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1.
Molecules ; 29(9)2024 May 06.
Article in English | MEDLINE | ID: mdl-38731651

ABSTRACT

The main objective of this study was to investigate the metabolism of miconazole, an azole antifungal drug. Miconazole was subjected to incubation with human liver microsomes (HLM) to mimic phase I metabolism reactions for the first time. Employing a combination of an HLM assay and UHPLC-HRMS analysis enabled the identification of seven metabolites of miconazole, undescribed so far. Throughout the incubation with HLM, miconazole underwent biotransformation reactions including hydroxylation of the benzene ring and oxidation of the imidazole moiety, along with its subsequent degradation. Additionally, based on the obtained results, screen-printed electrodes (SPEs) were optimized to simulate the same biotransformation reactions, by the use of a simple, fast, and cheap electrochemical method. The potential toxicity of the identified metabolites was assessed using various in silico models.


Subject(s)
Mass Spectrometry , Miconazole , Microsomes, Liver , Miconazole/chemistry , Miconazole/metabolism , Humans , Chromatography, High Pressure Liquid/methods , Microsomes, Liver/metabolism , Mass Spectrometry/methods , Electrochemical Techniques/methods , Antifungal Agents/chemistry , Antifungal Agents/metabolism , Biotransformation
2.
J Agric Food Chem ; 72(19): 10897-10908, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38691522

ABSTRACT

Gramine (GRM), which occurs in Gramineae plants, has been developed to be a biological insecticide. Exposure to GRM was reported to induce elevations of serum ALT and AST in rats, but the mechanisms of the observed hepatotoxicity have not been elucidated. The present study aimed to identify reactive metabolites that potentially participate in the toxicity. In rat liver microsomal incubations fortified with glutathione or N-acetylcysteine, one oxidative metabolite (M1), one glutathione conjugate (M2), and one N-acetylcysteine conjugate (M3) were detected after exposure to GRM. The corresponding conjugates were detected in the bile and urine of rats after GRM administration. CYP3A was the main enzyme mediating the metabolic activation of GRM. The detected GSH and NAC conjugates suggest that GRM was metabolized to a quinone imine intermediate. Both GRM and M1 showed significant toxicity to rat primary hepatocytes.


Subject(s)
Activation, Metabolic , Cytochrome P-450 CYP3A , Hepatocytes , Rats, Sprague-Dawley , Animals , Rats , Male , Hepatocytes/metabolism , Hepatocytes/drug effects , Cytochrome P-450 CYP3A/metabolism , Cytochrome P-450 CYP3A/genetics , Microsomes, Liver/metabolism , Glutathione/metabolism , Insecticides/toxicity , Insecticides/metabolism , Alkaloids/metabolism
3.
Chemosphere ; 358: 142249, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38705405

ABSTRACT

Chlorophenols (CPs) are a group of pollutants that pose a great threat to the environment, they are widely used in industrial and agricultural wastes, pesticides, herbicides, textiles, pharmaceuticals and plastics. Among CPs, pentachlorophenol was listed as one of the persistent organic pollutants (POPs) by the Stockholm convention. This study aims to identify the UDP-glucosyltransferase (UGT) isoforms involved in the metabolic elimination of CPs. CPs' mono-glucuronide was detected in the human liver microsomes (HLMs) incubation mixture with co-factor uridine-diphosphate glucuronic acid (UDPGA). HLMs-catalyzed glucuronidation metabolism reaction equations followed Michaelis-Menten or substrate inhibition type. Recombinant enzymes and chemical reagents inhibition experiments were utilized to phenotype the main UGT isoforms involved in the glucuronidation of CPs. UGT1A6 might be the major enzyme in the glucuronidation of mono-chlorophenol isomer. UGT1A1, UGT1A6, UGT1A9, UGT2B4 and UGT2B7 were the most important five UGT isoforms for metabolizing the di-chlorophenol and tri-chlorophenol isomers. UGT1A1 and UGT1A3 were the most important UGT isoforms in the catalysis of tetra-chlorophenol and pentachlorophenol isomers. Species differences were investigated using rat liver microsomes (RLMs), pig liver microsomes (PLMs), dog liver microsomes (DLMs), and monkey liver microsomes (MyLMs). All these results were helpful for elucidating the metabolic elimination and toxicity of CPs.


Subject(s)
Chlorophenols , Glucuronosyltransferase , Microsomes, Liver , Glucuronosyltransferase/metabolism , Chlorophenols/metabolism , Animals , Microsomes, Liver/metabolism , Humans , Rats , Environmental Pollutants/metabolism , Isoenzymes/metabolism , Glucuronides/metabolism
4.
Biopharm Drug Dispos ; 45(2): 107-114, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38573807

