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1.
Environ Sci Technol ; 58(22): 9487-9499, 2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38691763

ABSTRACT

The booming development of artificial intelligence (AI) has brought excitement to many research fields that could benefit from its big data analysis capability for causative relationship establishment and knowledge generation. In toxicology studies using zebrafish, the microscopic images and videos that illustrate the developmental stages, phenotypic morphologies, and animal behaviors possess great potential to facilitate rapid hazard assessment and dissection of the toxicity mechanism of environmental pollutants. However, the traditional manual observation approach is both labor-intensive and time-consuming. In this Perspective, we aim to summarize the current AI-enabled image and video analysis tools to realize the full potential of AI. For image analysis, AI-based tools allow fast and objective determination of morphological features and extraction of quantitative information from images of various sorts. The advantages of providing accurate and reproducible results while avoiding human intervention play a critical role in speeding up the screening process. For video analysis, AI-based tools enable the tracking of dynamic changes in both microscopic cellular events and macroscopic animal behaviors. The subtle changes revealed by video analysis could serve as sensitive indicators of adverse outcomes. With AI-based toxicity analysis in its infancy, exciting developments and applications are expected to appear in the years to come.


Subject(s)
Artificial Intelligence , Zebrafish , Animals , High-Throughput Screening Assays/methods , Ecotoxicology , Toxicity Tests/methods
2.
Toxicol In Vitro ; 98: 105849, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38772494

ABSTRACT

Concerns over Bisphenol A (BPA) and its substitute, Bisphenol S (BPS), have led to innovative exploration due to potential adverse health effects. BPS, replacing BPA in some regions to avoid toxic impacts, remains insufficiently studied. Besides this, the organ-on-a-chip technology emerges as a transformative solution in drug discovery and chemiclas toxicity testing, minimizing costs and aligning with ethical standards by reducing reliance on animal models, by integrating diverse tissues and dynamic cell environments enhances precision in predicting organ function. Here, we employ a 3-organ-on-a-chip microfluidic device with skin, intestine, and liver cultures to assess the effects of BPA and BPS via topical and oral administration. Our evaluation focused on gene markers associated with carcinogenicity, systemic toxicity, and endocrine disruption. BPA exhibited expected absorption profiles, causing liver injury and genetic modulation in related pathways. BPS, a safer alternative, induced adverse effects on gene expression, particularly in topical absorption, with distinct absorption patterns. Our findings underscore the urgency of addressing BPA and BPS toxicity concerns, highlighting the crucial role of organ-on-a-chip technology in understanding associated health risks. The study promotes the organ-on-a-chip methodology as a valuable tool for safe drug development and disease treatments, offering a novel liver toxicity screening alternative to traditional animal tests. This contributes to advancing comprehension of the biological effects of these compounds, fostering improved safety assessments in human health.


Subject(s)
Benzhydryl Compounds , Lab-On-A-Chip Devices , Liver , Phenols , Skin , Sulfones , Phenols/toxicity , Benzhydryl Compounds/toxicity , Liver/drug effects , Liver/metabolism , Sulfones/toxicity , Animals , Skin/drug effects , Skin/metabolism , Humans , Intestines/drug effects , Endocrine Disruptors/toxicity , Toxicity Tests/methods , Microphysiological Systems
3.
Toxicology ; 505: 153842, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38788893

