studied herbicide or products of its decay retain their toxic properties in the environment for at least 9days. This result shows the need for further in-depth studies to assess the physiological response and possible acclimation changes in the functional state of oxygenic phototrophs in response to the herbicide action. The species specificity of microalgae to the effects of glyphosate in natural conditions is potentially dangerous due to a possible change in the species structure of biocoenoses, in particular, a decrease in the contribution of diatoms.


Subject(s)
Chlorophyll , Diatoms , Glycine , Glyphosate , Herbicides , Microalgae , Photosynthesis , Reactive Oxygen Species , Glycine/analogs & derivatives , Glycine/toxicity , Herbicides/toxicity , Microalgae/drug effects , Microalgae/metabolism , Diatoms/drug effects , Diatoms/metabolism , Diatoms/growth & development , Chlorophyll/metabolism , Photosynthesis/drug effects , Reactive Oxygen Species/metabolism , Membrane Potential, Mitochondrial/drug effects , Biomass
14.
Environ Pollut ; 350: 123967, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38631452

ABSTRACT

Roundup® (R), while it is the most used herbicide globally, and its residues are ubiquitous in urban and suburban areas, its impact on vertebrates' safety remains highly debated. Here, in three in vitro experiments, we investigated the effects of a very low dose (1 ppm) of R on the fertilization capacity and embryo development in cattle. In the first experiment, frozen-thawed bull semen exposed to R for 1 h exhibited reduced motility parameters but unaffected fertilization ability. However, after in vitro fertilization, the rates of embryo formation were significantly lower compared to the untreated controls. In the second experiment, oocytes exposed to R during in vitro maturation showed reduced cleavage rates, and the embryo yield on days 7, 8, and 9 of embryo culture was significantly lower than that of the controls. In the third experiment, oocytes were matured in the presence of R and in a medium containing both R and Zinc, chosen to offer antioxidant protection to the oocytes. Day-7 blastocysts were analyzed for the expression of genes associated with oxidative stress, apoptosis, and epigenetic reprogramming. Exposure to R markedly suppressed embryo formation rates compared to the controls. The combination of R with Zinc restored the blastocyst yield, which on days 8 and 9 was comparable to that of the controls and higher than the groups exposed only to R on all days. The gene expression analysis revealed that R promotes oxidative stress development, triggers apoptosis, and induces epigenetic changes in developing embryos, while zinc presence alleviates these adverse effects of R. These findings imply that even at very low doses, R could be highly toxic, leading to functional abnormalities in both gametes, potentially affecting fertility in both genders.


Subject(s)
Fertilization in Vitro , Glycine , Glyphosate , Herbicides , Animals , Herbicides/toxicity , Cattle , Glycine/analogs & derivatives , Glycine/toxicity , Male , Female , Embryonic Development/drug effects , Oocytes/drug effects , Oxidative Stress/drug effects , Blastocyst/drug effects , Germ Cells/drug effects
15.
J Endocrinol ; 261(3)2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38579817

ABSTRACT

Exposure to glyphosate-based herbicides (GBH) and consumption of cafeteria (CAF) diet, which are widespread in Western society, seem to be associated with endometrial hyperplasia (EH). Here, we aimed to evaluate the effects of a subchronic low dose of GBH added to the CAF diet on the rat uterus. Female Wistar rats were fed from postnatal day (PND)21 until PND240 with chow (control) or CAF diet. Since PND140, rats also received GBH (2 mg of glyphosate/kg/day) or water through food, yielding four experimental groups: control, CAF, GBH, and CAF+GBH. On PND240, CAF and CAF+GBH animals showed an increased adiposity index. With respect to the control group, no changes in the serum levels of 17ß-estradiol and progesterone were found. However, progesterone levels were higher in the CAF+GBH group than in the CAF and GBH groups. In the uterus, both studied factors alone and in combination induced morphological and molecular changes associated with EH. Furthermore, the addition of GBH provoked an increased thickness of subepithelial stroma in rats fed with the CAF diet. As a consequence of GBH exposure, CAF+GBH rats exhibited an increased density of abnormal gland area, considered preneoplastic lesions, as well as a reduced PTEN and p27 expression, both tumor suppressor molecules that inhibit cell proliferation, with respect to control rats. These results indicate that the addition of GBH exacerbates the CAF effects on uterine lesions and that the PTEN/p27 signaling pathway seems to be involved. Further studies focusing on the interaction between unhealthy diets and environmental chemicals should be encouraged to better understand uterine pathologies.


