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1.
Toxicon X ; 22: 100197, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38633504

ABSTRACT

Snakebite envenoming is a global health issue that affects millions of people worldwide, and that causes morbidity rates surpassing 450,000 individuals annually. Patients suffering from snakebite morbidities may experience permanent disabilities such as pain, blindness and amputations. The (local) tissue damage that causes these life-long morbidities is the result of cell- and tissue-damaging toxins present in the venoms. These compounds belong to a variety of toxin classes and may affect cells in various ways, for example, by affecting the cell membrane. In this study, we have developed a high-throughput in vitro assay that can be used to study membrane disruption caused by snake venoms using phospholipid vesicles from egg yolk as a substrate. Resuspended chicken egg yolk was used to form these vesicles, which were fluorescently stained to allow monitoring of the degradation of egg yolk vesicles on a plate reader. The assay proved to be suitable for studying phospholipid vesicle degradation of crude venoms and was also tested for its applicability for neutralisation studies of varespladib, which is a PLA2 inhibitor. We additionally made an effort to identify the responsible toxins using liquid chromatography, followed by post-column bioassaying and protein identification using high-throughput venomics. We successfully identified various toxins in the venoms of C. rhodostoma and N. mossambica, which are likely to be involved in the observed vesicle-degrading effect. This indicates that the assay can be used for screening the membrane degrading activity of both crude and fractionated venoms as well as for neutralisation studies.

2.
Toxicol In Vitro ; 98: 105826, 2024 Apr 12.
Article in English | MEDLINE | ID: mdl-38615723

ABSTRACT

Human induced pluripotent stem cells (iPSC) have the potential to produce desired target cell types in vitro and allow for the high-throughput screening of drugs/chemicals at population level thereby minimising the cost of drug discovery and drug withdrawals after clinical trials. There is a substantial need for the characterisation of the iPSC derived models to better understand and utilise them for toxicological relevant applications. In our study, iPSC (SBAD2 or SBAD3 lines obtained from StemBANCC project) were differentiated towards toxicologically relevant cell types: alveolar macrophages, brain capillary endothelial cells, brain cells, endothelial cells, hepatocytes, lung airway epithelium, monocytes, podocytes and renal proximal tubular cells. A targeted transcriptomic approach was employed to understand the effects of differentiation protocols on these cell types. Pearson correlation and principal component analysis (PCA) separated most of the intended target cell types and undifferentiated iPSC models as distinct groups with a high correlation among replicates from the same model. Based on PCA, the intended target cell types could also be separated into the three germ layer groups (ectoderm, endoderm and mesoderm). Differential expression analysis (DESeq2) presented the upregulated genes in each intended target cell types that allowed the evaluation of the differentiation to certain degree and the selection of key differentiation markers. In conclusion, these data confirm the versatile use of iPSC differentiated cell types as standardizable and relevant model systems for in vitro toxicology.

3.
Toxicol In Vitro ; 97: 105804, 2024 May.
Article in English | MEDLINE | ID: mdl-38447685

ABSTRACT

Podocytes play a critical role in the formation and maintenance of the glomerular filtration barrier and injury to these cells can lead to a breakdown of the glomerular barrier causing permanent damage leading to progressive chronic kidney disease. Matured podocytes have little proliferative potential, which makes them critical cells from a health perspective, but also challenging cells to maintain in vitro. Differentiating podocyte-like cells from induced pluripotent stem cells (iPSC) provides a novel and continuous source of cells. Here, we investigated the effect of a 24-h exposure to eight compounds, including the known glomerular toxins doxorubicin and pamidronate, on transcriptomic alterations in iPSC derived podocytes. Doxorubicin (50 nM), pamidronate (50 µM), sodium arsenite (10 µM), and cyclosporine A (15 µM) had a strong impact on the transcriptome, gentamicin (450 µg/ml), lead chloride (15 µM) and valproic acid (500 µM) had a mild impact and busulfan (50 µM) exhibited no impact. Gene alterations and pathways analysis provided mechanistic insight for example, doxorubicin exposure affected the p53 pathway and dedifferentiation, pamidronate activated several pathways including HIF1alpha and sodium arsenite up-regulated oxidative stress and metal responses. The results demonstrate the applicability of iPSC derived podocytes for toxicological and mechanistic investigations.