ABSTRACT

VX-548 is a sodium channel blocker, which acts as an analgesic. This study aims to investigate the gender differences in the pharmacokinetics and metabolism of VX-548 in rats. After intravenous administration, the area under the curve (AUC0-t) of VX-548 was much higher in female rats (1505.8 ± 47.3 ng·h/mL) than in male rats (253.8 ± 6.3 ng·h/mL), and the clearance in female rats (12.5 ± 0.8 mL/min/kg) was much lower than in male rats (65.1 ± 1.7 mL/min/kg). After oral administration, the AUC0-t in female rats was about 50-fold higher than that in male rats. The oral bioavailability in male rats was 11% while it was 96% in female rats. An in vitro metabolism study revealed that the metabolism of VX-548 in female rat liver microsomes was much slower than in male rats. Further metabolite identification suggested that the significant gender difference in pharmacokinetics was attributed to demethylation. The female rat liver microsomes showed a limited ability to convert VX-548 into desmethyl VX-548. Phenotyping experiments indicated that the formation of desmethyl VX-548 was mainly catalyzed by CYP3A2 and CYP2C11 using rat recombinant CYPs. Overall, we revealed that the pharmacokinetics and metabolism of VX-548 in male and female rats showed significant gender differences.


Subject(s)
Cytochrome P-450 Enzyme System , Microsomes, Liver , Organothiophosphorus Compounds , Rats , Male , Female , Animals , Sex Factors , Cytochrome P-450 Enzyme System/metabolism , Biological Availability , Microsomes, Liver/metabolism , Administration, Oral
5.
Drug Des Devel Ther ; 18: 931-939, 2024.
Article in English | MEDLINE | ID: mdl-38560524

ABSTRACT

Purpose: To study the potential drug-drug interactions between tofacitinib and baohuoside I and to provide the scientific basis for rational use of them in clinical practice. Methods: A total of eighteen Sprague-Dawley rats were randomly divided into three groups: control group, single-dose group (receiving a single dose of 20 mg/kg of baohuoside I), and multi-dose group (receiving multiple doses of baohuoside I for 7 days). On the seventh day, each rat was orally administered with 10 mg/kg of tofacitinib 30 minutes after giving baohuoside I or vehicle. Blood samples were collected and determined using UPLC-MS/MS. In vitro effects of baohuoside I on tofacitinib was investigated in rat liver microsomes (RLMs), as well as the underlying mechanism of inhibition. The semi-inhibitory concentration value (IC50) of baohuoside I was subsequently determined and its inhibitory mechanism against tofacitinib was analyzed. Furthermore, the interactions between baohuoside I, tofacitinib and CYP3A4 were explored using Pymol molecular docking simulation. Results: The administration of baohuoside I orally has been observed to enhance the area under the concentration-time curve (AUC) of tofacitinib and decrease the clearance (CL). The observed disparity between the single-dose and multi-dose groups was statistically significant. Furthermore, our findings suggest that the impact of baohuoside I on tofacitinib metabolism may be a mixture of non-competitive and competitive inhibition. Baohuoside I exhibit an interaction with arginine (ARG) at position 106 of the CYP3A4 enzyme through hydrogen bonding, positioning itself closer to the site of action compared to tofacitinib. Conclusion: Our study has demonstrated the presence of drug-drug interactions between baohuoside I and tofacitinib, which may arise upon pre-administration of tofacitinib. Altogether, our data indicated that an interaction existed between tofacitinib and baohuoside I and additional cares might be taken when they were co-administrated in clinic.


Subject(s)
Cytochrome P-450 CYP3A , Flavonoids , Piperidines , Pyrimidines , Tandem Mass Spectrometry , Rats , Animals , Rats, Sprague-Dawley , Cytochrome P-450 CYP3A/metabolism , Chromatography, Liquid , Molecular Docking Simulation , Microsomes, Liver/metabolism
6.
Chem Pharm Bull (Tokyo) ; 72(4): 393-398, 2024.
Article in English | MEDLINE | ID: mdl-38644165

ABSTRACT

Preparation of drug metabolites at the milligram scale is essential for determining the structure and toxicity of drug metabolites. However, their preparation using recombinant proteins and human liver microsomes (HLM) is often difficult because of technical and ethical issues. Reproducing human drug metabolism in food-derived microorganisms may be useful for overcoming these challenges. In this study, we identified an unknown metabolite of the anaesthetic drug lidocaine, which is metabolised by HLM. By screening for lidocaine metabolic activity in five types of foods (blue cheese, shiitake mushroom, natto, yoghurt, and dry yeast), we found that bacteria isolated from natto reproduced the lidocaine metabolic reaction that occurs in HLM. A fraction containing the unknown lidocaine metabolite was prepared through mass cultivation of a Bacillus subtilis standard strain, ethyl acetate extraction, open column chromatography, and HPLC purification. We identified the unknown metabolite as 3-(2,6-dimethylphenyl)-1-ethyl-2-methyl-4-imidazolidinone using NMR. Our results showed that food-derived microorganisms can produce large amounts of human drug metabolites via large-scale cultivation. Additionally, food microorganisms that can reproduce drug metabolism in humans can be used to examine drug metabolites at a low cost and without ethical issues.


