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1.
J Environ Sci (China) ; 145: 97-106, 2024 Nov.
Article in English | MEDLINE | ID: mdl-38844327

ABSTRACT

Sediment is the ultimate sink of environmental pollutants. A total of 128 surface sediment samples were collected from 8 rivers and 3 reservoirs in Maoming City, Guangdong Province. This study assessed the content and distribution of brominated flame retardants in sediments. The acute toxicity effects of tetrabromobisphenol A (TBBPA) and hexabromocyclododecane (HBCDs) in sediments were evaluated using Caenorhabditis elegans as model organisms. The concentration of TBBPA in sediments ranged from not detected (ND) to 12.59 µg/kg and was mainly distributed in the central area, which was affected by the emission of TBBPA from residential and factory. The concentration of HBCDs ranged from ND to 6.31 µg/kg, and the diastereoisomer distribution was consistent, showing a trend close to the South China Sea. The composition pattern of HBCDs in the surface sediments from rivers were 41.73%-62.33%, 7.89%-25.54%, and 18.76%-40.65% for α-, ß-, and γ-HBCD, respectively, and in the sediments from reservoirs were 26.15%-45.52%, 7.44%-19.23%, and 47.04%-61.89% for α-, ß-, and γ-HBCD, respectively. When the sum of concentrations of TBBPA and HBCD in sediments were above high levels, reactive oxygen species in nematodes significantly increased, resulting in an oxidative stress response. Intestinal permeability was also enhanced, causing intestinal damage. In addition, in terms of this study, TBBPA had a greater impact on biotoxicity compared to HBCDs, and more attention should be paid to the toxic effects of the river ecosystem organisms in Maoming City, Guangdong Province. This study can complement the pollution database in the study area and provide basic data for pollution control.


Subject(s)
Caenorhabditis elegans , Environmental Monitoring , Flame Retardants , Geologic Sediments , Hydrocarbons, Brominated , Water Pollutants, Chemical , Animals , Flame Retardants/toxicity , Flame Retardants/analysis , China , Caenorhabditis elegans/drug effects , Geologic Sediments/chemistry , Water Pollutants, Chemical/toxicity , Water Pollutants, Chemical/analysis , Hydrocarbons, Brominated/analysis , Hydrocarbons, Brominated/toxicity , Polybrominated Biphenyls/toxicity , Polybrominated Biphenyls/analysis
2.
Islets ; 16(1): 2361996, 2024 Dec 31.
Article in English | MEDLINE | ID: mdl-38833523

ABSTRACT

Epidemiological studies consistently link environmental toxicant exposure with increased Type 2 diabetes risk. Our study investigated the diabetogenic effects of a widely used flame retardant, Dechlorane Plus (DP), on pancreatic ß-cells using rodent and human model systems. We first examined pancreas tissues from male mice exposed daily to oral gavage of either vehicle (corn oil) or DP (10, 100, or 1000 µg/kg per day) and fed chow or high fat diet for 28-days in vivo. DP exposure did not affect islet size or endocrine cell composition in either diet group. Next, we assessed the effect of 48-hour exposure to vehicle (DMSO) or DP (1, 10, or 100 nM) in vitro using immortalized rat ß-cells (INS-1 832/3), primary mouse and human islets, and human stem-cell derived islet-like cells (SC-islets). In INS-1 832/3 cells, DP did not impact glucose-stimulated insulin secretion (GSIS) but significantly decreased intracellular insulin content. DP had no effect on GSIS in mouse islets or SC-islets but had variable effects on GSIS in human islets depending on the donor. DP alone did not affect insulin content in mouse islets, human islets, or SC-islets, but mouse islets co-exposed to DP and glucolipotoxic (GLT) stress conditions (28.7 mM glucose + 0.5 mM palmitate) had reduced insulin content compared to control conditions. Co-exposure of mouse islets to DP + GLT amplified the upregulation of Slc30a8 compared to GLT alone. Our study highlights the importance and challenges of using different in vitro models for studying chemical toxicity.


Subject(s)
Hydrocarbons, Chlorinated , Insulin-Secreting Cells , Polycyclic Compounds , Animals , Insulin-Secreting Cells/drug effects , Insulin-Secreting Cells/metabolism , Humans , Mice , Male , Polycyclic Compounds/pharmacology , Hydrocarbons, Chlorinated/toxicity , Rats , Insulin/metabolism , Flame Retardants/toxicity , Insulin Secretion/drug effects , Mice, Inbred C57BL , Cells, Cultured
3.
Folia Neuropathol ; 62(1): 1-12, 2024.
Article in English | MEDLINE | ID: mdl-38741432