Subject(s)
Arsenites , Induced Pluripotent Stem Cells , Podocytes , Sodium Compounds , Humans , Podocytes/metabolism , Transcriptome , Xenobiotics/metabolism , Pamidronate/pharmacology , Doxorubicin/toxicity , Gene Expression Profiling
4.
ALTEX ; 41(2): 302-319, 2024.
Article in English | MEDLINE | ID: mdl-38048429

ABSTRACT

Hazard assessment (HA) requires toxicity tests to allow deriving protective points of departure (PoDs) for risk assessment irrespective of a compound's mode of action (MoA). The scope of in vitro test batteries (ivTB) thereby necessitated for systemic toxicity is still unclear. We explored the protectiveness regarding systemic toxicity of an ivTB with a scope, which was guided by previous findings from rodent studies, where examining six main targets, including liver and kidney, was sufficient to predict the guideline scope-based PoD with high probability. The ivTB comprises human in vitro models representing liver, kidney, lung and the neuronal system covering transcriptome, mitochondrial dysfunction and neuronal outgrowth. Additionally, 32 CALUX®- and 10 HepG2 BAC-GFP reporters cover a broad range of disturbance mechanisms. Eight compounds were chosen for causing adverse effects such as immunotoxicity or anemia in vivo, i.e., effects not directly covered by assays in the ivTB. PoDs derived from the ivTB and from oral repeated dose studies in rodents were extrapolated to maximum unbound plasma concentrations for comparison. The ivTB-based PoDs were one to five orders of magnitude lower than in vivo PoDs for six of eight compounds, implying that they were protective. The extent of in vitro response varied across test compounds. Especially for hematotoxic substances, the ivTB showed either no response or only cytotoxicity. Assays better capturing this type of hazard would be needed to complement the ivTB. This study highlights the potentially broad applicability of ivTBs for deriving protective PoDs of compounds with unknown MoA.


Animal tests are used to determine which amount of a chemical is toxic ('threshold of toxicity') and which organs are affected. In principle, the threshold can also be derived solely from tests with cultured cells. However, only a limited number of cell types can practically be tested, so one challenge is to determine how many and which types shall be tested. In animal studies, only few organs including liver and kidney are regularly among those most sensitively affected. We explored whether a cell-based test battery representing these sensitive organs and covering important mechanisms of toxicity can be used to derive protective human thresholds. To challenge this approach, eight chemicals were tested that primarily cause effects in organs not directly represented in our test battery. Results provided protective thresholds for most of the investigated compounds and gave indications how to further improve the approach towards a full-fledged replacement for animal tests.


Subject(s)
Toxicity Tests , Transcriptome , Humans , Risk Assessment
5.
Br Paramed J ; 8(2): 38-43, 2023 Sep 01.
Article in English | MEDLINE | ID: mdl-37674915

ABSTRACT

Introduction: Mixed methods research, a methodology entailing the integration of qualitative and quantitative data within a single study, offers researchers the ability to investigate complex processes and systems in health and healthcare. The collective strength gained through the data combination can provide an enhanced understanding of research problems, providing an ideal solution to understanding complex clinical issues in a range of settings. In pre-hospital practice, where often uncontrollable variables and environmental considerations increase healthcare complexity, mixed methods has emerged as a valuable approach to research. Aims: Given the exponential growth of pre-hospital mixed methods research since the publication of our first systematic review in 2014, we aim to provide an update. Our review will explore how mixed methods is utilised in pre-hospital research and identify what standards of reporting are achieved. Methods: This systematic review update will search MEDLINE, CINAHL Complete, Embase and Scopus bibliographic databases from 1 January 2012 to 15 March 2023, using an updated pre-hospital search strategy. Study screening will be performed in duplicate. Articles reported in English, explicitly stating the use of 'mixed methods' in the pre-hospital ambulance setting, including helicopter emergency medical services and community first-responder services, will be included. Data related to underpinning philosophy or theoretical framework, rationale for utilising mixed methods, background of the corresponding author, mode of data integration, model of publication and adherence to reporting standards, utilising the good reporting of a mixed methods study (GRAMMS) guidelines, will be extracted and analysed. All extracted data from study articles will be summarised in a table, allowing analysis of included studies against specified criteria.