Subject(s)
Lidocaine , Microsomes, Liver , Humans , Microsomes, Liver/metabolism , Microsomes, Liver/chemistry , Lidocaine/metabolism , Lidocaine/chemistry , Lidocaine/analysis , Bacillus subtilis/metabolism , Molecular Structure , Chromatography, High Pressure Liquid
7.
J Med Chem ; 67(8): 6549-6569, 2024 Apr 25.
Article in English | MEDLINE | ID: mdl-38604131

ABSTRACT

Fibroblast growth factor receptor 4 (FGFR4) is thought to be a driver in several cancer types, most notably in hepatocellular carcinoma. One way to achieve high potency and isoform selectivity for FGFR4 is covalently targeting a rare cysteine (C552) in the hinge region of its kinase domain that is not present in other FGFR family members (FGFR1-3). Typically, this cysteine is addressed via classical acrylamide electrophiles. We demonstrate that noncanonical covalent "warheads" based on nucleophilic aromatic substitution (SNAr) chemistry can be employed in a rational manner to generate highly potent and (isoform-)selective FGFR4 inhibitors with a low intrinsic reactivity. Key compounds showed low to subnanomolar potency, efficient covalent inactivation kinetics, and excellent selectivity against the other FGFRs, the kinases with an equivalent cysteine, and a representative subset of the kinome. Moreover, these compounds achieved nanomolar potencies in cellular assays and demonstrated good microsomal stability, highlighting the potential of SNAr-based approaches in covalent inhibitor design.


Subject(s)
Protein Kinase Inhibitors , Receptor, Fibroblast Growth Factor, Type 4 , Receptor, Fibroblast Growth Factor, Type 4/antagonists & inhibitors , Receptor, Fibroblast Growth Factor, Type 4/metabolism , Humans , Protein Kinase Inhibitors/pharmacology , Protein Kinase Inhibitors/chemistry , Protein Kinase Inhibitors/chemical synthesis , Structure-Activity Relationship , Microsomes, Liver/metabolism
8.
Eur J Drug Metab Pharmacokinet ; 49(3): 393-403, 2024 May.
Article in English | MEDLINE | ID: mdl-38642299

ABSTRACT

BACKGROUND AND OBJECTIVE: The prediction of pharmacokinetic parameters for drugs metabolised by cytochrome P450 enzymes has been the subject of active research for many years, while the application of in vitro-in vivo extrapolation (IVIVE) techniques for non-cytochrome P450 enzymes has not been thoroughly evaluated. There is still no established quantitative method for predicting hepatic clearance of drugs metabolised by uridine 5'-diphospho-glucuronosyltransferases (UGTs), not to mention those which undergo hepatic uptake. The objective of the study was to predict the human hepatic clearance for telmisartan based on in vitro metabolic stability and hepatic uptake results. METHODS: Telmisartan was examined in liver systems, allowing to estimate intrinsic clearance (CLint, in vitro) based on the substrate disappearance rate with the use of liquid chromatography tandem mass spectrometry (LC-MS/MS) technique. Obtained CLint, in vitro values were corrected for corresponding unbound fractions. Prediction of human hepatic clearance was made from scaled unbound CLint, in vitro data with the use of the well-stirred model, and finally referenced to the literature value of observed clearance in humans, allowing determination of the essential scaling factors. RESULTS: The in vitro scaled CLint, in vitro by UGT1A3 was assessed using three systems, human hepatocytes, liver microsomes, and recombinant enzymes. Obtained values were scaled and hepatic metabolism clearance was predicted, resulting in significant clearance underprediction. Utilization of the extended clearance concept (ECC) and hepatic uptake improved prediction of hepatic metabolism clearance. The scaling factors for hepatocytes, assessing the in vitro-in vivo difference, changed from sixfold difference to only twofold difference with the application of the ECC. CONCLUSIONS: The study showed that taking into consideration hepatic uptake of a drug allows us to obtain satisfactory scaling factors, hence enabling the prediction of in vivo hepatic glucuronidation from in vitro data.


Subject(s)
Glucuronides , Glucuronosyltransferase , Microsomes, Liver , Solute Carrier Organic Anion Transporter Family Member 1B3 , Telmisartan , Glucuronosyltransferase/metabolism , Telmisartan/pharmacokinetics , Telmisartan/metabolism , Humans , Microsomes, Liver/metabolism , Glucuronides/metabolism , Solute Carrier Organic Anion Transporter Family Member 1B3/metabolism , Liver/metabolism , Liver/enzymology , Metabolic Clearance Rate , Tandem Mass Spectrometry/methods , Hepatocytes/metabolism , Models, Biological , Chromatography, Liquid/methods , Benzoates/pharmacokinetics , Benzoates/metabolism
9.
Xenobiotica ; 54(4): 211-216, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38591142