ABSTRACT

Polychlorinated biphenyls (PCBs) and brominated flame retardants (BFRs) are dominant environmental and food contaminants. Tetrabromobisphenol A (TBBPA) is the most widely used BFR in the world to improve the fire safety of laminates in electrical and electronic equipment. Aroclor 1254, one of the PCBs, is widely distributed in the environment due to its extensive use in industrial applications around the world. Both groups of substances are potent toxicants. There is also increasing evidence that they have neurotoxic effects. In this study we tested the pro-inflammatory effects of Aroclor 1254 and TBBPA based on markers of microglial reactivity and levels of pro-inflammatory factors in the brain of immature rats. Aroclor 1254 or TBBPA were administered to the rats by oral gavage for two weeks at a dose of 10 mg/kg b.w. Both light and electron microscopy studies revealed features indicative of microglia activation in brains of exposed rats. Morphological changes were associated with overexpression of pro-inflammatory enzymes such as inducible nitric oxide synthase (iNOS) and cyclooxygenase-2 (COX-2). Analysis of cytokine/chemokine array revealed significant secretion of inflammatory mediators following exposure to both TBBPA and Aroclor 1254, which was stronger in the cerebellum than in the forebrain of exposed immature rats. The results indicate a pro-inflammatory profile of microglia activation as one of the neurotoxic mechanisms of both examined toxicants.


Subject(s)
Microglia , Neurotoxicity Syndromes , Polybrominated Biphenyls , Animals , Microglia/drug effects , Microglia/metabolism , Microglia/pathology , Polybrominated Biphenyls/toxicity , Rats , Neurotoxicity Syndromes/pathology , Neurotoxicity Syndromes/etiology , Brain/drug effects , Brain/pathology , Brain/metabolism , Male , Flame Retardants/toxicity , Rats, Wistar
4.
Toxicol Ind Health ; 40(7): 387-397, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38729922

ABSTRACT

Tris(1,3-dichloro-2-propyl) phosphate (TDCIPP) is a widely used organophosphorus flame retardant and has been detected in various environmental matrices including indoor dust. Inhalation of indoor dust is one of the most important pathways for human exposure to TDCIPP. However, its adverse effects on human lung cells and potential impacts on respiratory toxicity are largely unknown. In the current study, human non-small cell carcinoma (A549) cells were selected as a cell model, and the effects of TDCIPP on cell viability, cell cycle, cell apoptosis, and underlying molecular mechanisms were investigated. Our data indicated a concentration-dependent decrease in the cell viability of A549 cells after exposure to TDCIPP for 48 h, with half lethal concentration (LC50) being 82.6 µM. In addition, TDCIPP caused cell cycle arrest mainly in the G0/G1 phase by down-regulating the mRNA expression of cyclin D1, CDK4, and CDK6, while up-regulating the mRNA expression of p21 and p27. In addition, cell apoptosis was induced via altering the expression levels of Bcl-2, BAX, and BAK. Our study implies that TDCIPP may pose potential health risks to the human respiratory system and its toxicity should not be neglected.


Subject(s)
Apoptosis , Cell Survival , Flame Retardants , Organophosphorus Compounds , Humans , A549 Cells , Apoptosis/drug effects , Flame Retardants/toxicity , Cell Survival/drug effects , Organophosphorus Compounds/toxicity , Cell Cycle/drug effects , Cell Cycle Checkpoints/drug effects
5.
Environ Health Perspect ; 132(5): 54002, 2024 May.
Article in English | MEDLINE | ID: mdl-38758118

ABSTRACT

Regulating chemicals by class based on chemical similarities may help reduce risk of regrettable substitutions while enhancing health protection. A new Commentary summarizes OFR toxicity and exposure research to inform this effort.


Subject(s)
Flame Retardants , Flame Retardants/toxicity , Humans , United States , United States Environmental Protection Agency , Environmental Exposure , Hydrocarbons, Halogenated/toxicity
6.
Ecotoxicol Environ Saf ; 278: 116414, 2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38714086

