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1.
EXCLI J ; 23: 509-522, 2024.
Article in English | MEDLINE | ID: mdl-38741723

ABSTRACT

Phycotoxins are responsible for foodborne intoxications. Symptoms depend on the ingested toxins but mostly imply gastro-intestinal and neurological disorders. Importantly, humans are exposed to combinations of several phycotoxins, resulting in possible mixture effects. Most previous studies, however, have been focused on single toxin effects. Thus, the aim of this study was to examine the effects of binary mixtures of three main phycotoxins, okadaic acid (OA), azaspiracid-1 (AZA1) and yessotoxin (YTX), on human intestinal Caco-2 cells. The focus was placed on cell viability studies and inflammation responses using a multi-parametric approach to assess cell population (nuclei staining), cell metabolism/viability (reductase activity and lysosomal integrity), and release of inflammation markers (e.g., interleukins). Mixture effects were evaluated using the concentration addition (CA) and independent action (IA) models. Our assays show that none of the toxins had an impact on the cell population in the tested concentration range. Only OA modulated reductase activity, while all three toxins had strong effects on lysosomal integrity. Furthermore, all toxins triggered the release of interleukin 8 (IL-8), with OA being most potent. Mixture effect analysis showed additivity in most cases. However, supra-additivity was observed in regards to IL-6 and IL-8 release for combinations implying high concentrations of OA. This study extends the knowledge on mixture effects of phycotoxins in human cells.

2.
Arch Toxicol ; 98(5): 1311-1322, 2024 May.
Article in English | MEDLINE | ID: mdl-38416141

ABSTRACT

Marine biotoxins are a heterogenous group of natural toxins, which are able to trigger different types of toxicological responses in animals and humans. Health effects arising from exposure to marine biotoxins are ranging, for example, from gastrointestinal symptoms to neurological effects, depending on the individual toxin(s) ingested. Recent research has shown that the marine biotoxin okadaic acid (OA) can strongly diminish the expression of drug-metabolizing cytochrome P450 (CYP) enzymes in human liver cells by a mechanism involving proinflammatory signaling. By doing so, OA may interfere with the metabolic barrier function of liver and intestine, and thus alter the toxico- or pharmacokinetic properties of other compounds. Such effects of marine biotoxins on drug and xenobiotic metabolism have, however, not been much in the focus of research yet. In this review, we present the current knowledge on the effects of marine biotoxins on CYP enzymes in mammalian cells. In addition, the role of CYP-regulating nuclear receptors as well as inflammatory signaling in the regulation of CYPs by marine biotoxins is discussed. Strong evidence is available for effects of OA on CYP enzymes, along with information about possible molecular mechanisms. For other marine biotoxins, knowledge on effects on drug metabolism, however, is scarce.


Subject(s)
Cytochrome P-450 Enzyme System , Marine Toxins , Animals , Humans , Marine Toxins/toxicity , Cytochrome P-450 Enzyme System/metabolism , Okadaic Acid , Liver , Receptors, Cytoplasmic and Nuclear , Mammals/metabolism
3.
Arch Toxicol ; 98(2): 507-524, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38117326

ABSTRACT

Per- and polyfluoroalkyl substances (PFAS) are environmental contaminants with various adverse health effects in humans including disruption of lipid metabolism. Aim of the present study was to elucidate the molecular mechanisms of PFAS-mediated effects on lipid metabolism in human cells. Here, we examined the impact of a number of PFAS (PFOS, PFOA, PFNA, PFDA, PFHxA, PFBA, PFHxS, PFBS, HFPO-DA, and PMPP) and of some exposure-relevant PFAS mixtures being composed of PFOS, PFOA, PFNA and PFHxS on lipid metabolism in human HepaRG cells, an in vitro model for human hepatocytes. At near cytotoxic concentrations, the selected PFAS and PFAS mixtures induced triglyceride accumulation in HepaRG cells and consistently affected the expression of marker genes for steatosis, as well as PPARα target genes and genes related to lipid and cholesterol metabolism, pointing to common molecular mechanisms of PFAS in disrupting cellular lipid and cholesterol homeostasis. PPARα activation was examined by a transactivation assay in HEK293T cells, and synergistic effects were observed for the selected PFAS mixtures at sum concentrations higher than 25 µM, whereas additivity was observed at sum concentrations lower than 25 µM. Of note, any effect observed in the in vitro assays occurred at PFAS concentrations that were at least four to five magnitudes above real-life internal exposure levels of the general population.