ABSTRACT

To uncover the effect of danshensu on irbesartan pharmacokinetics and its underlying mechanisms.To investigate the effect of danshensu on the pharmacokinetics of irbesartan, Sprague-Dawley rats (n = 6) were orally administered 30 mg/kg irbesartan alone (control group) or pre-treated with 160 mg/kg danshensu (experimental group). The effect of danshensu on the metabolic stability of irbesartan in RLMs was examined by LC-MS/MS method. The effect of danshensu on CYP2C9 activity was also determined.Danshensu markedly increased the AUC(0-t) (9573 ± 441 vs. 16157 ± 559 µg/L*h) and Cmax (821 ± 24 vs. 1231 ± 44 µg/L) of irbesartan. Danshensu prolonged the t1/2 (13.39 ± 0.98 vs. 16.04 ± 1.21 h) and decreased the clearance rate (2.27 ± 0.14 vs. 1.19 ± 0.10 L/h/kg) of irbesartan. Danshensu enhanced the metabolic stability of irbesartan in vitro with prolonged t1/2 (36.34 ± 11.68 vs. 48.62 ± 12.03 min) and reduced intrinsic clearance (38.14 ± 10.24 vs. 28.51 ± 9.06 µL/min/mg protein). Additionally, the IC50 value for CYP2C9 inhibition by danshensu was 35.74 µM.Danshensu enhanced systemic exposure of irbesartan by suppressing CYP2C9. The finding can also serve as a guidance for further investigation of danshensu-irbesartan interaction in clinical practice.


Subject(s)
Drug Interactions , Irbesartan , Lactates , Rats, Sprague-Dawley , Irbesartan/pharmacology , Animals , Lactates/metabolism , Rats , Cytochrome P-450 CYP2C9/metabolism , Male , Biphenyl Compounds , Microsomes, Liver/metabolism , Microsomes, Liver/drug effects , Tandem Mass Spectrometry , Tetrazoles/pharmacokinetics , Tetrazoles/pharmacology
10.
Metabolomics ; 20(3): 49, 2024 Apr 30.
Article in English | MEDLINE | ID: mdl-38689195

ABSTRACT

INTRODUCTION: Untargeted metabolomics studies are expected to cover a wide range of compound classes with high chemical diversity and complexity. Thus, optimizing (pre-)analytical parameters such as the analytical liquid chromatography (LC) column is crucial and the selection of the column depends primarily on the study purpose. OBJECTIVES: The current investigation aimed to compare six different analytical columns. First, by comparing the chromatographic resolution of selected compounds. Second, on the outcome of an untargeted toxicometabolomics study using pooled human liver microsomes (pHLM), rat plasma, and rat urine as matrices. METHODS: Separation and analysis were performed using three different reversed-phase (Phenyl-Hexyl, BEH C18, and Gold C18), two hydrophilic interaction chromatography (HILIC) (ammonium-sulfonic acid and sulfobetaine), and one porous graphitic carbon (PGC) columns coupled to high-resolution mass spectrometry (HRMS). Their impact was evaluated based on the column performance and the size of feature count, amongst others. RESULTS: All three reversed-phase columns showed a similar performance, whereas the PGC column was superior to both HILIC columns at least for polar compounds. Comparing the size of feature count across all datasets, most features were detected using the Phenyl-Hexyl or sulfobetaine column. Considering the matrices, most significant features were detected in urine and pHLM after using the sulfobetaine and in plasma after using the ammonium-sulfonic acid column. CONCLUSION: The results underline that the outcome of this untargeted toxicometabolomic study LC-HRMS metabolomic study was highly influenced by the analytical column, with the Phenyl-Hexyl or sulfobetaine column being the most suitable. However, column selection may also depend on the investigated compounds as well as on the investigated matrix.


Subject(s)
Hydrophobic and Hydrophilic Interactions , Metabolomics , Microsomes, Liver , Rats , Animals , Humans , Metabolomics/methods , Microsomes, Liver/metabolism , Chromatography, Reverse-Phase/methods , Graphite/chemistry , Plasma/chemistry , Plasma/metabolism , Chromatography, Liquid/methods , Porosity , Metabolome
11.
SAR QSAR Environ Res ; 35(4): 285-307, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38588502

ABSTRACT

Heritage agrochemicals like myclobutanil, oxyfluorfen, and pronamide, are extensively used in agriculture, with well-established studies on their animal toxicity. Yet, human toxicity assessment relies on conventional human risk assessment approaches including the utilization of animal-based ADME (Absorption, Distribution, Metabolism, and Excretion) data. In recent years, Physiologically Based Pharmacokinetic (PBPK) modelling approaches have played an increasing role in human risk assessment of many chemicals including agrochemicals. This study addresses the absence of PBPK-type data for myclobutanil, oxyfluorfen, and pronamide by generating in vitro data for key input PBPK parameters (Caco-2 permeability, rat plasma binding, rat blood to plasma ratio, and rat liver microsomal half-life), followed by generation of PBPK models for these three chemicals via the GastroPlusTM software. Incorporating these experimental input parameters into PBPK models, the prediction accuracy of plasma AUC (area under curve) was significantly improved. Validation against rat oral administration data demonstrated substantial enhancement. Steady-state plasma concentrations (Css) of pronamide aligned well with published data using measured PBPK parameters. Following validation, parent-based tissue concentrations for these agrochemicals were predicted in humans and rats after single or 30-day repeat exposure of 10 mg/kg/day. These predicted concentrations contribute valuable information for future human toxicity risk assessments of these agrochemicals.