ABSTRACT

BACKGROUND: Organophosphate esters (OPEs) are used extensively as flame retardants and plasticizers. Laboratory studies have shown that OPEs exhibit osteotoxicity by inhibiting osteoblast differentiation; however, little is known about how OPEs exposure is associated with bone health in humans. OBJECTIVES: We conducted a cross-sectional study to investigate the association between OPEs exposure and bone mineral density (BMD) in adults in the United States using data from the 2011-2018 National Health and Nutrition Examination Survey (NHANES). METHODS: Multivariate linear regression models were used to assess the association between concentrations of individual OPE metabolites and BMDs. We also used the Bayesian kernel machine regression (BKMR) and quantile g-computation (qgcomp) models to estimate joint associations between OPE mixture exposure and BMDs. All the analyses were stratified according to gender. RESULTS: A total of 3546 participants (median age, 40 years [IQR, 30-50 years]; 50.11% male) were included in this study. Five urinary OPE metabolites with a detection rate of > 50% were analyzed. After adjusting for the potential confounders, OPE metabolite concentrations were associated with decreased total-body BMD and lumbar spine BMD in males, although some associations only reached significance for bis(1-chloro-2-propyl) phosphate (BCPP), dibutyl phosphate (DBUP), and bis(2-chloroethyl) phosphate (BCEP) (ß = -0.013, 95% CI: -0.026, -0.001 for BCPP and total-body BMD; ß = -0.022, 95% CI: -0.043, -0.0001 for DBUP and lumbar spine BMD; ß=-0.018, 95% CI: -0.034, -0.002 for BCEP and lumbar spine BMD). OPE mixture exposure was also inversely associated with BMD in males, as demonstrated in the BMKR and qgcomp models. CONCLUSIONS: This study provides preliminary evidence that urinary OPE metabolite concentrations are inversely associated with BMD. The results also suggested that males were more vulnerable than females. However, further studies are required to confirm these findings.


Subject(s)
Bone Density , Nutrition Surveys , Organophosphates , Humans , Adult , Male , Bone Density/drug effects , Female , Middle Aged , United States , Cross-Sectional Studies , Organophosphates/urine , Organophosphates/toxicity , Esters , Flame Retardants/toxicity , Environmental Exposure/statistics & numerical data , Environmental Pollutants/urine
7.
Environ Sci Technol ; 58(19): 8251-8263, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38695612

ABSTRACT

The novel brominated flame retardant, 1,2-bis(2,4,6-tribromophenoxy)ethane (BTBPE), has increasingly been detected in environmental and biota samples. However, limited information is available regarding its toxicity, especially at environmentally relevant concentrations. In the present study, adult male zebrafish were exposed to varying concentrations of BTBPE (0, 0.01, 0.1, 1, and 10 µg/L) for 28 days. The results demonstrated underperformance in mating behavior and reproductive success of male zebrafish when paired with unexposed females. Additionally, a decline in sperm quality was confirmed in BTBPE-exposed male zebrafish, characterized by decreased total motility, decreased progressive motility, and increased morphological malformations. To elucidate the underlying mechanism, an integrated proteomic and phosphoproteomic analysis was performed, revealing a predominant impact on mitochondrial functions at the protein level and a universal response across different cellular compartments at the phosphorylation level. Ultrastructural damage, increased expression of apoptosis-inducing factor, and disordered respiratory chain confirmed the involvement of mitochondrial impairment in zebrafish testes. These findings not only provide valuable insights for future evaluations of the potential risks posed by BTBPE and similar chemicals but also underscore the need for further research into the impact of mitochondrial dysfunction on reproductive health.


Subject(s)
Reproduction , Zebrafish , Animals , Male , Reproduction/drug effects , Spermatozoa/drug effects , Testis/drug effects , Testis/metabolism , Flame Retardants/toxicity , Mitochondria/drug effects , Mitochondria/metabolism , Female
8.
Sci Total Environ ; 934: 173118, 2024 Jul 15.
Article in English | MEDLINE | ID: mdl-38750757

ABSTRACT

The brominated flame retardant 2,2',4,4'-tetrabromodiphenyl ether (PBDE-47) is a ubiquitous environmental pollutant that causes neurotoxicity. However, incomplete understanding of the underlying mechanisms has hampered the development of effective intervention strategies. Oxidative stress and related cell death are the modes of action for PBDE-47 neurotoxicity, which are also the characteristics of ferroptosis. Nonetheless, the role of ferroptosis in PBDE-47-induced neurotoxicity remains unclear. In the present study, we found that PBDE-47 triggered ferroptosis in neuron-like PC12 cells, as evidenced by intracellular iron overload, lipid peroxidation, and mitochondrial damage. This was confirmed by ferroptosis inhibitors including the lipid reactive oxygen species scavenger ferrostatin-1 and iron chelator deferoxamine mesylate. Mechanistically, PBDE-47 impaired ferritinophagy by disrupting nuclear receptor coactivator 4-mediated lysosomal degradation of the iron storage protein ferritin. Moreover, PBDE-47 disturbed iron metabolism by increasing cellular iron import via upregulation of transferrin receptor 1 and decreasing cellular iron export via downregulation of ferroportin 1 (FPN1). Intriguingly, rescuing lysosomal function by overexpressing cathepsin B (CatB) mitigated PBDE-47-induced ferroptosis by partially restoring dysfunctional ferritinophagy and enhancing iron excretion via the upregulation of FPN1. However, FPN1 knockdown reversed the beneficial effects of CatB overexpression on the PBDE-47-induced iron overload. Finally, network pharmacology integrated with experimental validation revealed that Canolol, the main phenolic compound in canola oil, protected against PBDE-47-evoked iron overload, resulting in ferroptosis by restoring defective ferritinophagy and improving abnormal iron metabolism via lowering iron uptake and facilitating iron excretion. Overall, these data suggest that ferroptosis is a novel mechanism of PBDE-47-induced neuronal death and that manipulation of ferritinophagy and iron metabolism via Canolol represents a promising therapeutic strategy.