ABSTRACT

New approach methodologies (NAMs) can address information gaps on potential neurotoxicity or developmental neurotoxicity hazard for data-poor chemicals. Two assays have been previously developed using microelectrode arrays (MEA), a technology which measures neural activity. The MEA acute network function assay (AcN) uses dissociated rat cortical cells cultured at postnatal day 0 and evaluates network activity during a 40-minute chemical exposure on day in vitro (DIV)13 or 15. In contrast, the MEA network formation assay (NFA) uses a developmental exposure paradigm spanning DIV0 through DIV12. Measures of network activity over time at DIV5, 7, 9, and 12 in the NFA are reduced to an estimated area under the curve to facilitate concentration-response evaluation. Here, we evaluated the hypothesis that chemicals with effects in the AcN also perturb the NFA by examining quantitative and qualitative concordance between assays. Out of 243 chemicals screened in both assays, we observed 70.3% concordance between the AcN and NFA after eliminating activity inferred to be cytotoxic (selective activity), with the majority of discordance explained by chemicals that altered selective activity in the AcN but not NFA. The NFA detected more active chemicals when evaluating activity associated with cytotoxicity. Median potency values were lower in the NFA compared to the AcN, but within-chemical potency values were not uniformly lower in the NFA than the AcN. Lastly, the AcN and NFA captured unique bioactivity fingerprints; the AcN was more informative for identifying chemicals with a shared mode of action, while the NFA provided information relevant to developmental exposure. Taken together, this analysis provides a rationale for using both approaches for chemical evaluation with consideration of the context of use, such as screening/ prioritization, hazard identification, or to address questions regarding biological mechanism or function.


Subject(s)
Microelectrodes , Nerve Net , Animals , Nerve Net/drug effects , Cells, Cultured , Rats , Neurons/drug effects , Rats, Sprague-Dawley , Toxicity Tests/methods , Cerebral Cortex/drug effects , Biological Assay/methods
4.
Chemosphere ; 359: 142246, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38710414

ABSTRACT

The knowledge and assessment of mixtures of chemical pollutants in the aquatic environment is a complex issue that is often challenging to address. In this review, we focused on the use of zebrafish (Danio rerio), a vertebrate widely used in biomedical research, as a model for detecting the effects of chemical mixtures with a focus on behaviour. Our aim was to summarize the current status of the ecotoxicological research in this sector. Specifically, we limited our research to the period between January 2012 and September 2023, including only those works aimed at detecting neurotoxicity through behavioural endpoints, utilizing zebrafish at one or more developmental stages, from egg to adult. Additionally, we gathered the findings for every group of chemicals involved and summarised data from all the works we included. At the end of the screening process 101 papers were considered eligible for inclusion. Results show a growing interest in zebrafish at all life stages for this kind of research in the last decade. Also, a wide variety of different assays, involving different senses, was used in the works we surveyed, with exposures ranging from acute to chronic. In conclusion, the results of this study show the versatility of zebrafish as a model for the detection of mixture toxicity although, for what concerns behavioural analysis, the lack of standardisation of methods and endpoints might still be limiting.


Subject(s)
Behavior, Animal , Neurotoxicity Syndromes , Water Pollutants, Chemical , Zebrafish , Animals , Water Pollutants, Chemical/toxicity , Behavior, Animal/drug effects , Neurotoxicity Syndromes/etiology , Toxicity Tests/methods , Ecotoxicology/methods
5.
Toxicology ; 505: 153826, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38719068

ABSTRACT

With the move away from safety testing assessment based on data generated in experimental animals the concept of Next Generation Risk Assessment (NGRA) has arisen which instead uses data from in silico and in vitro models. A key uncertainty in risk assessment is the actual dose of test chemical at the target site, and therefore surrogate dose metrics, such as nominal concentration in test media are used to describe in vitro effect (or no-effect) doses. The reliability and accuracy of the risk assessment therefore depends largely on our ability to understand and characterise the relationship between the dose metrics used and the actual biologically effective dose at the target site. The objective of this publication is to use 40 case study chemicals to illustrate how in vitro dose considerations can be applied to characterise the "true dose" and build confidence in the understanding of the biologically effective dose in in vitro test systems for the determination e.g. points of departure (PoDs) for NGRA. We propose a workflow that can be applied to assess whether the nominal test concentration can be considered a conservative dose metric for use in NGRA. The workflow examines the implications of volatility, stability, hydrophobicity, binding to plastic and serum, solubility, and the potential use of in silico models for some of these parameters. For the majority of the case study chemicals we found that the use of nominal concentrations in risk assessment would result in conservative decision making. However, for serval chemicals a potential for underestimation of the risk in humans in vivo based on in vitro nominal effect concentrations was identified, and approaches for refinement by characterisation of the actual effect concentration are proposed.