Subject(s)
Glycine , Glyphosate , Herbicides , Rats, Wistar , Uterus , Animals , Female , Uterus/drug effects , Uterus/pathology , Uterus/metabolism , Herbicides/toxicity , Glycine/analogs & derivatives , Rats , Endometrial Hyperplasia/chemically induced , Endometrial Hyperplasia/pathology , Endometrial Hyperplasia/metabolism , Progesterone/blood , Diet , Estradiol/blood , PTEN Phosphohydrolase/metabolism , PTEN Phosphohydrolase/genetics
16.
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
17.
Article in English | MEDLINE | ID: mdl-38570177

ABSTRACT

Acifluorfen, a selective herbicide from the diphenyl ether family, targets broad leaf weeds. Diphenyl ether inhibits chlorophyll production in green plants by inhibiting protoporphyrinogen oxidase (PPO), causing cellular damage. Despite its known impacts on plants, the influence of acifluorfen on zebrafish embryo development remains unclear. In this study, we explored the LC50 of acifluorfen in early-stage wild-type zebrafish, determining it to be 54.99 mg/L. Subsequent examinations revealed morphological changes in zebrafish, including reduced body length. Using the cmlc2:dsRED transgenic model, we observed heart dysfunction in acifluorfen-exposed zebrafish, marked by an enlarged heart area, edema, and decreased heart rate. In response to dose-dependent acifluorfen exposure, the inhibition of angiogenesis in the brain was observed in transgenic zebrafish models (fli1a:eGFP). Organ malformations, specifically in the liver and pancreas, were noted, in lfabp:dsRED;elastase:eGFP transgenic models, indicating reduced organ size in acifluorfen-exposed zebrafish. Furthermore, acifluorfen heightened the expression of apoptosis-related genes (casp8, casp9, and tp53) in zebrafish embryos. We then determined whether acifluorfen affected the viability of zebrafish liver (ZFL) cells based on its effects on liver development in vivo. The results indicated that the proliferation of ZFL cells decreased significantly in a dose-dependent manner. Additionally, acifluorfen-treated ZFL cells exhibited a slight increase in apoptotic cells stained with annexin V and propidium iodide. In summary, these findings establish a baseline concentration for acifluorfen's effects on aquatic ecosystems and non-target organisms.


Subject(s)
Animals, Genetically Modified , Embryo, Nonmammalian , Herbicides , Zebrafish , Animals , Zebrafish/embryology , Embryo, Nonmammalian/drug effects , Herbicides/toxicity , Apoptosis/drug effects , Embryonic Development/drug effects , Water Pollutants, Chemical/toxicity
18.
Article in English | MEDLINE | ID: mdl-38583696

ABSTRACT

Existing evidence shows that currently used pesticides pose toxicological risks to exposed wildlife. Chemically, bifenox belongs to diphenyl ethers, a well-known group of herbicides. Its mechanism of action primarily involves inducing lipid peroxidation and blocking protoporphyrinogen oxidases. Toxicity of diphenyl ether herbicides has been elucidated in animal cells; however, in vivo toxicological evaluations of bifenox are required to determine its unexpected effects. This study aimed to determine the negative effects of bifenox, and its effects on higher eukaryotes. We found that early stages of zebrafish embryo exposed to bifenox demonstrated increased mortality and physiological defects, based on the LC50 value. Bifenox severely inhibited blood vessel growth by reducing key elements of complex connectivity; fluorescently tagged transgenic lines (fli1a:EGFP) showed morphological changes. Additionally, transgenic lines that selectively identified hepatocytes (fabp10a:DsRed) showed reduced fluorescence, indicating that bifenox may inhibit liver development. To evaluate the level of oxidative stress, we used 2',7'-dichlorofluorescein diacetate (DCFH-DA) probes in zebrafish embryos to identify the underlying mechanisms causing developmental damage. Our findings demonstrate that exposure to bifenox causes abnormalities in the hepatic and cardiovascular systems during zebrafish embryogenesis. Therefore, this study provides new information for the evaluation of toxicological risks of bifenox in vertebrates.