6.
PLoS Negl Trop Dis ; 17(8): e0011564, 2023 08.
Article in English | MEDLINE | ID: mdl-37590328

ABSTRACT

Snakebite envenoming is a globally important public health issue that has devastating consequences on human health and well-being, with annual mortality rates between 81,000 and 138,000. Snake venoms may cause different pathological effects by altering normal physiological processes such as nervous transfer and blood coagulation. In addition, snake venoms can cause severe (local) tissue damage that may result in life-long morbidities, with current estimates pointing towards an additional 450,000 individuals that suffer from permanent disabilities such as amputations, contractions and blindness. Despite such high morbidity rates, research to date has been mainly focusing on neurotoxic and haemotoxic effects of snake venoms and considerably less on venom-induced tissue damage. The molecular mechanisms underlaying this pathology include membrane disruption and extracellular matrix degradation. This research describes methods used to study the (molecular) mechanisms underlaying venom-induced cell- and tissue damage. A selection of cellular bioassays and fluorescent microscopy were used to study cell-damaging activities of snake venoms in multi-well plates, using both crude and fractionated venoms. A panel of 10 representative medically relevant snake species was used, which cover a large part of the geographical regions most heavily affected by snakebite. The study comprises both morphological data as well as quantitative data on cell metabolism and viability, which were measured over time. Based on this data, a distinction could be made in the ways by which viper and elapid venoms exert their effects on cells. We further made an effort to characterise the bioactive compounds causing these effects, using a combination of liquid chromatography methods followed by bioassaying and protein identification using proteomics. The outcomes of this study might prove valuable for better understanding venom-induced cell- and tissue-damaging pathologies and could be used in the process of developing and improving snakebite treatments.


Subject(s)
Snake Bites , Humans , Snake Venoms/toxicity , Elapid Venoms , Amputation, Surgical , Biological Assay
7.
Curr Protoc ; 3(8): e850, 2023 Aug.
Article in English | MEDLINE | ID: mdl-37606532

ABSTRACT

Recently, we have developed a protocol to differentiate human induced pluripotent stem cells (iPSC) into proximal tubular-like cells (PTL) (Chandrasekaran et al., 2021). These cells express proximal tubular-specific markers, including megalin, and form a polarized monolayer expressing tight junction proteins, including ZO-3 and occludin. Furthermore, PTL display functional properties, including megalin-facilitated endocytosis, P-glycoprotein (ABCB1) efflux, and respond to parathyroid hormone. Here, we report step-by-step protocols to culture iPSC prior to differentiation (Basic Protocol 1), to differentiate PTL from iPSC (Basic Protocol 2), and to passage and freeze-thaw PTL (Basic Protocol 3). Additionally, we provide a protocol (Basic Protocol 4) to culture PTL on microporous growth supports (transwells). Immunofluorescence stainings for characteristic markers, including megalin, are shown for unpassaged (Basic Protocol 2) and passaged (Basic Protocol 3) PTL. © 2023 The Authors. Current Protocols published by Wiley Periodicals LLC. Basic Protocol 1: iPSC culture Basic Protocol 2: iPSC-derived PTL differentiation Basic Protocol 3: PTL passaging, culturing, and freezing Basic Protocol 4: PTL culturing on transwells Support Protocol 1: Preparation of Geltrex-coated cell culture plates Support Protocol 2: Preparation of RPTEC/TERT1 or fHDF/TERT166-ECM-coated cell culture plates Support Protocol 3: Preparation of human collagen IV-coated cell culture plates Support Protocol 4: Immunofluorescence staining.


Subject(s)
Induced Pluripotent Stem Cells , Humans , Low Density Lipoprotein Receptor-Related Protein-2 , ATP Binding Cassette Transporter, Subfamily B, Member 1 , Biological Transport , Cell Differentiation
8.
Toxicol Lett ; 383: 75-88, 2023 Jul 01.
Article in English | MEDLINE | ID: mdl-37353095