Subject(s)
Dose-Response Relationship, Drug , Toxicity Tests , Risk Assessment/methods , Toxicity Tests/methods , Humans , Animals , Computer Simulation , Workflow
6.
Toxicol In Vitro ; 98: 105843, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38735502

ABSTRACT

Traditional experimental methodologies suffer from a few limitations in the toxicological evaluation of the preservatives added to eye drops. In this study, we overcame these limitations by using a microfluidic device. We developed a microfluidic system featuring a gradient concentration generator for preservative dosage control with microvalves and micropumps, automatically regulated by a programmable Arduino board. This system facilitated the simultaneous toxicological evaluation of human corneal epithelial cells against eight different concentrations of preservatives, allowing for quadruplicate experiments in a single run. In our study, the IC50 values for healthy eyes and those affected with dry eyes syndrome showed an approximately twofold difference. This variation is likely attributable to the duration for which the preservative remained in contact with corneal cells before being washed off by the medium, suggesting the significance of exposure time in the cytotoxic effect of preservatives. Our microfluidic system, automated by Arduino, simulated healthy and dry eye environments to study benzalkonium chloride toxicity and revealed significant differences in cell viability, with IC50 values of 0.0033% for healthy eyes and 0.0017% for dry eyes. In summary, we implemented the pinch-to-zoom feature of an electronic tablet in our microfluidic system, offering innovative alternatives for eye research.


Subject(s)
Benzalkonium Compounds , Cell Survival , High-Throughput Screening Assays , Preservatives, Pharmaceutical , Humans , Preservatives, Pharmaceutical/toxicity , Benzalkonium Compounds/toxicity , High-Throughput Screening Assays/instrumentation , High-Throughput Screening Assays/methods , Cell Survival/drug effects , Dry Eye Syndromes/chemically induced , Microfluidic Analytical Techniques/instrumentation , Epithelial Cells/drug effects , Toxicity Tests/methods , Toxicity Tests/instrumentation , Drug Evaluation, Preclinical/methods , Drug Evaluation, Preclinical/instrumentation , Ophthalmic Solutions/toxicity , Cell Line , Lab-On-A-Chip Devices , Epithelium, Corneal/drug effects , Cornea/drug effects
7.
Reprod Toxicol ; 126: 108602, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38723698

ABSTRACT

Reproduction is a functional outcome that relies on complex cellular, tissue, and organ interactions that span the developmental period to adulthood. Thus, the assessment of its disruption by environmental chemicals would benefit significantly from scalable and innovative approaches to testing using functionally comparable reproductive models such as the nematode C. elegans. We adapted a previously described low-throughput in vivo chromosome segregation assay using C. elegans predictive of reproductive toxicity and leveraged available public data sources (ToxCast, ICE) to screen and characterize 133 physiologically-relevant chemicals in a high-throughput manner. The screening outcome was further validated in a second, independent in vivo assay assessing embryonic viability. In total, 13 chemicals were classified as reproductive toxicants with the two most active chemicals belonging to the large family of Quaternary Ammonium Compounds (QACs) commonly used as disinfectants but with limited available reproductive toxicity data. We compared the results from the C. elegans assay with ToxCast in vitro data compiled from 700+ cell response assays and 300+ signaling pathways-based assays. We did not observe a difference in the bioactivity or in the average potency (AC50) between the top and bottom chemicals. However, the intended target categories were significantly different between the classified chemicals with, in particular, an over-representation of steroid hormone targets for the high Z-score chemicals. Taken together, these results point to the value of in vivo models that scale to high-throughput level for reproductive toxicity assessment and to the need to prioritize the assessment of QACs impacts on reproduction.