Subject(s)
Models, Biological , Triazoles , Animals , Humans , Rats , Administration, Oral , Male , Nitriles/pharmacokinetics , Nitriles/toxicity , Quantitative Structure-Activity Relationship , Caco-2 Cells , Risk Assessment , Microsomes, Liver/metabolism , Tissue Distribution , Fungicides, Industrial/pharmacokinetics , Fungicides, Industrial/toxicity , Fungicides, Industrial/administration & dosage , Fungicides, Industrial/blood
12.
J Anal Toxicol ; 48(4): 217-225, 2024 May 20.
Article in English | MEDLINE | ID: mdl-38619371

ABSTRACT

Since the 2000s, an increasing number of new psychoactive substances have appeared on the illicit drug market. ß-Keto-arylcyclohexylamine compounds play important pharmacological roles in anesthesia; however, because these new psychoactive substances have rapidly increasing illicit recreational use, the lack of detailed toxicity data are of particular concern. Therefore, analysis of their metabolites can help forensic personnel provide references and suggestions on whether a suspect has taken an illicit new psychoactive ß-keto-arylcyclohexylamine. The present study investigated the in vitro and in vivo metabolism and metabolites of three ß-keto-arylcyclohexylamines: deschloro-N-ethyl-ketamine, fluoro-N-ethyl-ketamine and bromoketamine. In vitro and in vivo models were established using zebrafish and human liver microsomes for analysis of Phase I and Phase II metabolites by liquid chromatography-high-resolution mass spectrometry. Altogether, 49 metabolites were identified. The results were applied for the subject urine samples of known fluoro-N-ethyl-ketamine consumer screen analysis in forensic cases. Hydroxy-deschloro-N-ethyl-ketamine, hydroxy-fluoro-N-ethyl-ketamine and hydroxy-bromoketamine were recommended as potential biomarkers for documenting intake in clinical and forensic cases.


Subject(s)
Illicit Drugs , Ketamine , Microsomes, Liver , Psychotropic Drugs , Substance Abuse Detection , Zebrafish , Animals , Humans , Microsomes, Liver/metabolism , Psychotropic Drugs/metabolism , Ketamine/analogs & derivatives , Ketamine/metabolism , Illicit Drugs/metabolism , Substance Abuse Detection/methods , Cyclohexylamines , Chromatography, Liquid
13.
Chemosphere ; 358: 142123, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38677618

ABSTRACT

Hexaconazole (HEX) is an azole fungicide widely used in agricultural practices across various countries and numerous studies have reported the toxic effects of HEX, such as endocrine disruption, immunotoxicity, neurotoxicity and carcinogenicity. Despite its widespread agricultural use and toxic effects, the metabolism of HEX is not completely understood, and information on urinary elimination of HEX or its metabolites is limited. Therefore, in the present study, we aimed to identify HEX metabolites in rat and human liver microsomes followed by their in vivo confirmation using a urinary excretion study in rats to identify potential candidate for exposure biomarkers for human biomonitoring studies. From the in vitro assay, a total of 12 metabolites were observed, where the single oxidation metabolites (M5 and M6) were the most abundant metabolites in both rat and human liver microsomes. The triple oxidation followed by dehydration metabolite, M8 (which could also be hexaconazole acid or hydroxy keto-hexaconazole), and the double oxidation metabolite (M9) were the major metabolites found in rat urine and were detectable in rat urine longer than the parent. These metabolites increased with decreasing concentrations of HEX in the rat urine samples. Therefore, metabolites M8, M9 and M5 could be pursued further as potential biomarkers for assessing and monitoring human exposure to HEX.


Subject(s)
Biomarkers , Fungicides, Industrial , Microsomes, Liver , Triazoles , Animals , Triazoles/metabolism , Triazoles/urine , Rats , Microsomes, Liver/metabolism , Humans , Fungicides, Industrial/urine , Fungicides, Industrial/metabolism , Biomarkers/urine , Biomarkers/metabolism , Male , Rats, Sprague-Dawley , Biological Monitoring
14.
Eur J Pharm Sci ; 197: 106773, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38641124