Subject(s)
Alkanesulfonic Acids , Environmental Pollutants , Fluorocarbons , Humans , Lipid Metabolism , PPAR alpha/genetics , HEK293 Cells , Hepatocytes , Lipids , Fluorocarbons/toxicity , Cholesterol , Alkanesulfonic Acids/toxicity , Environmental Pollutants/toxicity
4.
Chem Res Toxicol ; 37(1): 81-97, 2024 01 15.
Article in English | MEDLINE | ID: mdl-38118149

ABSTRACT

Toxicological assessments of newly developed agrochemical agents consider chemical modifications and their metabolic and biotransformation products. To carry out an in silico hazard assessment, understanding the type of chemical modification and its location on the original compound can greatly enhance the reliability of the evaluation. Here, we present and apply a method based on liquid chromatography-mass spectrometry (LC-MS) enhanced with infrared ion spectroscopy (IRIS) to better delineate the molecular structures of transformation products before in silico toxicology evaluation. IRIS facilitates the recording of IR spectra directly in the mass spectrometer for features selected by retention time and mass-to-charge ratio. By utilizing quantum-chemically predicted IR spectra for candidate molecular structures, one can either derive the actual structure or significantly reduce the number of (isomeric) candidate structures. This approach can assist in making informed decisions. We apply this method to a plant growth stimulant, digeraniol sinapoyl malate (DGSM), that is currently under development. Incubation of the compound in Caco-2 and HepaRG cell lines in multiwell plates and analysis by LC-MS reveals oxidation, glucuronidation, and sulfonation metabolic products, whose structures were elucidated by IRIS and used as input for an in silico toxicology assessment. The toxicity of isomeric metabolites predicted by in silico tools was also assessed, which revealed that assigning the right metabolite structure is an important step in the overall toxicity assessment of the agrochemical. We believe this identification approach can be advantageous when specific isomers are significantly more hazardous than others and can help better understand metabolic pathways.


Subject(s)
Agrochemicals , Humans , Reproducibility of Results , Caco-2 Cells , Mass Spectrometry/methods , Spectrum Analysis
5.
Chem Sci ; 14(47): 13962-13978, 2023 Dec 06.
Article in English | MEDLINE | ID: mdl-38075651

ABSTRACT

Sinapoyl malate, naturally present in plants, has proved to be an exceptional UV filter and molecular heater for plants. Although there are nowadays industrially relevant sustainable synthetic routes to sinapoyl malate, its incorporation into certain cosmetic formulations, as well as its adsorption on plant leaves, is limited by its hydrophilicity. To overcome these obstacles, it is important to find a way to effectively control the hydrophilic-lipophilic balance of sinapoyl malate to make it readily compatible with the cosmetic formulations and stick on the waxy cuticle of leaves. To this end, herein, we describe a highly regioselective chemo-enzymatic synthesis of sinapoyl malate analogues possessing fatty aliphatic chains of variable length, enabling the lipophilicity of the compounds to be modulated. The potential toxicity (i.e., mutagenicity, carcinogenicity, endocrine disruption, acute and repeated-dose toxicity), bioaccumulation, persistence and biodegradability potential of these new analogues were evaluated in silico, along with the study of their transient absorption spectroscopy, their photostability as well as their photodegradation products.

6.
STAR Protoc ; 4(3): 102500, 2023 Sep 15.
Article in English | MEDLINE | ID: mdl-37616165

ABSTRACT

Here, we present an in vitro test battery to analyze chemicals for their potential to induce liver triglyceride accumulation, a hallmark of liver steatosis. We describe steps for using HepG2 and HepaRG human hepatoma cells in conjunction with a combination of several in vitro assays covering the different molecular initiating events and key events of the respective adverse outcome pathway. This protocol is suitable for assessing single substance effects as well as mixtures allowing their classification as steatotic or non-steatotic. For complete details on the use and execution of this protocol, please refer to Luckert et al. (2018),1 Lichtenstein et al. (2020),2 and Knebel et al. (2019).3.