Subject(s)
Caenorhabditis elegans , Environmental Pollutants , Reproduction , Caenorhabditis elegans/drug effects , Animals , Reproduction/drug effects , Environmental Pollutants/toxicity , Toxicity Tests/methods , High-Throughput Screening Assays
8.
Cell Mol Biol (Noisy-le-grand) ; 70(5): 82-88, 2024 May 27.
Article in English | MEDLINE | ID: mdl-38814231

ABSTRACT

Milrinone, a phosphodiesterase III inhibitor with contractile and vasodilatory effects, is widely used in acute decompensated heart failure and medically refractory end-stage heart failure (HF). The adverse reactions of milrinone have been extensively explored clinically, but its possible toxicities and underlying molecular mechanisms in embryo development need further understanding as its clinical applications increase. Herein, we assessed the milrinone toxicity using the zebrafish embryotoxicity test (ZET), with a view of providing evidence and guidance for gravidas medicine. We carried out ZET by exposing embryos to a milrinone culture with a series concentration gradients since 1.5 hours post fertilization (hpf) and observed and assessed mortality and hatching rates of drug-treated zebrafishes at 24, 48, 72, and 96 hpf. No significant lethal effect was found in milrinone-treated zebrafish, but hatching rate of eggs at 48 hpf was up-regulated with the increase of milrinone concentration. The impact of milrinone on embryogenesis was assessed through body length, eye area, yolk sac area, swim bladder inflation area, pericardial area and venous congestion area at 96hpf. 150 µg/mL or higher milrinone treatment showed significant effects in the indicators. Organ disorders including enlarged pericardium, liver atrophy and decreased blood vessels were observed in dysplasia individuals versus controls. TUNEL assay suggested the ability of milrinone to induce apoptosis in malformation embryos. Quantitative real-time PCR showed aberrant expressions of transcription factors associated with heart development and genes related to liver development and apoptosis regulation. Therefore, ZET is feasible for the milrinone toxicity test, and high-dose milrinone causes harm to the embryonic development of zebrafish, especially in embryonic carcinogenesis, vasculogenesis, and hepatogenesis.


Subject(s)
Embryo, Nonmammalian , Embryonic Development , Milrinone , Zebrafish , Animals , Milrinone/toxicity , Zebrafish/embryology , Embryo, Nonmammalian/drug effects , Embryonic Development/drug effects , Apoptosis/drug effects , Toxicity Tests/methods , Gene Expression Regulation, Developmental/drug effects
9.
Biomed Environ Sci ; 37(4): 341-353, 2024 Apr 20.
Article in English | MEDLINE | ID: mdl-38727157

ABSTRACT

Objective: Hydroquinone (HQ), one of the phenolic metabolites of benzene, is widely recognized as an important participant in benzene-induced hematotoxicity. However, there are few relevant proteomics in HQ-induced hematotoxicity and the mechanism hasn't been fully understood yet. Methods: In this study, we treated K562 cells with 40 µmol/L HQ for 72 h, examined and validated protein expression changes by Label-free proteomic analysis and Parallel reaction monitoring (PRM), and performed bioinformatics analysis to identify interaction networks. Results: One hundred and eighty-seven upregulated differentially expressed proteins (DEPs) and 279 downregulated DEPs were identified in HQ-exposed K562 cells, which were involved in neutrophil-mediated immunity, blood microparticle, and other GO terms, as well as the lysosome, metabolic, cell cycle, and cellular senescence-related pathways. Focusing on the 23 DEGs and 5 DEPs in erythroid differentiation-related pathways, we constructed the network of protein interactions and determined 6 DEPs (STAT1, STAT3, CASP3, KIT, STAT5B, and VEGFA) as main hub proteins with the most interactions, among which STATs made a central impact and may be potential biomarkers of HQ-induced hematotoxicity. Conclusion: Our work reinforced the use of proteomics and bioinformatic approaches to advance knowledge on molecular mechanisms of HQ-induced hematotoxicity at the protein level and provide a valuable basis for further clarification.


Subject(s)
Benzene , Hemolytic Agents , Proteome , Proteome/metabolism , Proteomics , Benzene/toxicity , K562 Cells , Humans , Toxicity Tests/methods , Hemolytic Agents/toxicity
10.
Methods Mol Biol ; 2786: 365-386, 2024.
Article in English | MEDLINE | ID: mdl-38814404

ABSTRACT

In this chapter, we will first consider the overall goal of nonclinical safety testing during drug development and have a brief overview of its regulatory background. We will then discuss some basic requirements of safety/toxicity testing before concentrating on the safety testing of RNA vaccines and developing a sample RNA vaccine safety testing program.