ABSTRACT

Cytochrome P450 (CYP) system is a critical elimination route to most pharmaceuticals in human, but also prone to drug-drug interactions arising from the fact that concomitantly administered pharmaceuticals inhibit one another's CYP metabolism. The most severe form of CYP interactions is irreversible inhibition, which results in permanent inactivation of the critical CYP pathway and is only restored by de novo synthesis of new functional enzymes. In this study, we conceptualize a microfluidic approach to mechanistic CYP inhibition studies using human liver microsomes (HLMs) immobilized onto the walls of a polymer micropillar array. We evaluated the feasibility of these HLM chips for CYP inhibition studies by establishing the stability and the enzyme kinetics for a CYP2C9 model reaction under microfluidic flow and determining the half-maximal inhibitory concentrations (IC50) of three human CYP2C9 inhibitors (sulfaphenazole, tienilic acid, miconazole), including evaluation of their inhibition mechanisms and nonspecific microsomal binding on chip. Overall, the enzyme kinetics of CYP2C9 metabolism on the HLM chip (KM = 127 ± 55 µM) was shown to be similar to that of static HLM incubations (KM = 114 ± 14 µM) and the IC50 values toward CYP2C9 derived from the microfluidic assays (sulfaphenazole 0.38 ± 0.09 µM, tienilic acid 3.4 ± 0.6 µM, miconazole 0.54 ± 0.09 µM) correlated well with those determined using current standard IC50 shift assays. Most importantly, the HLM chip could distinguish between reversible (sulfaphenazole) and irreversible (tienilic acid) enzyme inhibitors in a single, automated experiment, indicating the great potential of the HLM chip to simplify current workflows used in mechanistic CYP inhibition studies. Furthermore, the results suggest that the HLM chip can also identify irreversible enzyme inhibitors, which are not necessarily resulting in a time-dependent inhibition (like suicide inhibitors), but whose inhibition mechanism is based on other kind of covalent or irreversible interaction with the CYP system. With our HLM chip approach, we could identify miconazole as such a compound that nonselectively inhibits the human CYP system with a prolonged, possibly irreversible impact in vitro, even if it is not a time-dependent inhibitor according to the IC50 shift assay.


Subject(s)
Microsomes, Liver , Humans , Microsomes, Liver/metabolism , Cytochrome P-450 CYP2C9/metabolism , Kinetics , Cytochrome P-450 Enzyme Inhibitors/pharmacology , Miconazole/pharmacology , Enzymes, Immobilized/metabolism , Cytochrome P-450 CYP2C9 Inhibitors/pharmacology , Lab-On-A-Chip Devices , Microfluidic Analytical Techniques/methods , Sulfaphenazole/pharmacology , Microfluidics/methods
15.
J Ethnopharmacol ; 330: 118232, 2024 Aug 10.
Article in English | MEDLINE | ID: mdl-38670407

ABSTRACT

ETHNOPHARMACOLOGICAL RELEVANCE: Arbutin is a naturally occurring glucoside extracted from plants, known for its antioxidant and tyrosinase inhibiting properties. It is widely used in cosmetic and pharmaceutical industries. With in-depth study of arbutin, its application in disease treatment is expanding, presenting promising development prospects. However, reports on the metabolic stability, plasma protein binding rate, and pharmacokinetic properties of arbutin are scarce. AIM OF THE STUDY: The aim of this study is to enrich the data of metabolic stability and pharmacokinetics of arbutin through the early pre-clinical evaluation, thereby providing some experimental basis for advancing arbutin into clinical research. MATERIALS AND METHODS: We developed an efficient and rapid liquid chromatography-tandem mass spectrometry (LC-MS/MS) assay for determining arbutin in plasma. We investigated the metabolic and pharmacokinetic properties of arbutin through in vitro metabolism assay, cytochrome enzymes P450 (CYP450) inhibition studies, plasma protein binding rate analysis, Caco-2 cell permeability tests, and rat pharmacokinetics to understand its in vivo performance. RESULTS: In vitro studies show that arbutin is stable, albeit with some species differences. It exhibits low plasma protein binding (35.35 ± 11.03% âˆ¼ 40.25 ± 2.47%), low lipophilicity, low permeability, short half-life (0.42 ± 0.30 h) and high oral bioavailability (65 ± 11.6%). Arbutin is primarily found in the liver and kidneys and is eliminated in the urine. It does not significantly inhibit CYP450 up to 10 µM, suggesting a low potential for drug interactions. Futhermore, preliminary toxicological experiments indicate arbutin's safety, supporting its potential as a therapeutic agent. CONCLUSION: This study provides a comprehensive analysis the drug metabolism and pharmacokinetics (DMPK) of arbutin, enriching our understanding of its metabolism stability and pharmacokinetics properties, It establishes a foundation for further structural optimization, pharmacological studies, and the clinical development of arbutin.


Subject(s)
Arbutin , Rats, Sprague-Dawley , Tandem Mass Spectrometry , Arbutin/pharmacokinetics , Arbutin/pharmacology , Tandem Mass Spectrometry/methods , Animals , Humans , Caco-2 Cells , Male , Chromatography, Liquid/methods , Rats , Microsomes, Liver/metabolism , Microsomes, Liver/drug effects , Protein Binding , Cytochrome P-450 Enzyme System/metabolism , Biological Products/pharmacokinetics , Biological Products/pharmacology , Biological Products/chemistry , Cytochrome P-450 Enzyme Inhibitors/pharmacology , Cytochrome P-450 Enzyme Inhibitors/pharmacokinetics , Liquid Chromatography-Mass Spectrometry
16.
Pharmacol Res Perspect ; 12(3): e1197, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38644590