Subject(s)
Ferroptosis , Halogenated Diphenyl Ethers , Iron , Neurons , Ferroptosis/drug effects , Halogenated Diphenyl Ethers/toxicity , Iron/metabolism , Animals , PC12 Cells , Neurons/drug effects , Neurons/metabolism , Rats , Ferritins/metabolism , Flame Retardants/toxicity , Oxidative Stress/drug effects , Environmental Pollutants/toxicity
9.
Ecotoxicol Environ Saf ; 279: 116462, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38776784

ABSTRACT

Tris (2-ethylhexyl) phosphate (TEHP) is a frequently used organophosphorus flame retardant with significant ecotoxicity and widespread human exposure. Recent research indicates that TEHP has reproductive toxicity. However, the precise cell mechanism is not enough understood. Here, by using testicular mesenchymal stromal TM3 cells as a model, we reveal that TEHP induces apoptosis. Then RNA sequencing analysis, immunofluorescence, and western blotting results show that THEP inhibits autophagy flux and enhances endoplasmic reticulum (ER) stress. Moreover, the activation of the ER stress is critical for TEHP-induced cell injury. Interestingly, TEHP-induced ER stress is contributed to autophagic flux inhibition. Furthermore, pharmacological inhibition of autophagy aggravates, and activation of autophagy attenuates TEHP-induced apoptosis. In summary, these findings indicate that TEHP triggers apoptosis in mouse TM3 cells through ER stress activation and autophagy flux inhibition, offering a new perspective on the mechanisms underlying TEHP-induced interstitial cytotoxicity in the mouse testis.


Subject(s)
Apoptosis , Autophagy , Endoplasmic Reticulum Stress , Flame Retardants , Leydig Cells , Endoplasmic Reticulum Stress/drug effects , Autophagy/drug effects , Animals , Male , Leydig Cells/drug effects , Mice , Apoptosis/drug effects , Flame Retardants/toxicity , Cell Line
10.
Ecotoxicol Environ Saf ; 279: 116489, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38776781

ABSTRACT

Combined toxicity is a critical concern during the risk assessment of environmental pollutants. Due to the characteristics of strong hydrophobicity and large specific surface area, microplastics (MPs) and nanoplastics (NPs) have become potential carriers of organic pollutants that may pose a health risk to humans. The co-occurrence of organic pollutants and MPs would cause adverse effects on aquatic organism, while the information about combined toxicity induced by organophosphorus flame retardants and MPs on human cells was limited. This study aimed to reveal the toxicity effects of co-exposure to triphenyl phosphate (TPHP) and polystyrene (PS) particles with micron-size/nano-size on HepG2 cell line. The adsorption behaviors of TPHP on PS particles was observed, with the PS-NP exhibiting a higher adsorption capacity. The reactive oxygen species generation, mitochondrial membrane potential depolarization, lactate dehydrogenase release and cell apoptosis proved that PS-NPs/MPs exacerbated TPHP-induced cytotoxicity. The particle size of PS would affect the toxicity to HepG2 cells that PS-NP (0.07 µm) exhibited more pronounced combined toxicity than PS-MP (1 µm) with equivalent concentrations of TPHP. This study provides fundamental insights into the co-toxicity of TPHP and PS micro/nanoplastics in HepG2 cells, which is crucial for validating the potential risk of combined toxicity in humans.


Subject(s)
Apoptosis , Flame Retardants , Membrane Potential, Mitochondrial , Microplastics , Nanoparticles , Polystyrenes , Reactive Oxygen Species , Humans , Hep G2 Cells , Polystyrenes/toxicity , Polystyrenes/chemistry , Nanoparticles/toxicity , Nanoparticles/chemistry , Membrane Potential, Mitochondrial/drug effects , Apoptosis/drug effects , Flame Retardants/toxicity , Microplastics/toxicity , Reactive Oxygen Species/metabolism , Particle Size , Organophosphates/toxicity , Water Pollutants, Chemical/toxicity , Adsorption , Plastics/toxicity
11.
Ecotoxicol Environ Saf ; 279: 116488, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38776782