Subject(s)
mRNA Vaccines , Animals , Humans , Drug Evaluation, Preclinical/methods , Toxicity Tests/methods
11.
Int J Mol Sci ; 25(10)2024 May 09.
Article in English | MEDLINE | ID: mdl-38791172

ABSTRACT

The main focus of in vitro toxicity assessment methods is to assess the viability of the cells, which is usually based on metabolism changes. Yet, when exposed to toxic substances, the cell triggers multiple signals in response. With this in mind, we have developed a promising cell-based toxicity method that observes various cell responses when exposed to toxic substances (either death, division, or remain viable). Based on the collective cell response, we observed and predicted the dynamics of the cell population to determine the toxicity of the toxicant. The method was tested with two different conformations: In the first conformation, we exposed a monoculture model of blood macrophages to UV light, hydrogen peroxide, nutrient deprivation, tetrabromobisphenol A, fatty acids, and 5-fluorouracil. In the second, we exposed a coculture liver model consisting of hepatocytes, hepatic stellate cells, Kupffer cells, and liver sinusoidal endothelial cells to rifampicin, ibuprofen, and 5-fluorouracil. The method showed good accuracy compared to established toxicity assessment methods. In addition, this approach provided more representative information on the toxic effects of the compounds, as it considers the different cellular responses induced by toxic agents.


Subject(s)
Fluorouracil , Humans , Fluorouracil/pharmacology , Macrophages/drug effects , Macrophages/metabolism , Hepatocytes/drug effects , Hepatocytes/metabolism , Toxicity Tests/methods , Hydrogen Peroxide/pharmacology , Cell Survival/drug effects , Animals , Coculture Techniques/methods , Ultraviolet Rays , Endothelial Cells/drug effects , Endothelial Cells/metabolism , Liver/drug effects , Liver/metabolism , Liver/cytology , Ibuprofen/pharmacology , Cells, Cultured , Rifampin/pharmacology , Hepatic Stellate Cells/metabolism , Hepatic Stellate Cells/drug effects
12.
Sci Total Environ ; 927: 172199, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38580108

ABSTRACT

Effect-directed analysis (EDA) is a crucial tool in environmental toxicology, effectively integrating toxicity testing with chemical analysis. The conventional EDA approach, however, presents challenges such as significant solvent consumption, extended analysis time, labor intensity, and potential contamination risks. In response, we introduce an innovative alternative to the conventional EDA. This method utilizes the MTT bioassay and online two-dimensional liquid chromatography (2D LC) coupled with high-resolution mass spectrometry (HR-MS), significantly reducing the fractionation steps and leveraging the enhanced sensitivity of the bioassay and automated chemical analysis. In the chemical analysis phase, a switching valve interface is employed for comprehensive analysis. We tested the performance of both the conventional and our online 2D LC-based methods using a household product. Both methods identified the same number of toxicants in the sample. Our alternative EDA is 22.5 times faster than the conventional method, fully automated, and substantially reduces solvent consumption. This novel approach offers ease, cost-effectiveness, and represents a paradigm shift in EDA methodologies. By integrating a sensitive bioassay with online 2D LC, it not only enhances efficiency but also addresses the challenges associated with traditional methods, marking a significant advancement in environmental toxicology research.


Subject(s)
Environmental Pollutants , Chromatography, Liquid/methods , Environmental Pollutants/toxicity , Environmental Pollutants/analysis , Toxicity Tests/methods , Environmental Monitoring/methods , Mass Spectrometry/methods , Biological Assay/methods , Ecotoxicology/methods
13.
Front Immunol ; 15: 1373411, 2024.
Article in English | MEDLINE | ID: mdl-38646535