Subject(s)
Adverse Outcome Pathways , Carcinoma, Hepatocellular , Fatty Liver , Humans , Fatty Liver/metabolism , Cell Line
7.
Cells ; 12(5)2023 02 28.
Article in English | MEDLINE | ID: mdl-36899906

ABSTRACT

Okadaic acid (OA) is a marine biotoxin that is produced by algae and accumulates in filter-feeding shellfish, through which it enters the human food chain, leading to diarrheic shellfish poisoning (DSP) after ingestion. Furthermore, additional effects of OA have been observed, such as cytotoxicity. Additionally, a strong downregulation of the expression of xenobiotic-metabolizing enzymes in the liver can be observed. The underlying mechanisms of this, however, remain to be examined. In this study, we investigated a possible underlying mechanism of the downregulation of cytochrome P450 (CYP) enzymes and the nuclear receptors pregnane X receptor (PXR) and retinoid-X-receptor alpha (RXRα) by OA through NF-κB and subsequent JAK/STAT activation in human HepaRG hepatocarcinoma cells. Our data suggest an activation of NF-κB signaling and subsequent expression and release of interleukins, which then activate JAK-dependent signaling and thus STAT3. Moreover, using the NF-κB inhibitors JSH-23 and Methysticin and the JAK inhibitors Decernotinib and Tofacitinib, we were also able to demonstrate a connection between OA-induced NF-κB and JAK signaling and the downregulation of CYP enzymes. Overall, we provide clear evidence that the effect of OA on the expression of CYP enzymes in HepaRG cells is regulated through NF-κB and subsequent JAK signaling.


Subject(s)
Liver Neoplasms , NF-kappa B , Humans , Cytochrome P-450 Enzyme System/metabolism , NF-kappa B/metabolism , Okadaic Acid , Signal Transduction , Xenobiotics , Janus Kinases/drug effects , STAT Transcription Factors/drug effects
8.
Food Chem Toxicol ; 166: 113212, 2022 Aug.
Article in English | MEDLINE | ID: mdl-35690182

ABSTRACT

Toxicological risk assessment is essential in the evaluation and authorization of different classes of chemical substances. Genotoxicity and mutagenicity testing are of highest priority and rely on established in vitro systems with bacterial and mammalian cells, sometimes followed by in vivo testing using rodent animal models. Transcriptomic approaches have recently also shown their value to determine transcript signatures specific for genotoxicity. Here, we studied how transcriptomic data, in combination with in vitro tests with human cells, can be used for the identification of genotoxic properties of test compounds. To this end, we used liver samples from a 28-day oral toxicity study in rats with the pesticidal active substances imazalil, thiacloprid, and clothianidin, a neonicotinoid-type insecticide with, amongst others, known hepatotoxic properties. Transcriptomic results were bioinformatically evaluated and pointed towards a genotoxic potential of clothianidin. In vitro Comet and γH2AX assays in human HepaRG hepatoma cells, complemented by in silico analyses of mutagenicity, were conducted as follow-up experiments to check if the genotoxicity alert from the transcriptomic study is in line with results from a battery of guideline genotoxicity studies. Our results illustrate the combined use of toxicogenomics, classic toxicological data and new approach methods in risk assessment. By means of a weight-of-evidence decision, we conclude that clothianidin does most likely not pose genotoxic risks to humans.