ABSTRACT

Organophosphorus flame retardants, such as triphenyl phosphate (TPhP), exist ubiquitously in various environments owing to their widespread usage. Potential toxic effects of residual flame retardants on cultured non-fish species are not concerned commonly. TPhP-induced physiological and biochemical effects in an aquatic turtle were evaluated here by systematically investigating the changes in growth and locomotor performance, hepatic antioxidant ability and metabolite, and intestinal microbiota composition of turtle hatchlings after exposure to different TPhP concentrations. Reduced locomotor ability and antioxidant activity were only observed in the highest concentration group. Several metabolic perturbations that involved in amino acid, energy and nucleotide metabolism, in exposed turtles were revealed by metabolite profiles. No significant among-group difference in intestinal bacterial diversity was observed, but the composition was changed markedly in exposed turtles. Increased relative abundances of some bacterial genera (e.g., Staphylococcus, Vogesella and Lawsonella) probably indicated adverse outcomes of TPhP exposure. Despite having only limited impacts of exposure at environmentally relevant levels, our results revealed potential ecotoxicological risks of residual TPhP for aquatic turtles considering TPhP-induced metabolic perturbations and intestinal bacterial changes.


Subject(s)
Flame Retardants , Gastrointestinal Microbiome , Liver , Organophosphates , Turtles , Water Pollutants, Chemical , Animals , Gastrointestinal Microbiome/drug effects , Liver/drug effects , Liver/metabolism , Water Pollutants, Chemical/toxicity , Flame Retardants/toxicity , Organophosphates/toxicity , Bacteria/drug effects , Intestines/drug effects , Antioxidants/metabolism
12.
Chemosphere ; 359: 142290, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38723691

ABSTRACT

Tetrabromobisphenol A (TBBPA) and its derivatives are widely used as brominated flame retardants. Because of their high production and wide environment distribution, TBBPA derivatives have increased considerable concern. Previous studies have primarily focused on TBBPA, with limited information available on its derivative. In this study, we investigated the uptake, biotransformation and physiological response of two derivatives, Tetrabromobisphenol A bis(allyl ether) (TBBPA BAE) and Tetrabromobisphenol A bis(2,3-dibromopropylether) (TBBPA BDBPE), in Helianthus annus (H. annus) through a short-term hydroponic assay. The results revealed that H. annus could absorb TBBPA BAE and TBBPA BDBPE from solution, with removal efficiencies of 98.33 ± 0.5% and 98.49 ± 1.56% after 10 days, respectively, which followed first-order kinetics. TBBPA BAE was absorbed, translocated and accumulated while TBBPA BDBPE couldn't be translocated upward due to its high hydrophobicity and low solubility. The concentrations of TBBPA derivatives in plants peaked within 72 h, and then decreased. We identified twelve metabolites resulting from ether bond breakage, debromination, and hydroxylation in H. annus. The high-level TBBPA BAE suppressed the growth and increased malondialdehyde (MDA) content of H. annus, while TBBPA BDBPE didn't pose a negative effect on H. annus. TBBPA BAE and TBBPA BDBPE increased the activity of superoxide dismutase (SOD), peroxidase (POD), and catalase (CAT), with higher levels of these enzymes activity found in high concentration treatments. Contrastingly, TBBPA BAE exhibited higher toxicity than TBBPA BDBPE, as indicated by greater antioxidant enzyme activity. The findings of this study develop better understanding of biotransformation mechanisms of TBBPA derivatives in plants, contributing to the assessment of the environmental and human health impacts of these contaminants.


Subject(s)
Biotransformation , Flame Retardants , Helianthus , Polybrominated Biphenyls , Polybrominated Biphenyls/toxicity , Polybrominated Biphenyls/metabolism , Helianthus/drug effects , Helianthus/metabolism , Flame Retardants/toxicity , Flame Retardants/metabolism , Catalase/metabolism
13.
Environ Res ; 252(Pt 4): 119119, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38734290

ABSTRACT

Hexabromocyclododecane (HBCD), as a monitored chemical of the Chemical Weapons Convention, the Stockholm Convention and the Action Plan for New Pollutants Treatment in China, raises significant concerns on its impact of human health and food security. This study investigated enantiomer-specific biomarkers of HBCD in maize (Zea mays L.). Upon exposure to HBCD enantiomers, the maize root tip cell wall exhibited thinning, uneven cell gaps, and increased deposition on the cell outer wall. Elevated malondialdehyde (MDA) indicated lipid peroxidation, with higher mitochondrial membrane potential (MMP) inhibition in (+)-enantiomer treatments (47.2%-57.9%) than (-)-enantiomers (14.4%-37.4%). The cell death rate significantly increased by 37.7%-108.8% in roots and 16.4%-62.4% in shoots, accompanied by the upregulation of superoxide dismutase isoforms genes. Molecular docking presenting interactions between HBCD and target proteins, suggested that HBCD has an affinity for antioxidant enzyme receptors with higher binding energy for (+)-enantiomers, further confirming their stronger toxic effects. All indicators revealed that oxidative damage to maize seedlings was more severe after treatment with (+)-enantiomers compared to (-)-enantiomers. This study elucidates the biomarkers of phytotoxicity evolution induced by HBCD enantiomers, providing valuable insights for the formulation of more effective policies to safeguard environmental safety and human health in the future.