ABSTRACT

Introduction: Veterinary vaccines against Clostridium perfringens type C need to be tested for absence of toxicity, as mandated by pharmacopoeias worldwide. This toxicity testing is required at multiple manufacturing steps and relies on outdated mouse tests that involve severe animal suffering. Clostridium perfringens type C produces several toxins of which the ß-toxin is the primary component responsible for causing disease. Here, we describe the successful development of a new cell-based in vitro assay that can address the specific toxicity of the ß-toxin. Methods: Development of the cell-based assay followed the principle of in vitro testing developed for Cl. septicum vaccines, which is based on Vero cells. We screened four cell lines and selected the THP-1 cell line, which was shown to be the most specific and sensitive for ß-toxin activity, in combination with a commercially available method to determine cell viability (MTS assay) as a readout. Results: The current animal test is estimated to detect 100 - 1000-fold dilutions of the Cl. perfringens type C non-inactivated antigen. When tested with an active Cl. perfringens type C antigen preparation, derived from a commercial vaccine manufacturing process, our THP-1 cell-based assay was able to detect toxin activity from undiluted to over 10000-fold dilution, showing a linear range between approximately 1000- and 10000-fold dilutions. Assay specificity for the ß-toxin was confirmed with neutralizing antibodies and lack of reaction to Cl. perfringens culture medium. In addition, assay parameters demonstrated good repeatability. Conclusions: Here, we have shown proof of concept for a THP-1 cell-based assay for toxicity testing of veterinary Cl. perfringens type C vaccines that is suitable for all vaccine production steps. This result represents a significant step towards the replacement of animal-based toxicity testing of this veterinary clostridial antigen. As a next step, assessment of the assay's sensitivity and repeatability and validation of the method will have to be performed in a commercial manufacturing context in order to formally implement the assay in vaccine quality control.


Subject(s)
Bacterial Toxins , Clostridium perfringens , Animals , Clostridium perfringens/immunology , Bacterial Toxins/immunology , Bacterial Toxins/toxicity , Humans , Vero Cells , Chlorocebus aethiops , Toxicity Tests/methods , Clostridium Infections/veterinary , Clostridium Infections/immunology , Clostridium Infections/diagnosis , THP-1 Cells , Mice , Cell Survival/drug effects , Cell Line , Bacterial Vaccines/immunology , Animal Testing Alternatives/methods
15.
Regul Toxicol Pharmacol ; 149: 105621, 2024 May.
Article in English | MEDLINE | ID: mdl-38608922

ABSTRACT

Although the United States Food & Drug Administration (FDA) has provided guidance on the control of drug degradants for prescription drugs, there is less guidance on how to set degradant specifications for FDA OTC monograph drugs. Given that extensive impurity testing was not part of the safety paradigm in original OTC monographs, a weight of evidence (WOE) approach to qualify OTC degradants is proposed. This approach relies on in silico tools and read-across approaches alongside standard toxicity testing to determine safety. Using several drugs marketed under 21 CFR 341 as case studies, this research demonstrates the utility of a WOE approach across data-rich and data-poor degradants. Based on degradant levels ranging from 1 to 4% of the maximum daily doses of each case study drug and 10th percentile body weight data for each patient group, children were recognized as having the highest potential exposure relative to adults per body mass. Depending on data availability and relationship to the parent API, margins of safety (MOS) or exposure margins were calculated for each degradant. The findings supported safe use, and indicated that this contemporary WOE approach could be utilized to assess OTC degradants. This approach is valuable to establish specifications for degradants in OTCs.


Subject(s)
Antitussive Agents , Nonprescription Drugs , United States Food and Drug Administration , Nonprescription Drugs/adverse effects , Humans , United States , Antitussive Agents/adverse effects , Cough/drug therapy , Risk Assessment , Child , Drug Contamination , Adult , Toxicity Tests/methods , Common Cold/drug therapy
16.
Regul Toxicol Pharmacol ; 149: 105617, 2024 May.
Article in English | MEDLINE | ID: mdl-38561146