ABSTRACT

Bioactivation of trichloroethylene (TCE) via glutathione conjugation is associated with several adverse effects in the kidney and other extrahepatic tissues. Of the three regioisomeric conjugates formed, S-(1,2-trans-dichlorovinyl)-glutathione (1,2-trans-DCVG), S-(1,2-cis-dichlorovinyl)-glutathione and S-(2,2-dichlorovinyl)-glutathione, only 1,2-trans-DCVG and its corresponding cysteine-conjugate, 1,2-trans-DCVC, have been subject to extensive mechanistic studies. In the present study, the metabolism and cellular effects of 1,2-cis-DCVG, the major regioisomer formed by rat liver fractions, and 1,2-cis-DCVC were investigated for the first time using RPTEC/TERT1-cells as in vitro renal model. In contrast to 1,2-trans-DCVG/C, the cis-regioisomers showed minimal effects on cell viability and mitochondrial respiration. Transcriptomics analysis showed that both 1,2-cis-DCVC and 1,2-trans-DCVC caused Nrf2-mediated antioxidant responses, with 3 µM as lowest effective concentration. An ATF4-mediated integrated stress response and p53-mediated responses were observed starting from 30 µM for 1,2-trans-DCVC and 125 µM for 1,2-cis-DCVC. Comparison of the metabolism of the DCVG regioisomers by LC/MS showed comparable rates of processing to their corresponding DCVC. No detectable N-acetylation was observed in RPTEC/TERT1 cells. Instead, N-glutamylation of DCVC to form N-γ-glutamyl-S-(dichlorovinyl)-L-cysteine was identified as a novel route of metabolism. The results suggest that 1,2-cis-DCVC may be of less toxicological concern for humans than 1,2-trans-DCVC, considering its lower intrinsic toxicity and lower rate of formation by human liver fractions.


Subject(s)
Cysteine , Trichloroethylene , Rats , Animals , Humans , Cysteine/toxicity , Cysteine/metabolism , Kidney/metabolism , Glutathione/metabolism , Trichloroethylene/toxicity
9.
Cell Biol Toxicol ; 39(6): 3031-3059, 2023 12.
Article in English | MEDLINE | ID: mdl-37353587

ABSTRACT

Analysis of the transcriptomic alterations upon chemical challenge, provides in depth mechanistic information on the compound's toxic mode of action, by revealing specific pathway activation and other transcriptional modulations. Mapping changes in cellular behaviour to chemical insult, facilitates the characterisation of chemical hazard. In this study, we assessed the transcriptional landscape of mitochondrial impairment through the inhibition of the electron transport chain (ETC) in a human renal proximal tubular cell line (RPTEC/TERT1). We identified the unfolded protein response pathway (UPR), particularly the PERK/ATF4 branch as a common cellular response across ETC I, II and III inhibitions. This finding and the specific genes elaborated may aid the identification of mitochondrial liabilities of chemicals in both legacy data and prospective transcriptomic studies.


Subject(s)
Epithelial Cells , Kidney , Humans , Electron Transport/genetics , Prospective Studies , Kidney/metabolism , Cell Line , Epithelial Cells/metabolism
10.
Air Med J ; 42(3): 150-156, 2023.
Article in English | MEDLINE | ID: mdl-37150567

ABSTRACT

Helicopter emergency medical services (HEMS) have formed an integral component of the Irish health care system for the past decade; yet, the factors leading their commencement, their evolutions over this time, and the current model of service delivery have not been widely published. Aeromedical service provision may vary significantly from country to country and may also vary regionally within countries. A health system's necessities; capacity and maturity; the level of state, corporate, private, or community investment; and the capacity of the contracted service provider are all factors that influence the service provision. This research article describes the historic factors leading to a military and health system collaboration to HEMS during an era of health care reform. Over the past decade, the Irish health system has undergone significant reconfiguration and centralization of services, leading to increased demands on emergency medical ground and air medical services. Future advancements in aeromedical service provision require an innate understanding of the current model. This article adds to the knowledge base, informs policy makers, and supports decision making surrounding HEMS provision and the potential to explore military and health system collaborations and enhanced overall service provision.