Subject(s)
Biomarkers , Hydrocarbons, Brominated , Molecular Docking Simulation , Zea mays , Zea mays/drug effects , Zea mays/genetics , Hydrocarbons, Brominated/toxicity , Stereoisomerism , Flame Retardants/toxicity , Lipid Peroxidation/drug effects
14.
Int J Mol Sci ; 25(8)2024 Apr 09.
Article in English | MEDLINE | ID: mdl-38673741

ABSTRACT

A widely used organophosphate flame retardant (OPFR), triphenyl phosphate (TPP), is frequently detected in various environmental media and humans. However, there is little known on the human corneal epithelium of health risk when exposed to TPP. In this study, human normal corneal epithelial cells (HCECs) were used to investigate the cell viability, morphology, apoptosis, and mitochondrial membrane potential after they were exposed to TPP, as well as their underlying molecular mechanisms. We found that TPP decreased cell viability in a concentration-dependent manner, with a half maximal inhibitory concentration (IC50) of 220 µM. Furthermore, TPP significantly induced HCEC apoptosis, decreased mitochondrial membrane potential in a dose-dependent manner, and changed the mRNA levels of the apoptosis biomarker genes (Cyt c, Caspase-9, Caspase-3, Bcl-2, and Bax). The results showed that TPP induced cytotoxicity in HCECs, eventually leading to apoptosis and changes in mitochondrial membrane potential. In addition, the caspase-dependent mitochondrial pathways may be involved in TPP-induced HCEC apoptosis. This study provides a reference for the human corneal toxicity of TPP, indicating that the risks of OPFR to human health cannot be ignored.


Subject(s)
Apoptosis , Cell Survival , Epithelium, Corneal , Flame Retardants , Membrane Potential, Mitochondrial , Mitochondria , Humans , Apoptosis/drug effects , Flame Retardants/toxicity , Flame Retardants/pharmacology , Mitochondria/drug effects , Mitochondria/metabolism , Epithelium, Corneal/drug effects , Epithelium, Corneal/metabolism , Epithelium, Corneal/cytology , Membrane Potential, Mitochondrial/drug effects , Cell Survival/drug effects , Caspases/metabolism , Epithelial Cells/drug effects , Epithelial Cells/metabolism , Organophosphates/pharmacology , Organophosphates/toxicity , Cells, Cultured
15.
Chemosphere ; 357: 142048, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38641295

ABSTRACT

The wide application of flexible polyurethane foam (FPUF) poses a giant challenge to human society in terms of fire prevention and environmental pollution. To solve this problem, the lignocellulose-based P-N flame retardant (LFPN) has been developed using mechanochemical methods. It was found that FPUF treated using LFPN exhibited good flame retardancy, but suffered from high smoke generation and toxicity. The hollow dodecahedral ZIF-67 has been used for smoke suppression catalysis, but the agglomeration phenomenon makes it inefficient. Hence, in this study, the adhesive properties of polydopamine (PDA) were utilized to assist the in-situ growth of ZIF-67. The results showed that the total smoke release rate of the treated FPUF was reduced by 40.5%. The toxic gases, such as carbon monoxide (CO), hydrogen cyanide, etc., also showed the same decreasing trend. What's more, the catalytic effect of ZIF-67 itself and the synergistic effect with LFPN gave FPUF great flame retardant and smoke inhibition properties. This novel FPUF provides a new reference for achieving smoke suppression and toxicity reduction.


Subject(s)
Flame Retardants , Polyurethanes , Smoke , Flame Retardants/toxicity , Polyurethanes/chemistry , Indoles/chemistry , Fires/prevention & control , Polymers/chemistry , Air Pollutants/toxicity , Air Pollutants/chemistry , Carbon Monoxide/chemistry , Catalysis , Imidazoles , Zeolites
16.
Chemosphere ; 356: 141901, 2024 May.
Article in English | MEDLINE | ID: mdl-38583538