ABSTRACT

Accumulating evidence has shown that the abnormal toxicity test (ATT) is not suitable as a quality control batch release test for biologics and vaccines. The purpose of the current study was to explore the optimal ATT experimental design for an adenoviral vector-based vaccine product to avoid false positive results following the standard test conditions stipulated in the Pharmacopoeias. ATT were conducted in both mice and guinea pigs based on methods in Pharmacopeias, with modifications to assess effects of dose volume and amount of virus particles (VPs). The results showed intraperitoneal (IP) dosing at human relevant dose and volume (i.e., VPs), as required by pharmacopeia study design, resulted in false positive findings not associated with extraneous contaminants of a product. Considering many gene therapy products use adeno associated virus as the platform for transgene delivery, data from this study are highly relevant in providing convincing evidence to show the ATT is inappropriate as batch release test for biologics, vaccine and gene therapy products. In conclusion, ATT, which requires unnecessary animal usage and competes for resources which otherwise can be spent on innovative medicine research, should be deleted permanently as batch release test by regulatory authorities around the world.


Subject(s)
Genetic Vectors , Toxicity Tests , Animals , Guinea Pigs , Toxicity Tests/methods , Mice , False Positive Reactions , Female , Adenoviridae/genetics , Male , Vaccines
17.
Toxicology ; 505: 153814, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38677583

ABSTRACT

The field of chemical toxicity testing is undergoing a transition to overcome the limitations of in vivo experiments. This evolution involves implementing innovative non-animal approaches to improve predictability and provide a more precise understanding of toxicity mechanisms. Adverse outcome pathway (AOP) networks are pivotal in organizing existing mechanistic knowledge related to toxicological processes. However, these AOP networks are dynamic and require regular updates to incorporate the latest data. Regulatory challenges also persist due to concerns about the reliability of the information they offer. This study introduces a generic Weight-of-Evidence (WoE) scoring method, aligned with the tailored Bradford-Hill criteria, to quantitatively assess the confidence levels in key event relationships (KERs) within AOP networks. We use the previously published AOP network on chemical-induced liver steatosis, a prevalent form of human liver injury, as a case study. Initially, the existing AOP network is optimized with the latest scientific information extracted from PubMed using the free SysRev platform for artificial intelligence (AI)-based abstract inclusion and standardized data collection. The resulting optimized AOP network, constructed using Cytoscape, visually represents confidence levels through node size (key event, KE) and edge thickness (KERs). Additionally, a Shiny application is developed to facilitate user interaction with the dataset, promoting future updates. Our analysis of 173 research papers yielded 100 unique KEs and 221 KERs among which 72 KEs and 170 KERs, respectively, have not been previously documented in the prior AOP network or AOP-wiki. Notably, modifications in de novo lipogenesis, fatty acid uptake and mitochondrial beta-oxidation, leading to lipid accumulation and liver steatosis, garnered the highest KER confidence scores. In conclusion, our study delivers a generic methodology for developing and assessing AOP networks. The quantitative WoE scoring method facilitates in determining the level of support for KERs within the optimized AOP network, offering valuable insights into its utility in both scientific research and regulatory contexts. KERs supported by robust evidence represent promising candidates for inclusion in an in vitro test battery for reliably predicting chemical-induced liver steatosis within regulatory frameworks.


Subject(s)
Adverse Outcome Pathways , Fatty Liver , Humans , Fatty Liver/chemically induced , Animals , Chemical and Drug Induced Liver Injury/etiology , Toxicity Tests/methods , Artificial Intelligence
18.
Environ Toxicol Chem ; 43(6): 1285-1299, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38558477

ABSTRACT

Current regulations require that toxicity assessments be performed using standardized toxicity testing methods, often using fish. Recent legislation in both the European Union and United States has mandated that toxicity testing alternatives implement the 3Rs of animal research (replacement, reduction, and refinement) whenever possible. There have been advances in the development of alternatives for freshwater assessments, but there is a lack of analogous developments for marine assessments. One potential alternative testing method is the fish embryo toxicity (FET) test, which uses fish embryos rather than older fish. In the present study, FET methods were applied to two marine model organisms, the sheepshead minnow and the inland silverside. Another potential alternative is the mysid shrimp survival and growth test, which uses an invertebrate model. The primary objective of the present study was to compare the sensitivity of these three potential alternative testing methods to two standardized fish-based tests using 3,4-dichloroaniline (DCA), a common reference toxicant. A secondary objective was to characterize the ontogeny of sheepshead minnows and inland silversides. This provided a temporal and visual guide that can be used to identify appropriately staged embryos for inclusion in FET tests and delineate key developmental events (e.g., somite development, eyespot formation, etc.). Comparison of the testing strategies for assessing DCA indicated that: (1) the standardized fish tests possessed comparable sensitivity to each other; (2) the mysid shrimp tests possessed comparable sensitivity to the standardized fish tests; (3) the sheepshead minnow and inland silverside FET tests were the least sensitive testing strategies employed; and (4) inclusion of sublethal endpoints (i.e., hatchability and pericardial edema) in the marine FETs increased their sensitivity. Environ Toxicol Chem 2024;43:1285-1299. © 2024 The Authors. Environmental Toxicology and Chemistry published by Wiley Periodicals LLC on behalf of SETAC.