Subject(s)
Air Ambulances , Emergency Medical Services , Humans , Ireland , Aircraft
11.
Pediatr Emerg Care ; 39(1): e20-e23, 2023 Jan 01.
Article in English | MEDLINE | ID: mdl-36580895

ABSTRACT

BACKGROUND: Pediatric burn injury is a traumatic experience for affected children and their families. Burn pain is frequently undertreated and may adversely affect patient experience and outcomes. The aim of this study was to investigate the current practice of initial pediatric burn pain assessment and management at a major trauma center in Riyadh, Kingdom of Saudi Arabia. METHODS: We conducted a retrospective cohort study that included children 14 years and younger who visited King Saud Medical City in the Kingdom of Saudi Arabia with a presenting complaint of burn injury from January 01, 2017 to August 30, 2018. Variables were reported using descriptive statistics as appropriate. RESULTS: The 309 patients who were analyzed were classified into 3 age groups ranging from 0 to younger than 3 years (61%), 3 to 7 years (24%), and older than 7 years (15%). They included 145 (47%) female and 164 (53%) male patients. Pain levels of 182 patients (59%) were documented using an age-appropriate tool. In 75 children (24%), pain levels were documented using an alternate tool, and the tool used was not defined for 44 children (14%). Pain assessment was not documented for 8 children. Of those with an age-appropriate tool, the median initial pain score was 4 (interquartile range [IQR], 2-4). Analgesia was recorded to have been administered to 139 patients (45%), within a median time of 50 minutes (IQR, 17-154 minutes) to first analgesia. Among patients who had appropriate assessment of pain, 92 (50.3%) received analgesia compared with 52 (41.3%) who did not have appropriate assessment (P = 0.12). Among patients who had appropriate pain assessment, time to analgesia was 42 minutes (IQR, 15-132 minutes) compared with 53 minutes (IQR, 17-189 minutes) among patients who did not have appropriate assessment (P = 0.48). DISCUSSION: Most pediatric patients presenting with burns had pain assessment, but a substantial proportion of children were not managed using recommended age-specific tools. The use of age-specific tools was not necessarily associated with delivery of analgesia. For pediatric burns, prompt delivery of analgesia should be prioritized with pain assessment using age-appropriate tools being recommended, but optional.


Subject(s)
Burns , Trauma Centers , Humans , Child , Male , Female , Child, Preschool , Saudi Arabia/epidemiology , Retrospective Studies , Pain Measurement , Pain/diagnosis , Pain/drug therapy , Pain/etiology , Burns/complications , Burns/diagnosis , Burns/therapy
12.
Arch Toxicol ; 97(2): 523-545, 2023 Feb.
Article in English | MEDLINE | ID: mdl-36576512

ABSTRACT

Environmental or occupational exposure of humans to trichloroethylene (TCE) has been associated with different extrahepatic toxic effects, including nephrotoxicity and neurotoxicity. Bioactivation of TCE via the glutathione (GSH) conjugation pathway has been proposed as underlying mechanism, although only few mechanistic studies have used cell models of human origin. In this study, six human derived cell models were evaluated as in vitro models representing potential target tissues of TCE-conjugates: RPTEC/TERT1 (kidney), HepaRG (liver), HUVEC/TERT2 (vascular endothelial), LUHMES (neuronal, dopaminergic), human induced pluripotent stem cells (hiPSC) derived peripheral neurons (UKN5) and hiPSC-derived differentiated brain cortical cultures containing all subtypes of neurons and astrocytes (BCC42). A high throughput transcriptomic screening, utilizing mRNA templated oligo-sequencing (TempO-Seq), was used to study transcriptomic effects after exposure to TCE-conjugates. Cells were exposed to a wide range of concentrations of S-(1,2-trans-dichlorovinyl)glutathione (1,2-DCVG), S-(1,2-trans-dichlorovinyl)-L-cysteine (1,2-DCVC), S-(2,2-dichlorovinyl)glutathione (2,2-DCVG), and S-(2,2-dichlorovinyl)-L-cysteine (2,2-DCVC). 1,2-DCVC caused stress responses belonging to the Nrf2 pathway and Unfolded protein response in all the tested models but to different extents. The renal model was the most sensitive model to both 1,2-DCVC and 1,2-DCVG, with an early Nrf2-response at 3 µM and hundreds of differentially expressed genes at higher concentrations. Exposure to 2,2-DCVG and 2,2-DCVC also resulted in the upregulation of Nrf2 pathway genes in RPTEC/TERT1 although at higher concentrations. Of the three neuronal models, both the LUHMES and BCC42 showed significant Nrf2-responses and at higher concentration UPR-responses, supporting recent hypotheses that 1,2-DCVC may be involved in neurotoxic effects of TCE. The cell models with the highest expression of γ-glutamyltransferase (GGT) enzymes, showed cellular responses to both 1,2-DCVG and 1,2-DCVC. Little to no effects were found in the neuronal models from 1,2-DCVG exposure due to their low GGT-expression. This study expands our knowledge on tissue specificity of TCE S-conjugates and emphasizes the value of human cell models together with transcriptomics for such mechanistic studies.