ABSTRACT

Human cytochrome P450 3A4 (CYP3A4) is a drug-metabolizing enzyme that is abundantly expressed in the liver and intestine. It is an important issue whether compounds of interest affect the expression of CYP3A4 because more than 30% of commercially available drugs are metabolized by CYP3A4. In this study, we examined the effects of cholesterol and cholic acid on the expression level and activity of CYP3A4 in hCYP3A mice that have a human CYP3A gene cluster and show human-like regulation of the coding genes. A normal diet (ND, CE-2), CE-2 with 1% cholesterol and 0.5% cholic acid (HCD) or CE-2 with 0.5% cholic acid was given to the mice. The plasma concentrations of cholesterol, cholic acid and its metabolites in HCD mice were higher than those in ND mice. In this condition, the expression levels of hepatic CYP3A4 and the hydroxylation activities of triazolam, a typical CYP3A4 substrate, in liver microsomes of HCD mice were higher than those in liver microsomes of ND mice. Furthermore, plasma concentrations of triazolam in HCD mice were lower than those in ND mice. In conclusion, our study suggested that hepatic CYP3A4 expression and activity are influenced by the combination of cholesterol and cholic acid in vivo.


Subject(s)
Cholesterol , Cholic Acid , Cytochrome P-450 CYP3A , Liver , Microsomes, Liver , Triazolam , Cholic Acid/metabolism , Animals , Cytochrome P-450 CYP3A/metabolism , Cytochrome P-450 CYP3A/genetics , Microsomes, Liver/metabolism , Cholesterol/metabolism , Cholesterol/blood , Mice , Liver/metabolism , Liver/drug effects , Male , Triazolam/pharmacokinetics , Triazolam/metabolism , Humans , Mice, Transgenic , Hydroxylation
17.
Chem Res Toxicol ; 37(5): 711-722, 2024 May 20.
Article in English | MEDLINE | ID: mdl-38602333

ABSTRACT

A growing body of literature has linked early-life exposures to polycyclic aromatic hydrocarbons (PAH) with adverse neurodevelopmental effects. Once in the body, metabolism serves as a powerful mediator of PAH toxicity by bioactivating and detoxifying PAH metabolites. Since enzyme expression and activity vary considerably throughout human development, we evaluated infant metabolism of PAHs as a potential contributing factor to PAH susceptibility. We measured and compared rates of phenanthrene and retene (two primary PAH constituents of woodsmoke) metabolism in human hepatic microsomes from individuals ≤21 months of age to a pooled sample (n = 200) consisting primarily of adults. We used activity-based protein profiling (ABPP) to characterize cytochrome P450 enzymes (CYPs) in the same hepatic microsome samples. Once incubated in microsomes, phenanthrene demonstrated rapid depletion. Best-fit models for phenanthrene metabolism demonstrated either 1 or 2 phases, depending on the sample, indicating that multiple enzymes could metabolize phenanthrene. We observed no statistically significant differences in phenanthrene metabolism as a function of age, although samples from the youngest individuals had the slowest phenanthrene metabolism rates. We observed slower rates of retene metabolism compared with phenanthrene also in multiple phases. Rates of retene metabolism increased in an age-dependent manner until adult (pooled) metabolism rates were achieved at ∼12 months. ABPP identified 28 unique CYPs among all samples, and we observed lower amounts of active CYPs in individuals ≤21 months of age compared to the pooled sample. Phenanthrene metabolism correlated to CYPs 1A1, 1A2, 2C8, 4A22, 3A4, and 3A43 and retene metabolism correlated to CYPs 1A1, 1A2, and 2C8 measured by ABPP and vendor-supplied substrate marker activities. These results will aid efforts to determine human health risk and susceptibility to PAHs exposure during early life.


Subject(s)
Cytochrome P-450 Enzyme System , Microsomes, Liver , Phenanthrenes , Phenanthrenes/metabolism , Humans , Cytochrome P-450 Enzyme System/metabolism , Microsomes, Liver/metabolism , Infant , Adult , Female , Male , Polycyclic Aromatic Hydrocarbons/metabolism
18.
Bioorg Chem ; 147: 107314, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38581967

ABSTRACT

The identification of novel 4-hydroxy-2-quinolone-3-carboxamide antibacterials with improved properties is of great value for the control of antibiotic resistance. In this study, a series of N-heteroaryl-substituted 4-hydroxy-2-quinolone-3-carboxamides were developed using the bioisosteric replacement strategy. As a result of our research, we discovered the two most potent GyrB inhibitors (WBX7 and WBX18), with IC50 values of 0.816 µM and 0.137 µM, respectively. Additional antibacterial activity screening indicated that WBX18 possesses the best antibacterial activity against MRSA, VISA, and VRE strains, with MIC values rangingbetween0.5and 2 µg/mL, which was 2 to over 32 times more potent than that of vancomycin. In vitro safety and metabolic stability, as well as in vivo pharmacokinetics assessments revealed that WBX18 is non-toxic to HUVEC and HepG2, metabolically stable in plasma and liver microsomes (mouse), and displays favorable in vivo pharmacokinetic properties. Finally, docking studies combined with molecular dynamic simulation showed that WBX18 could stably fit in the active site cavity of GyrB.