Subject(s)
Mutagens , Transcriptome , Animals , DNA Damage , Guanidines , Humans , Mammals , Mutagenicity Tests/methods , Mutagens/toxicity , Neonicotinoids/toxicity , Rats , Risk Assessment , Thiazoles
9.
Arch Toxicol ; 96(1): 211-229, 2022 01.
Article in English | MEDLINE | ID: mdl-34778935

ABSTRACT

Within the EuroMix project, we have previously developed an adverse outcome pathway (AOP)-based in vitro assay toolbox to investigate the combined effects of liver steatosis-inducing compounds in human HepaRG hepatocarcinoma cells. In this study, we applied the toolbox to further investigate mixture effects of combinations, featuring either similarly acting or dissimilarly acting substances. The valproic acid structural analogs 2-propylheptanoic acid (PHP) and 2-propylhexanoic acid (PHX) were chosen for establishing mixtures of similarly acting substances, while a combination with the pesticidal active substance clothianidin (CTD) was chosen for establishing mixtures of dissimilarly acting compounds. We first determined relative potency factors (RPFs) for each compound based on triglyceride accumulation results. Thereafter, equipotent mixtures were tested for nuclear receptor activation in transfected HepG2 cells, while gene expression and triglyceride accumulation were investigated in HepaRG cells, following the proposed AOP for liver steatosis. Dose addition was observed for all combinations and endpoints tested, indicating the validity of the additivity assumption also in the case of the tested mixtures of dissimilarly acting substances. Gene expression results indicate that the existing steatosis AOP can still be refined with respect to the early key event (KE) of gene expression, in order to reflect the diversity of molecular mechanisms underlying the adverse outcome.


Subject(s)
Adverse Outcome Pathways , Carcinoma, Hepatocellular , Fatty Liver , Liver Neoplasms , Fatty Liver/chemically induced , Fatty Liver/metabolism , Hep G2 Cells , Humans
10.
Toxicology ; 459: 152857, 2021 07.
Article in English | MEDLINE | ID: mdl-34273450

ABSTRACT

In real life, organisms are exposed to complex mixtures of chemicals at low concentration levels, whereas research on toxicological effects is mostly focused on single compounds at comparably high doses. Mixture effects deviating from the assumption of additivity, especially synergistic effects, are of concern. In an adverse outcome pathway (AOP)-guided manner, we analyzed the accumulation of triglycerides in human HepaRG liver cells by a mixture of eight steatotic chemicals (amiodarone, benzoic acid, cyproconazole, flusilazole, imazalil, prochloraz, propiconazole and tebuconazole), each present below its individual effect concentration at 1-3 µM. Pronounced and significantly enhanced triglyceride accumulation was observed with the mixture, and similar effects were seen at the level of pregnane-X-receptor activation, a molecular initiating event leading to hepatic steatosis. Transcript pattern analysis indicated subtle pro-steatotic changes at low compound concentrations, which did not exert measurable effects on cellular triglycerides. Mathematical modeling of mixture effects indicated potentially more than additive behavior using a model for compounds with similar modes of action. The present data underline the usefulness of AOP-guided in vitro testing for the identification of mixture effects and highlight the need for further research on chemical mixtures and harmonization of data interpretation of mixture effects.


Subject(s)
Complex Mixtures/toxicity , Liver/drug effects , Liver/metabolism , Triglycerides/metabolism , Algorithms , Cell Line, Tumor , Cell Survival/drug effects , Fatty Liver/chemically induced , Fatty Liver/metabolism , Genetic Markers , Humans , Models, Theoretical , Pregnane X Receptor/metabolism , Transcription, Genetic
11.
Arch Toxicol ; 95(3): 1039-1053, 2021 03.
Article in English | MEDLINE | ID: mdl-33426623

ABSTRACT

Co-occurrence of pesticide residues in food commodities raises a potential safety issue as their mixture effects on human health are largely unknown. In a previous study, we reported the toxicological effects (pathology and histopathology) of imazalil (IMZ), thiacloprid (THI), and clothianidin (CTD) alone and in binary mixtures in a 28-day oral gavage study in female Wistar rats. Five dose levels (up to 350 mg/kg body weight/day) ranging from a typical toxicological reference value to a clear effect dose were applied. In the present study, we undertook a transcriptomics analysis of rat livers by means of total RNA sequencing (RNA-Seq). Bioinformatic data analysis involving Ingenuity Pathway Analysis (IPA) was used to gain mechanistic information on hepatotoxicity-related pathways affected after treatment with the pesticides, alone and in mixtures. Our data show that 2986 genes were differentially regulated by CTD while IMZ and THI had effects on 194 and 225 genes, respectively. All three individual compounds shared a common subset of genes whose network is associated with xenobiotic metabolism and nuclear receptor activation. Similar networks were retrieved for the mixtures. Alterations in the expression of individual genes were in line with the assumption of dose addition. Our results bring new insight into the hepatotoxicity mechanisms of IMZ, THI, and CTD and their mixtures.