Subject(s)
Induced Pluripotent Stem Cells , Trichloroethylene , Humans , Cysteine/toxicity , Cysteine/metabolism , Trichloroethylene/toxicity , Trichloroethylene/metabolism , Transcriptome , NF-E2-Related Factor 2/metabolism , Induced Pluripotent Stem Cells/metabolism , Glutathione/metabolism , Phenotype
13.
Cell Biol Toxicol ; 39(4): 1773-1793, 2023 08.
Article in English | MEDLINE | ID: mdl-36586010

ABSTRACT

Transcriptomic analysis is a powerful method in the utilization of New Approach Methods (NAMs) for identifying mechanisms of toxicity and application to hazard characterization. With this regard, mapping toxicological events to time of exposure would be helpful to characterize early events. Here, we investigated time-dependent changes in gene expression levels in iPSC-derived renal proximal tubular-like cells (PTL) treated with five diverse compounds using TempO-Seq transcriptomics with the aims to evaluate the application of PTL for toxicity prediction and to report on temporal effects for the activation of cellular stress response pathways. PTL were treated with either 50 µM amiodarone, 10 µM sodium arsenate, 5 nM rotenone, or 300 nM tunicamycin over a temporal time course between 1 and 24 h. The TGFß-type I receptor kinase inhibitor GW788388 (1 µM) was used as a negative control. Pathway analysis revealed the induction of key stress-response pathways, including Nrf2 oxidative stress response, unfolding protein response, and metal stress response. Early response genes per pathway were identified much earlier than 24 h and included HMOX1, ATF3, DDIT3, and several MT1 isotypes. GW788388 did not induce any genes within the stress response pathways above, but showed deregulation of genes involved in TGFß inhibition, including downregulation of CYP24A1 and SERPINE1 and upregulation of WT1. This study highlights the application of iPSC-derived renal cells for prediction of cellular toxicity and sheds new light on the temporal and early effects of key genes that are involved in cellular stress response pathways.


Subject(s)
Induced Pluripotent Stem Cells , Transcriptome , Gene Expression Profiling , Kidney
14.
Sci Rep ; 12(1): 12346, 2022 07 19.
Article in English | MEDLINE | ID: mdl-35854053

ABSTRACT

Human activities alter river water quality and quantity, with consequences for the ecosystems of urbanised rivers. Quantifying the role of human-induced drivers in controlling spatio-temporal patterns in water quality is critical to develop successful strategies for improving the ecological health of urban rivers. Here, we analyse high-frequency electrical conductivity and temperature data collected from the River Chess in South-East England during a Citizen Science project. Utilizing machine learning, we find that boosted trees outperform GAM and accurately describe water quality dynamics with less than 1% error. SHapley Additive exPlanations reveal the importance of and the (inter)dependencies between the individual variables, such as river level and Wastewater Treatment Works (WWTW) outflow. WWTW outflows give rise to diurnal variations in electrical conductivity, which are detectable throughout the year, and to an increase in average water temperature of 1 [Formula: see text] in a 2 km reach downstream of the wastewater treatment works during low flows. Overall, we showcase how high-frequency water quality measurements initiated by a Citizen Science project, together with machine learning techniques, can help untangle key drivers of water quality dynamics in an urbanised chalk stream.


Subject(s)
Water Pollutants, Chemical , Water Quality , Ecosystem , Environmental Monitoring/methods , Humans , Machine Learning , Rivers , Water Pollutants, Chemical/analysis
15.
Chem Res Toxicol ; 35(7): 1184-1201, 2022 07 18.
Article in English | MEDLINE | ID: mdl-35768066

ABSTRACT

The understanding of how exogenous chemicals (xenobiotics) are metabolized, distributed, and eliminated is critical to determine the impact of the chemical and its metabolites to the (human) organism. This is part of the research and educational discipline ADMET (absorption, distribution, metabolism, elimination, and toxicity). Here, we review the work of Jan Commandeur and colleagues who have not only made a significant impact in understanding of phase I and phase II metabolism of several important compounds but also contributed greatly to the development of experimental techniques for the study of xenobiotic metabolism. Jan Commandeur's work has covered a broad area of research, such as the development of online screening methodologies, the use of a combination of enzyme mutagenesis and molecular modeling for structure-activity relationship (SAR) studies, and the development of novel probe substrates. This work is the bedrock of current activities and brings the field closer to personalized (cohort-based) pharmacology, toxicology, and hazard/risk assessment.