ABSTRACT

Following restrictions on polybrominated flame retardants, trimethyl phosphate (TMP), triethyl phosphate (TEP), and tris(2-butoxyethyl) phosphate (TBEP) have been frequently used as plasticizers for fire-resistant plastics. This study investigated the neurodevelopmental effects, inflammatory response, and oxidative stress induction of three alkyl organophosphate flame retardants using a zebrafish embryo/larvae model. After exposure of zebrafish embryos to TMP, TEP, and TBEP (0, 0.02, 0.2, 2, 20, and 200 µg L-1) for 96 h, survival, development, swimming behavior, changes in acetylcholinesterase (AChE) activity, dopamine, tumor necrosis factor-alpha (TNF-α), interleukin (IL), reactive oxygen species (ROS), and antioxidant enzyme activities were observed. Concentrations of TMP, TEP, and TBEP were also measured in the whole body of exposed larvae. Our results showed that exposure to 200 µg L-1 TEP and ≥20 µg L-1 TBEP significantly reduced larval body length; however, TMP had no significant effects on developmental parameters up to 200 µg L-1. After 96 h of exposure to TBEP, total distance moved, mean velocity, AChE, and dopamine concentrations were significantly decreased. Exposure to TEP and TBEP decreased the expression of genes that regulate central nervous system development (e.g. gap43 and mbpa), whereas ROS, antioxidant enzymes, TNF-α, and IL-1ß concentrations were significantly increased. Notably, pretreatment with an antioxidant N-acetylcysteine reduced neurotoxicity and oxidative stress caused by TEP and TBEP. The results of this study demonstrated that exposure to TEP and TBEP causes oxidative stress and has adverse effects on the neurobehavioral and immune system of zebrafish, leading to hypoactivity and ultimately impairing development.


Subject(s)
Flame Retardants , Larva , Organophosphates , Oxidative Stress , Reactive Oxygen Species , Zebrafish , Animals , Flame Retardants/toxicity , Oxidative Stress/drug effects , Organophosphates/toxicity , Larva/drug effects , Reactive Oxygen Species/metabolism , Inflammation/chemically induced , Acetylcholinesterase/metabolism , Organophosphorus Compounds/toxicity , Tumor Necrosis Factor-alpha/metabolism , Tumor Necrosis Factor-alpha/genetics , Embryo, Nonmammalian/drug effects , Water Pollutants, Chemical/toxicity
17.
Environ Res ; 252(Pt 2): 118955, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38640988

ABSTRACT

Organophosphate esters (OPEs) are a class of chemicals now widely used as flame retardants and plasticizers after the phase-out of polybrominated diphenyl ethers (PBDEs). However, OPEs carry their own risk of developmental toxicity, which poses concern for recent birth cohorts as they have become ubiquitous in the environment. In this review, we summarize the literature evaluating the association between OPE exposure and maternal, perinatal, and child health outcomes. We included original articles investigating associations of OPE exposure with any health outcome on pregnant women, newborns, children, and adolescents. We found 48 articles on this topic. Of these, five addressed maternal health and pregnancy outcomes, 24 evaluated prenatal OPE exposure and child health, 18 evaluated childhood OPE exposure and child/adolescent health, and one article evaluated both prenatal and childhood OPE exposure. These studies suggest that OPE exposure is possibly associated with a wide range of adverse health outcomes, including pregnancy loss, altered gestational duration and smaller birthweight, maternal and neonatal thyroid dysfunction, child metabolic dysregulation and abnormal growth, impaired neurodevelopment, and changes in immune response. Many of the reported outcomes associated with OPE exposure varied by child sex. Findings also varied substantially by OPE metabolite and exposure time. The OPEs most frequently measured, detected, and found to be associated with health outcomes were triphenyl phosphate (TPHP, metabolized to DPHP) and tris(1,3-dichloro-2-propyl) phosphate (TDCIPP, metabolized to BDCIPP). The extensive range of health outcomes associated with OPEs raises concern about their growing use in consumer products; however, these findings should be interpreted considering the limitations of these epidemiological studies, such as possible exposure misclassification, lack of generalizability, insufficient adjustment for covariates, and failure to consider chemical exposures as a mixture.


Subject(s)
Esters , Organophosphates , Humans , Female , Pregnancy , Organophosphates/toxicity , Child , Child Health , Flame Retardants/toxicity , Maternal Exposure/adverse effects , Adolescent , Infant, Newborn , Environmental Pollutants/toxicity , Prenatal Exposure Delayed Effects/chemically induced , Maternal Health , Environmental Exposure/adverse effects , Child, Preschool
18.
Article in Chinese | MEDLINE | ID: mdl-38538247

ABSTRACT

The environmental pollution and health hazards caused by the extensive use of organophosphorus flame retardants (OPFRs) have become a problem of wide concern around the world. As a typical OPFR, 2-ethylhexyl diphenyl phosphate (EHDPP) can be detected in water, atmosphere, soil and other environmental media. It widely exists in production and life and can accumulate in organisms, causing great risks the ecosystem and human health. This paper reviews the research of EHDPP domestically and abroad, and summarizes the physicochemical properties of EHDPP and the population situation of occupational exposure, environmental exposure, and population exposure in recent years. Besides, it summarizes the toxic effects and mechanisms of EHDPP, including acute toxicity, hepatotoxicity, neurotoxicity, reproductive and developmental toxicity, and carcinogenesis effects. This paper also proposes the future direction of toxicity and health risks of EHDPP, which provides a theoretical basis for further research on environmental hazards and safety evaluation of EHDPP.