Subject(s)
Chemical and Drug Induced Liver Injury/etiology , Guanidines/toxicity , Imidazoles/toxicity , Neonicotinoids/toxicity , Thiazines/toxicity , Thiazoles/toxicity , Animals , Chemical and Drug Induced Liver Injury/genetics , Dose-Response Relationship, Drug , Female , Gene Expression Profiling , Guanidines/administration & dosage , Imidazoles/administration & dosage , Neonicotinoids/administration & dosage , Pesticides/toxicity , Rats , Rats, Wistar , Sequence Analysis, RNA , Thiazines/administration & dosage , Thiazoles/administration & dosage
12.
Chem Sci ; 12(46): 15239-15252, 2021 Dec 01.
Article in English | MEDLINE | ID: mdl-34976344

ABSTRACT

Light-to-heat conversion materials generate great interest due to their widespread applications, notable exemplars being solar energy harvesting and photoprotection. Another more recently identified potential application for such materials is in molecular heaters for agriculture, whose function is to protect crops from extreme cold weather and extend both the growing season and the geographic areas capable of supporting growth, all of which could help reduce food security challenges. To address this demand, a new series of phenolic-based barbituric absorbers of ultraviolet (UV) radiation has been designed and synthesised in a sustainable manner. The photophysics of these molecules has been studied in solution using femtosecond transient electronic and vibrational absorption spectroscopies, allied with computational simulations and their potential toxicity assessed by in silico studies. Following photoexcitation to the lowest singlet excited state, these barbituric absorbers repopulate the electronic ground state with high fidelity on an ultrafast time scale (within a few picoseconds). The energy relaxation pathway includes a twisted intramolecular charge-transfer state as the system evolves out of the Franck-Condon region, internal conversion to the ground electronic state, and subsequent vibrational cooling. These barbituric absorbers display promising light-to-heat conversion capabilities, are predicted to be non-toxic, and demand further study within neighbouring application-based fields.

13.
Food Chem Toxicol ; 140: 111306, 2020 Jun.
Article in English | MEDLINE | ID: mdl-32229153

ABSTRACT

Humans are exposed to pesticide residues through various food products. As these residues can occur in mixtures, there is a need to investigate possible mixture effects on human health. Recent exposure studies revealed the preponderance of imazalil, thiacloprid, and clothianidin in food diets. In this study, we assessed their toxicity alone and in binary mixtures in a 28-day gavage study in female Wistar rats. Five dose levels (up to 350 mg/kg bw/day) ranging from a typical toxicological reference value to a clear effect dose were applied. Data show that the liver was a target organ of all pesticides and their mixtures. Increases in liver weight were observed and histopathological examination revealed centrilobular hepatocellular hypertrophy and cytoplasm degeneration for all treatment conditions. No accumulation of hepatic triglycerides was reported. Tissue residue analysis showed altered pesticide residues in the liver and the kidney when being in mixture as compared to the levels of pesticide residues for the single compound treatment, indicating possible toxicokinetic interactions. Overall, all mixtures appeared to follow the additivity concept, even though quantitative analysis was limited for some endpoints due to the semi-quantitative nature of the data, raising no specific concern for the risk assessment of the examined pesticides.