Subject(s)
Xenobiotics , Humans , Inactivation, Metabolic , Xenobiotics/metabolism
16.
Toxicol In Vitro ; 82: 105387, 2022 Aug.
Article in English | MEDLINE | ID: mdl-35595032

ABSTRACT

Although science can endeavour to do a great many things, unachievable thus far, these activities should be, but seldom are, tempered with the question, should we really do it? This is not necessarily implying a moral code to scientific activity, but at least suggests that we probably should consider the long-term consequences of certain scientific activities to human society and the environment. Indeed, scientists have struggled with the consequences of their discoveries, not least Nobel himself, who set up the Nobel prize as a reaction to being called "The father of death", due to his discovery and financial success with dynamite. Here, we set out the basis for a series of articles entitled, Frankenstein's Followers, Maintenance and propagation of human cells outside the body.


Subject(s)
Cell Culture Techniques , Humans
17.
Toxicol In Vitro ; 81: 105345, 2022 Jun.
Article in English | MEDLINE | ID: mdl-35278637

ABSTRACT

Adverse Outcome Pathways (AOPs) are increasingly used to support the integration of in vitro data in hazard assessment for chemicals. Quantitative AOPs (qAOPs) use mathematical models to describe the relationship between key events (KEs). In this paper, data obtained in three cell lines, LHUMES, HepG2 and RPTEC/TERT1, using similar experimental protocols, was used to calibrate a qAOP of mitochondrial toxicity for two chemicals, rotenone and deguelin. The objectives were to determine whether the same qAOP could be used for the three cell types, and to test chemical-independence by cross-validation with a dataset obtained on eight other chemicals in LHUMES cells. Repeating the calibration approach for both chemicals in three cell lines highlighted various practical difficulties. Even when the same readouts of KEs are measured, the mathematical functions used to describe the key event relationships may not be the same. Cross-validation in LHUMES cells was attempted by estimating chemical-specific potency at the molecular initiating events and using the rest of the calibrated qAOP to predict downstream KEs: toxicity of azoxystrobin, carboxine, mepronil and thifluzamide was underestimated. Selection of most relevant readouts and accurate characterization of the molecular initiating event for cross-validation are critical when designing in vitro experiments targeted at calibrating qAOPs.


Subject(s)
Adverse Outcome Pathways , Cell Line , Models, Theoretical , Risk Assessment , Toxicity Tests
18.
Toxicol In Vitro ; 81: 105333, 2022 Jun.
Article in English | MEDLINE | ID: mdl-35182771

ABSTRACT

Most OECD guidelines for chemical risk assessment include tests performed on animals, raising financial, ethical and scientific concerns. Thus, the development of human-based models for toxicity testing is highly encouraged. Here, we propose an in vitro multi-organ strategy to assess the toxicity of chemicals. Human induced pluripotent stem cells (hiPSCs)-derived models of the brain, blood-brain barrier, kidney, liver and vasculature were generated and exposed to paraquat (PQ), a widely employed herbicide with known toxic effects in kidneys and brain. The models showed differential cytotoxic sensitivity to PQ after acute exposure. TempO-Seq analysis with a set of 3565 probes revealed the deregulation of oxidative stress, unfolded protein response and estrogen receptor-mediated signaling pathways, in line with the existing knowledge on PQ mechanisms of action. The main advantages of this strategy are to assess chemical toxicity on multiple tissues/organs in parallel, exclusively in human cells, eliminating the interspecies bias, allowing a better evaluation of the differential sensitivity of the models representing the diverse organs, and increasing the chance to identify toxic compounds. Furthermore, although we focused on the mechanisms of action of PQ shared by the different models, this strategy would also allow for organ-specific toxicity testing, by including more cell type-specific probes for TempO-Seq analyses. In conclusion, we believe this strategy will participate in the further improvement of chemical risk assessment for human health.