Subject(s)
Biphenyl Compounds , Flame Retardants , Occupational Exposure , Humans , Phosphates , Organophosphates/toxicity , Organophosphorus Compounds/toxicity , Flame Retardants/toxicity , Flame Retardants/analysis , Ecosystem , Occupational Exposure/adverse effects
19.
J Environ Sci (China) ; 142: 1-10, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38527875

ABSTRACT

Tetrabromobisphenol A (TBBPA) is a widely used brominated flame retardant. There is evidence showing that TBBPA can exert thyroid disrupting effects in mammals, but different results were also reported, along with inconsistent reports regarding its neurotoxicity. Here, we investigated thyroid disrupting effects and neurotoxicity of TBBPA (5, 50, 500 µg/(kg·day)) to male mice following maternal and direct exposure through drinking water, with the anti-thyroid drug propylthiouracil (PTU) as the positive control. On postnatal day (PND) 15, we expectedly observed severe thyroid compensatory hyperplasia and cerebellar developmental retardation in PTU-treated pups. The highest dose of TBBPA also caused thyroid histological alteration but had no effects on cerebellar development in terms of Purkinje cell morphology and the thickness of the internal granular layer and the molecular layer of the cerebellum. During puberty and adulthood, the thyroid morphological alterations became more pronounced in the TBBPA-treated animals, accompanied by decreased serum thyroid hormone levels. Furthermore, the 50 and 500 µg/(kg·day) TBBPA groups showed a significant decrease in the serum level of serotonin, a neurotransmitter associated with anxiety behaviors. Correspondingly, the highest dose group displayed anxiety-like behaviors in the elevated plus-maze test on PND 35, but this neurobehavioral alteration disappeared on PND 56. Moreover, no changes in neurobehavioral parameters tested were found in TBBPA-treated animals at puberty and adulthood. Altogether, all observations show that TBBPA can exert thyroid disrupting effects but has little overt impact on brain development and neurobehaviors in mice, suggesting that thyroid disruption does not necessarily cause overtly adverse neurodevelopmental outcomes.


Subject(s)
Flame Retardants , Polybrominated Biphenyls , Mice , Animals , Male , Thyroid Gland/pathology , Polybrominated Biphenyls/toxicity , Brain , Flame Retardants/toxicity , Mammals
20.
Environ Int ; 186: 108596, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38522228

ABSTRACT

Organophosphate flame retardants (OPFRs) have been widely detected in multiple environment media and have many adverse effects with complex toxicity mechanisms. However, the early molecular responses to OPFRs have not been fully elucidated, thereby making it difficult to assess their risks accurately. In this work, we systematically explored the point of departure (POD) of biological pathways at genome-wide level perturbed by 14 OPFRs with three substituents (alkyl, halogen, and aryl) using a dose-dependent functional genomics approach in Saccharomyces cerevisiae at 24 h exposure. Firstly, our results demonstrated that the overall biological potency at gene level (PODDRG20) ranged from 0.013 to 35.079 µM for 14 OPFRs, especially the tributyl phosphate (TnBP) exhibited the strongest biological potency with the least PODDRG20. Secondly, we found that structural characteristics of carbon number and logKow were significantly negatively correlated with POD, and carbon number and logKow also significantly affected lipid metabolism associated processes. Thirdly, these early biological pathways of OPFRs toxification were found to be involved in lipid metabolism, oxidative stress, DNA damage, MAPK signaling pathway, and amino acid and carbohydrate metabolism, among which the lipid metabolism was the most sensitive molecular response perturbed by most OPFRs. More importantly, we identified one resistant mutant strain with knockout of ERG2 (YMR202W) gene participated in steroid biosynthesis pathway, which can serve as a key yeast strain of OPFRs toxification. Overall, our study demonstrated an effective platform for accurately assessing OPFRs risks and provided a basis for further green OPFRs development.


Subject(s)
Flame Retardants , Genomics , Organophosphates , Saccharomyces cerevisiae , Flame Retardants/toxicity , Saccharomyces cerevisiae/drug effects , Saccharomyces cerevisiae/genetics , Organophosphates/toxicity , Dose-Response Relationship, Drug
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