Subject(s)
Guanidines/toxicity , Imidazoles/toxicity , Liver/drug effects , Neonicotinoids/toxicity , Pesticides/toxicity , Thiazines/toxicity , Thiazoles/toxicity , Animals , Body Weight/drug effects , Chemical and Drug Induced Liver Injury/pathology , Female , Kidney/drug effects , Liver/pathology , No-Observed-Adverse-Effect Level , Organ Size/drug effects , Rats , Rats, Wistar , Risk Assessment
14.
Food Chem Toxicol ; 139: 111283, 2020 May.
Article in English | MEDLINE | ID: mdl-32201337

ABSTRACT

Exposure to complex chemical mixtures requires a tiered strategy for efficient mixture risk assessment. As a part of the EuroMix project we developed an adverse outcome pathway (AOP)-based assay toolbox to investigate the combined effects of the liver steatosis-inducing compounds imazalil, thiacloprid, and clothianidin in human HepaRG hepatocarcinoma cells. Compound-specific relative potency factors were determined using a benchmark dose approach. Equipotent mixtures were tested for nuclear receptor activation, gene and protein expression, and triglyceride accumulation, according to the molecular initiating events and key events proposed in the steatosis AOP. All three compounds affected the activity of nuclear receptors, but not key genes/proteins as proposed. Triglyceride accumulation was observed with three different methods. Mixture effects were in agreement with the assumption of dose additivity for all the combinations and endpoints tested. Compound-specific RPFs remained similar over the different endpoints studied downstream the AOP. Therefore, it might be possible to reduce testing to a smaller battery of key tests. The results demonstrate the suitability of our in vitro assay toolbox, integrated within an AOP framework and combined with the RPF approach, for the analysis of steatotic effects of chemical mixtures. However, mRNA results suggest that the steatosis AOP still needs improvement.


Subject(s)
Adverse Outcome Pathways , Drug-Related Side Effects and Adverse Reactions , Fatty Liver/chemically induced , Pesticides/toxicity , Animals , Cell Line, Tumor , Cell Survival/drug effects , Gene Expression , Hep G2 Cells , Humans , Imidazoles/toxicity , Liver/metabolism , Liver Neoplasms/chemically induced , Receptors, Cytoplasmic and Nuclear , Risk Assessment , Triglycerides/metabolism
15.
Arch Toxicol ; 94(4): 1303-1320, 2020 04.
Article in English | MEDLINE | ID: mdl-32123961

ABSTRACT

Activation of nuclear receptors (NR), for example the retinoid-X-receptors (RXR) or the liver-X-receptors (LXR), plays a crucial role as the molecular initiating event in the adverse outcome pathway for liver steatosis. The downstream biological consequences of NR interactions are still not fully understood, especially with multi-receptor-activating compounds and their mixtures. While the default assumption for mixture risk assessment is dose addition, the potential of combinations of synthetic RXR agonists to exert synergistic effects has been shown in the context of NR activation studies. The fact that RXR and LXR are heterodimerization partners raises the question whether combinations of LXR and RXR agonists may cause synergistic effects. Compounds with defined properties were chosen to examine their interactions regarding the activation of RXR and LXR, as well as the steatosis-related key events target gene activation and triglyceride accumulation, using the human HepaRG liver cell model. Synergistic effects were determined for cellular triglyceride accumulation, especially at high compound concentrations, as evaluated using five different mathematical models. Altered LXRα activation in the presence of RXR agonists was observed, and synergistic effects on LXR target genes were identified as a presumably underlying mechanism of the observed synergistic effect. These findings challenge the general validity of dose addition as the default assumption for mixture effects, and point toward the need for a mode of action-based risk assessment for chemical mixtures.


Subject(s)
Liver X Receptors/agonists , Retinoid X Receptors/agonists , Triglycerides/metabolism , Hepatocytes , Humans
16.
Environ Pollut ; 260: 113953, 2020 May.
Article in English | MEDLINE | ID: mdl-31962267

ABSTRACT

Many different approaches have been proposed to evaluate and predict mixture effects. From a regulatory perspective, several guidance documents have been recently published and provide a strategy for mixture risk assessment based on valuable frameworks to investigate potential synergistic effects. However, some methodological aspects, e.g. for considering mathematical models, are not sufficiently defined. Therefore, the aim of this study was to examine the usefulness of five main mathematical models for mixture effect interpretation: theoretical additivity (TA), concentration addition (CA), independent action (IA), Chou-Talalay (CT), and a benchmark dose approach (BMD) were tested using a fictional data set depicting scenarios of additivity, synergism and antagonism. The synergism and antagonism scenarios were split in x-axis and y-axis synergism/antagonism, meaning a shift of the curve on x-axis or y-axis. The BMD approach was the only model which showed a perfect correspondence for dose addition. Regarding synergism and antagonism, all approaches correspond well for the x-axis synergism and antagonism with only few exceptions. In contrast, some limitations were observed in the particular scenarios of y-axis synergism and antagonism. Therefore our results show that each model has advantages and disadvantages, and that therefore no single model appears the best one for all kinds of application. We would recommend instead the parallel use of different models to increase confidence in the result of mixture effect evaluation.