Subject(s)
Embryo, Nonmammalian , Reactive Oxygen Species , Signal Transduction , Zebrafish , Animals , Zebrafish/embryology , Embryo, Nonmammalian/drug effects , Reactive Oxygen Species/metabolism , Signal Transduction/drug effects , Oxidative Stress/drug effects , Animals, Genetically Modified , Herbicides/toxicity , Liver/drug effects , Liver/metabolism , Liver/pathology , Liver/embryology , Chemical and Drug Induced Liver Injury/pathology , Chemical and Drug Induced Liver Injury/metabolism , Halogenated Diphenyl Ethers/toxicity
19.
Chemosphere ; 357: 142029, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38626812

ABSTRACT

The application of herbicides in soil has been noted for its detrimental effect on the soil microbial community, crucial for various biochemical processes. This study provides a comprehensive assessment of the impact of butisanstar and clopyralid herbicides, both individually and in combination at different dosage (recommended field dose (RFD), ½, 2 and 5-times RFD). The assessment focuses on soil basal respiration (SBR), cumulative microbial respiration (CMR), and the activities dehydrogenase (DH), catalase (CAT), urease, acid and alkaline phosphatases (Ac-P and Alk-P) enzymes, along with their variations on days 10, 30, 60, and 90 post-herbicide application. Results indicate that, although herbicides, even at lower doses of RFD, demonstrate inhibitory effects on DH, CAT, and microbial respiration, they paradoxically lead to a significant enhancement in urease and phosphatase activities, even at higher doses. The inhibitory/enhancing intensity varies based on herbicide type, incubation period, and dosage. Co-application of herbicides manifests synergistic effects compared to individual applications. The most notable inhibitory effects on DH, CAT, and SBR are observed on the 30th day, coinciding with the highest activities of urease and phosphatases on the same day. The persistent inability to restore respiration and enzyme activities to initial soil (control) levels emphasizes the lasting adverse and inhibitory effects of herbicides, especially clopyralid, over the long term. It becomes apparent that soil microorganisms require an extended duration to decompose and acclimate to the presence of herbicides. Consequently, these agrochemical compounds pose a potential risk to crucial biochemical processes, such as nutrient cycling, ultimately impacting crop production.


Subject(s)
Herbicides , Soil Microbiology , Soil Pollutants , Soil , Herbicides/toxicity , Soil Pollutants/toxicity , Soil/chemistry , Catalase/metabolism , Ecotoxicology , Urease/metabolism , Oxidoreductases/metabolism
20.
Chemosphere ; 357: 142061, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38642775

ABSTRACT

Increasing amounts of amino-functionalized polystyrene nanoplastics (PS-NH2) are entering aquatic ecosystems, raising concerns. Hence, this study investigated 96-h acute toxicity of PS-NH2 and its combination with the pesticide atrazine (ATZ) in the absence/presence of humic acid (HA) on the microalgae Chlorella vulgaris (C. vulgaris). Results showed that both PS-NH2 and PS-NH2+ATZ reduced algal growth, photosynthetic pigments, protein content, and antioxidant capacity, while increasing enzymatic activities. Gene expression related to oxidative stress was altered in C. vulgaris exposed to these treatments. Morphological and intracellular changes were also observed. The combined toxicity of PS-NH2+ATZ demonstrated a synergistic effect, but the addition of environmentally relevant concentration of HA significantly alleviated its toxicity to C. vulgaris, indicating an antagonistic effect due to the emergence of an eco-corona, and entrapment and sedimentation of PS-NH2+ATZ particles by HA. This study firstly highlights the role of HA in mitigating the toxicity of PS-NH2 when combined with other harmful compounds, enhancing our understanding of HA's presence in the environment.


Subject(s)
Atrazine , Chlorella vulgaris , Herbicides , Humic Substances , Microplastics , Polystyrenes , Water Pollutants, Chemical , Chlorella vulgaris/drug effects , Atrazine/toxicity , Herbicides/toxicity , Polystyrenes/toxicity , Polystyrenes/chemistry , Water Pollutants, Chemical/toxicity , Microplastics/toxicity , Oxidative Stress/drug effects , Microalgae/drug effects , Antioxidants/metabolism , Toxicity Tests, Acute , Photosynthesis/drug effects
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