Subject(s)
Herbicides , Induced Pluripotent Stem Cells , Animals , Herbicides/metabolism , Herbicides/toxicity , Humans , Liver/metabolism , Oxidative Stress , Paraquat/toxicity
19.
Emerg Med J ; 39(6): 451-456, 2022 Jun.
Article in English | MEDLINE | ID: mdl-34272210

ABSTRACT

BACKGROUND: Rapid Sequence intubation (RSI) is an airway procedure that uses sedative and paralytic drugs to facilitate endotracheal intubation. It is known that RSI could impact blood pressure in the peri-intubation period. However, little is known about blood pressure changes in longer time frames. Therefore, this analysis aims to describe the changes in systolic blood pressure in a large cohort of paramedic-led RSI cases over the whole prehospital timespan. METHODS: Intensive Care Paramedics in Victoria, Australia, are authorised to use RSI in medical or trauma patients with a Glasgow Coma Scale <10. This retrospective cohort study analysed data from patientcare records for patients aged 12 years and above that had received RSI, from 1 January 2008 to 31 December 2019. This study quantifies the systolic blood pressure changes using regression with fractional polynomial terms. The analysis is further stratified by high versus Low Shock Index (LSI). The shock index is calculated by dividing pulse rate by systolic blood pressure. RESULTS: During the study period RSI was used in 8613 patients. The median number of blood pressure measurements was 5 (IQR 3-8). Systolic blood pressure rose significantly by 3.4 mm Hg (p<0.001) and then returned to baseline in the first 5 min after intubation for LSI cases. No initial rise in blood pressure is apparent in High Shock Index (HSI) cases. Across the whole cohort, systolic blood pressure decreased by 7.1 mm Hg (95% CI 7.9 to 6.3 mm Hg; p<0.001) from the first to the last blood pressure measured. CONCLUSIONS: Our study shows that in RSI patients a small transient elevation in systolic blood pressure in the immediate postintubation period is found in LSI, but this elevation is not apparent in HSI. Blood pressure decreased over the prehospital phase in RSI patients with LSI, but increased for HSI cases.


Subject(s)
Emergency Medical Services , Rapid Sequence Induction and Intubation , Blood Pressure , Humans , Intubation, Intratracheal/adverse effects , Retrospective Studies , Victoria
20.
Arch Toxicol ; 96(1): 259-285, 2022 01.
Article in English | MEDLINE | ID: mdl-34642769

ABSTRACT

Mitochondrial perturbation is a key event in chemical-induced organ toxicities that is incompletely understood. Here, we studied how electron transport chain (ETC) complex I, II, or III (CI, CII and CIII) inhibitors affect mitochondrial functionality, stress response activation, and cell viability using a combination of high-content imaging and TempO-Seq in HepG2 hepatocyte cells. CI and CIII inhibitors perturbed mitochondrial membrane potential (MMP) and mitochondrial and cellular ATP levels in a concentration- and time-dependent fashion and, under conditions preventing a switch to glycolysis attenuated cell viability, whereas CII inhibitors had no effect. TempO-Seq analysis of changes in mRNA expression pointed to a shared cellular response to CI and CIII inhibition. First, to define specific ETC inhibition responses, a gene set responsive toward ETC inhibition (and not to genotoxic, oxidative, or endoplasmic reticulum stress) was identified using targeted TempO-Seq in HepG2. Silencing of one of these genes, NOS3, exacerbated the impact of CI and CIII inhibitors on cell viability, indicating its functional implication in cellular responses to mitochondrial stress. Then by monitoring dynamic responses to ETC inhibition using a HepG2 GFP reporter panel for different classes of stress response pathways and applying pathway and gene network analysis to TempO-Seq data, we looked for downstream cellular events of ETC inhibition and identified the amino acid response (AAR) as being triggered in HepG2 by ETC inhibition. Through in silico approaches we provide evidence indicating that a similar AAR is associated with exposure to mitochondrial toxicants in primary human hepatocytes. Altogether, we (i) unravel quantitative, time- and concentration-resolved cellular responses to mitochondrial perturbation, (ii) identify a gene set associated with adaptation to exposure to active ETC inhibitors, and (iii) show that ER stress and an AAR accompany ETC inhibition in HepG2 and primary hepatocytes.


Subject(s)
Electron Transport Complex I , Mitochondria , Electron Transport , Hep G2 Cells , Hepatocytes , Humans
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