Subject(s)
Models, Theoretical , Dose-Response Relationship, Drug , Drug Interactions , Drug Synergism , Risk Assessment
17.
Chemosphere ; 228: 139-148, 2019 Aug.
Article in English | MEDLINE | ID: mdl-31029959

ABSTRACT

Lipophilic phycotoxins are secondary metabolites produced by phytoplanktonic species. They accumulate in filtering shellfish and can cause human intoxications. Humans can be exposed to combinations of several phycotoxins. The toxicological effects of phycotoxin mixtures on human health are largely unknown. Published data on phycotoxin co-exposure show that okadaic acid (OA) is simultaneously found with pectenetoxin-2 (PTX-2), 13-desmethylspirolide C (also known as SPX-1), or yessotoxin (YTX). Therefore, the aim of this study was to examine the effects of three binary mixtures, OA/PTX-2, OA/SPX-1 and OA/YTX on human intestinal Caco-2 cells. A multi-parametric approach for cytotoxicity determination was applied using a high-content analysis platform, including markers for cell viability, oxidative stress, inflammation, and DNA damage. Mixtures effects were analyzed using two additivity mathematical models. Our assays revealed that OA induced cytotoxicity, DNA strand breaks and interleukin 8 release. PTX-2 slightly induced DNA strand breaks, whereas SPX-1 and YTX did not affect the investigated endpoints. The combination of OA with another toxin resulted in reduced toxicity at low concentrations, suggesting antagonistic effects, but in increased effects at higher concentrations, suggesting additive or synergistic effects. Taken together, our results demonstrated that the cytotoxic effects of binary mixtures of lipophilic phycotoxins could not be predicted by additivity mathematical models. In conclusion, the present data suggest that combined effects of phycotoxins may occur which might have the potential to impact on risk assessment of these compounds.


Subject(s)
Caco-2 Cells/drug effects , Drug Combinations , Drug Interactions , Marine Toxins/pharmacology , Animals , Cell Survival/drug effects , DNA Damage/drug effects , Furans/pharmacology , Humans , Inflammation , Intestines/cytology , Macrolides , Marine Toxins/analysis , Mollusk Venoms , Okadaic Acid/analysis , Okadaic Acid/pharmacology , Oxidative Stress/drug effects , Oxocins/pharmacology , Pyrans/pharmacology , Shellfish/analysis , Shellfish/toxicity , Spiro Compounds/pharmacology
18.
Toxicol Lett ; 307: 17-25, 2019 Jun 01.
Article in English | MEDLINE | ID: mdl-30825503

ABSTRACT

13-Desmethylspirolide C (13-SPX-C) is a phycotoxin produced by dinoflagellates which can accumulate in shellfish. 13-SPX-C induces neurotoxic effects in rodents through blockade of nicotinic acetylcholine receptors. As no human intoxication has been to date attributed to the consumption of 13-SPX-C-contaminated seafood, this toxin is not regulated according to the Codex Alimentarius. Nevertheless, shellfish consumers can be exposed to 13-SPX-C via shellfish consumption. In order to follow the fate of the toxin after ingestion and to verify whether metabolic detoxification could explain the lack of human intoxications, we assessed the metabolism of 13-SPX-C using several in vitro liver systems. First, both phase I and II reactions occurring with rat and human liver S9 fractions were screened. Our results indicated that 13-SPX-C was almost completely metabolized with both rat and human liver S9. Using a receptor binding assay towards nicotinic acetylcholine receptors we demonstrated that the resulting metabolites showed less affinity towards nicotinic acetylcholine receptors than 13-SPX-C. Finally, we showed that 13-SPX-C induced a pronounced increase of gene expression of the drug-metabolizing enzyme cytochrome P450 (CYP) CYP1A2. The role of this CYP in 13-SPX-C metabolism was clarified using an innovative in vitro tool, CYP1A2-Silensomes™. In summary, this study highlights that liver first-pass metabolism can contribute to the detoxification of 13-SPX-C.