Subject(s)
Anti-Bacterial Agents , DNA Gyrase , Microbial Sensitivity Tests , Topoisomerase II Inhibitors , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/chemical synthesis , Humans , DNA Gyrase/metabolism , Topoisomerase II Inhibitors/pharmacology , Topoisomerase II Inhibitors/chemistry , Topoisomerase II Inhibitors/chemical synthesis , Structure-Activity Relationship , Animals , Molecular Structure , Dose-Response Relationship, Drug , Mice , Hep G2 Cells , Molecular Docking Simulation , Microsomes, Liver/metabolism , Microsomes, Liver/chemistry
19.
Drug Metab Dispos ; 52(6): 574-579, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38594080

ABSTRACT

Venomous agent X (VX) is an organophosphate acetylcholinesterase (AChE) inhibitor, and although it is one of the most toxic AChE inhibitors known, the extent of metabolism in humans is not currently well understood. The known metabolism in humans is limited to the metabolite identification from a single victim of the Osaka poisoning in 1994, which allowed for the identification of several metabolic products. VX has been reported to be metabolized in vitro by paraoxonase-1 and phosphotriesterase, although their binding constants are many orders of magnitude above the LD50, suggesting limited physiologic relevance. Using incubation with human liver microsomes (HLMs), we have now characterized the metabolism of VX and the formation of multiple metabolites as well as identified a Food and Drug Administration-approved drug [ethylenediaminetetraacetic acid (EDTA)] that enhances the metabolic rate. HLM incubation alone shows a pronounced increase in the metabolism of VX compared with buffer, suggesting that cytochrome P450-mediated metabolism of VX is occurring. We identified a biphasic decay with two distinct rates of metabolism. The enhancement of VX metabolism in multiple buffers was assessed to attempt to mitigate the effect of hydrolysis rates. The formation of VX metabolites was shown to be shifted with HLMs, suggesting a pathway enhancement over simple hydrolysis. Additionally, our investigation of hydrolysis rates in various common buffers used in biologic assays discovered dramatic differences in VX stability. The new human in vitro VX metabolic data reported points to a potential in vivo treatment strategy (EDTA) for rescue in individuals that are poisoned though enhancement of metabolism alongside existing treatments. SIGNIFICANCE STATEMENT: Venomous agent X (VX) is a potent acetylcholinesterase inhibitor and chemical weapon. To date, we do not possess a clear understanding of its metabolism in humans that would assist us in treating those exposed to it. This study now describes the human liver microsomal metabolism of VX and identifies ethylenediaminetetraacetic acid, which appears to enhance the rate of metabolism. This may provide a potential treatment option for human VX poisoning.


Subject(s)
Cholinesterase Inhibitors , Microsomes, Liver , Organothiophosphorus Compounds , Humans , Microsomes, Liver/metabolism , Organothiophosphorus Compounds/metabolism , Cholinesterase Inhibitors/metabolism , Cholinesterase Inhibitors/pharmacology , Edetic Acid/pharmacology , Edetic Acid/metabolism , Cytochrome P-450 Enzyme System/metabolism
20.
Basic Clin Pharmacol Toxicol ; 134(6): 846-857, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38664998

ABSTRACT

Fungal anthraquinones dermocybin and dermorubin are attractive alternatives for synthetic dyes but their metabolism is largely unknown. We conducted a qualitative in vitro study to identify their metabolism using human liver microsomes and cytosol, as well as recombinant human cytochrome P450 (CYP), UDP-glucuronosyltransferase (UGT) and sulfotransferase (SULT) enzymes. Additionally, liver microsomal and cytosolic fractions from rat, mouse and pig were used. Following incubations of the biocolourants with the enzymes in the presence of nicotinamide adenine dinucleotide phosphate, UDP-glucuronic acid, 3'-phosphoadenosine-5'-phosphosulfate (PAPS) or S-adenosyl methionine (SAM) to enable CYP oxidation, glucuronidation, sulfonation or methylation, we observed several oxidation and conjugation metabolites for dermocybin but none for dermorubin. Human CYP1A1, 1A2, 1B1, 2A6, 2B6, 2C8, 2C9, 2C19, 2D6, 2E1, 3A4 and 3A7 catalysed dermocybin oxidation. The formation of dermocybin glucuronides was catalysed by human UGT1A1, 1A3, 1A7, 1A8, 1A9, 1A10 and 2B15. Human SULT1B1, 1C2 and 2A1 sulfonated dermocybin. Dermocybin oxidation was faster than conjugation in human liver microsomes. Species differences were seen in dermocybin glucuronidation between human, rat, mouse and pig. In conclusion, many CYP and conjugation enzymes metabolized dermocybin, whereas dermorubin was not metabolized in human liver fractions in vitro. The results indicate that dermocybin would be metabolized in humans in vivo.


Subject(s)
Anthraquinones , Cytochrome P-450 Enzyme System , Glucuronosyltransferase , Microsomes, Liver , Microsomes, Liver/metabolism , Humans , Animals , Rats , Mice , Swine , Glucuronosyltransferase/metabolism , Cytochrome P-450 Enzyme System/metabolism , Anthraquinones/metabolism , Male , Recombinant Proteins/metabolism , Liver/metabolism , Liver/enzymology , Cytosol/metabolism , Oxidation-Reduction , Glucuronides/metabolism
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