Subject(s)
Embryo, Nonmammalian , Toxicity Tests , Water Pollutants, Chemical , Animals , Toxicity Tests/methods , Embryo, Nonmammalian/drug effects , Water Pollutants, Chemical/toxicity , Animal Testing Alternatives , Cyprinidae , Crustacea/drug effects , Aniline Compounds/toxicity , Fishes
19.
Reprod Toxicol ; 126: 108598, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38657700

ABSTRACT

The process of mammalian reproduction involves the development of fertile germ cells in the testis and ovary, supported by the surrounders. Fertilization leads to embryo development and ultimately the birth of offspring inheriting parental genome information. Any disruption in this process can result in disorders such as infertility and cancer. Chemical toxicity affecting the reproductive system and embryogenesis can impact birth rates, overall health, and fertility, highlighting the need for animal toxicity studies during drug development. However, the translation of animal data to human health remains challenging due to interspecies differences. In vitro culture systems offer a promising solution to bridge this gap, allowing the study of mammalian cells in an environment that mimics the physiology of the human body. Current advances on in vitro culture systems, such as organoids, enable the development of biomaterials that recapitulate the physiological state of reproductive organs. Application of these technologies to human gonadal cells would provide effective tools for drug screening and toxicity testing, and these models would be a powerful tool to study reproductive biology and pathology. This review focuses on the 2D/3D culture systems of human primary testicular and ovarian cells, highlighting the novel approaches for in vitro study of human reproductive toxicology, specifically in the context of testis and ovary.


Subject(s)
Ovary , Testis , Humans , Testis/drug effects , Ovary/drug effects , Male , Female , Animals , Toxicity Tests/methods , Cell Culture Techniques
20.
Reprod Toxicol ; 126: 108583, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38561097

ABSTRACT

Teratology, the study of congenital anomalies and their causative factors intersects with developmental and reproductive toxicology, employing innovative methodologies. Evaluating the potential impacts of teratogens on fetal development and assessing human risk is an essential prerequisite in preclinical research. The chicken embryo model has emerged as a powerful tool for understanding human embryonic development due to its remarkable resemblance to humans. This model offers a unique platform for investigating the effects of substances on developing embryos, employing techniques such as ex ovo and in ovo assays, chorioallantoic membrane assays, and embryonic culture techniques. The advantages of chicken embryonic models include their accessibility, cost-effectiveness, and biological relevance to vertebrate development, enabling efficient screening of developmental toxicity. However, these models have limitations, such as the absence of a placenta and maternal metabolism, impacting the study of nutrient exchange and hormone regulation. Despite these limitations, understanding and mitigating the challenges posed by the absence of a placenta and maternal metabolism are critical for maximizing the utility of the chick embryo model in developmental toxicity testing. Indeed, the insights gained from utilizing these assays and their constraints can significantly contribute to our understanding of the developmental impacts of various agents. This review underscores the utilization of chicken embryonic models in developmental toxicity testing, highlighting their advantages and disadvantages by addressing the challenges posed by their physiological differences from mammalian systems.


Subject(s)
Embryonic Development , Teratogens , Toxicity Tests , Animals , Chick Embryo , Toxicity Tests/methods , Teratogens/toxicity , Embryonic Development/drug effects , Humans , Models, Animal , Reproduction/drug effects
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