Subject(s)
Liver/metabolism , Marine Toxins/metabolism , Spiro Compounds/metabolism , Animals , Cytochrome P-450 CYP1A2/metabolism , Gas Chromatography-Mass Spectrometry , Humans , In Vitro Techniques , Liver/drug effects , Rats , Real-Time Polymerase Chain Reaction
19.
Mar Drugs ; 16(2)2018 Jan 31.
Article in English | MEDLINE | ID: mdl-29385038

ABSTRACT

Lipophilic phycotoxins are secondary metabolites produced by phytoplanktonic species. They accumulate in filter-feeding shellfish and can cause human intoxication. Regulatory limits have been set for individual toxins, and the toxicological features are well characterized for some of them. However, phycotoxin contamination is often a co-exposure phenomenon, and toxicological data regarding mixtures effects are very scarce. Moreover, the type and occurrence of phycotoxins can greatly vary from one region to another. This review aims at summarizing the knowledge on (i) multi-toxin occurrence by a comprehensive literature review and (ii) the toxicological assessment of mixture effects. A total of 79 publications was selected for co-exposure evaluation, and 44 of them were suitable for toxin ratio calculations. The main toxin mixtures featured okadaic acid in combination with pectenotoxin-2 or yessotoxin. Only a few toxicity studies dealing with co-exposure were published. In vivo studies did not report particular mixture effects, whereas in vitro studies showed synergistic or antagonistic effects. Based on the combinations that are the most reported, further investigations on mixture effects must be carried out.


Subject(s)
Marine Toxins/toxicity , Phytoplankton/chemistry , Animals , Drug Synergism , Humans , Marine Toxins/poisoning , Okadaic Acid/toxicity
20.
Toxins (Basel) ; 9(7)2017 07 05.
Article in English | MEDLINE | ID: mdl-28678150

ABSTRACT

PTX-2 is a marine biotoxin frequently found in shellfish that can lead to food intoxication in humans. Information regarding PTX-2 metabolism is scarce, and little is known of its effect on xenobiotic-metabolizing enzymes (XME) or its molecular pathways. The aim of this study was consequently to examine PTX-2 Phase I metabolism using rat and human liver S9 fractions, and also to assess the capability of PTX-2: (i) to modulate the gene expression of a panel of Phase I (CYP450) and II (UGT, SULT, NAT, and GST) enzymes, as well as the Phase III or 0 (ABC and SLCO) transporters in the human hepatic HepaRG cell line using qPCR; (ii) to induce specific CYP450 in HepaRG cells measured by immunolabeling detection and the measurement of the cells' activities; and (iii) to activate nuclear receptors and induce CYP promoter activities in HEK-T and HepG2 transfected cell lines using transactivation and reporter gene assay, respectively. Our results indicate that PTX-2 hydroxylation occurred with both rat and human S9 fractions. Whereas PTX-2 mostly upregulated the gene expression of CYP1A1 and 1A2, no induction of these two CYP activities was observed. Lastly, PTX-2 did not act as an agonist of CAR or PXR. Due to its effects on some key XME, more attention should be paid to possible drug-drug interactions with phycotoxins, especially as shellfish can accumulate several phycotoxins as well as other kinds of contaminants.


Subject(s)
Cytochrome P-450 Enzyme System/metabolism , Furans/metabolism , Liver/metabolism , Marine Toxins/metabolism , Pyrans/metabolism , Animals , Cell Line , Cell Line, Tumor , Cytochrome P-450 Enzyme System/genetics , Gene Expression , Humans , Macrolides , Membrane Transport Proteins/genetics , Rats , Receptors, Aryl Hydrocarbon/genetics , Transferases/genetics , Xenobiotics/metabolism
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