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Humanizing π-Class Glutathione S-Transferase Regulation in a Mouse Model Alters Liver Toxicity in Response to Acetaminophen Overdose
by
Castagna, Nicole
, De Marzo, Angelo M.
, Reichert, Zachery R.
, Henderson, Colin J.
, Biswal Shinohara, Debika
, Hicks, Jessica L.
, Yegnasubramanian, Srinivasan
, Nelson, William G.
, Netto, George
, Kwabi-Addo, Bernard
, Vaughn, Matthew P.
, Wolf, C. Roland
, Speed, Traci J.
in
Acetaminophen
/ Acetaminophen - adverse effects
/ Acetaminophen - toxicity
/ Amino acid sequence
/ Amino acids
/ Analgesics
/ Animal tissues
/ Animals
/ Apoptosis
/ Bile ducts
/ Biocatalysis - drug effects
/ Biology
/ Biomedical research
/ Bisulfite
/ Cancer
/ Carcinogens
/ Chemical and Drug Induced Liver Injury - enzymology
/ Chemical and Drug Induced Liver Injury - pathology
/ CpG islands
/ CpG Islands - genetics
/ Deoxyribonucleic acid
/ Disease Models, Animal
/ DNA
/ DNA methylation
/ DNA Methylation - drug effects
/ DNA Methylation - genetics
/ DNA sequencing
/ Drug Overdose
/ Drugs
/ Endothelial cells
/ Enzymes
/ Epithelial cells
/ Exons
/ Female
/ Gene expression
/ Gene sequencing
/ Genes
/ Glutathione
/ Glutathione S-Transferase pi - deficiency
/ Glutathione S-Transferase pi - metabolism
/ Glutathione transferase
/ Glycoproteins
/ Hepatocytes
/ Homology
/ Humans
/ Introns
/ Kinases
/ Kupffer cells
/ Liver
/ Liver - drug effects
/ Liver - pathology
/ Macrophages
/ Male
/ Medical research
/ Medicine
/ Metabolism
/ Mice
/ mRNA
/ Overdose
/ Polypeptides
/ Prostate
/ Rodents
/ Toxicity
/ Toxicology
/ Toxins
/ Transcription factors
/ Tumorigenesis
/ Xenobiotics
2011
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Humanizing π-Class Glutathione S-Transferase Regulation in a Mouse Model Alters Liver Toxicity in Response to Acetaminophen Overdose
by
Castagna, Nicole
, De Marzo, Angelo M.
, Reichert, Zachery R.
, Henderson, Colin J.
, Biswal Shinohara, Debika
, Hicks, Jessica L.
, Yegnasubramanian, Srinivasan
, Nelson, William G.
, Netto, George
, Kwabi-Addo, Bernard
, Vaughn, Matthew P.
, Wolf, C. Roland
, Speed, Traci J.
in
Acetaminophen
/ Acetaminophen - adverse effects
/ Acetaminophen - toxicity
/ Amino acid sequence
/ Amino acids
/ Analgesics
/ Animal tissues
/ Animals
/ Apoptosis
/ Bile ducts
/ Biocatalysis - drug effects
/ Biology
/ Biomedical research
/ Bisulfite
/ Cancer
/ Carcinogens
/ Chemical and Drug Induced Liver Injury - enzymology
/ Chemical and Drug Induced Liver Injury - pathology
/ CpG islands
/ CpG Islands - genetics
/ Deoxyribonucleic acid
/ Disease Models, Animal
/ DNA
/ DNA methylation
/ DNA Methylation - drug effects
/ DNA Methylation - genetics
/ DNA sequencing
/ Drug Overdose
/ Drugs
/ Endothelial cells
/ Enzymes
/ Epithelial cells
/ Exons
/ Female
/ Gene expression
/ Gene sequencing
/ Genes
/ Glutathione
/ Glutathione S-Transferase pi - deficiency
/ Glutathione S-Transferase pi - metabolism
/ Glutathione transferase
/ Glycoproteins
/ Hepatocytes
/ Homology
/ Humans
/ Introns
/ Kinases
/ Kupffer cells
/ Liver
/ Liver - drug effects
/ Liver - pathology
/ Macrophages
/ Male
/ Medical research
/ Medicine
/ Metabolism
/ Mice
/ mRNA
/ Overdose
/ Polypeptides
/ Prostate
/ Rodents
/ Toxicity
/ Toxicology
/ Toxins
/ Transcription factors
/ Tumorigenesis
/ Xenobiotics
2011
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Humanizing π-Class Glutathione S-Transferase Regulation in a Mouse Model Alters Liver Toxicity in Response to Acetaminophen Overdose
by
Castagna, Nicole
, De Marzo, Angelo M.
, Reichert, Zachery R.
, Henderson, Colin J.
, Biswal Shinohara, Debika
, Hicks, Jessica L.
, Yegnasubramanian, Srinivasan
, Nelson, William G.
, Netto, George
, Kwabi-Addo, Bernard
, Vaughn, Matthew P.
, Wolf, C. Roland
, Speed, Traci J.
in
Acetaminophen
/ Acetaminophen - adverse effects
/ Acetaminophen - toxicity
/ Amino acid sequence
/ Amino acids
/ Analgesics
/ Animal tissues
/ Animals
/ Apoptosis
/ Bile ducts
/ Biocatalysis - drug effects
/ Biology
/ Biomedical research
/ Bisulfite
/ Cancer
/ Carcinogens
/ Chemical and Drug Induced Liver Injury - enzymology
/ Chemical and Drug Induced Liver Injury - pathology
/ CpG islands
/ CpG Islands - genetics
/ Deoxyribonucleic acid
/ Disease Models, Animal
/ DNA
/ DNA methylation
/ DNA Methylation - drug effects
/ DNA Methylation - genetics
/ DNA sequencing
/ Drug Overdose
/ Drugs
/ Endothelial cells
/ Enzymes
/ Epithelial cells
/ Exons
/ Female
/ Gene expression
/ Gene sequencing
/ Genes
/ Glutathione
/ Glutathione S-Transferase pi - deficiency
/ Glutathione S-Transferase pi - metabolism
/ Glutathione transferase
/ Glycoproteins
/ Hepatocytes
/ Homology
/ Humans
/ Introns
/ Kinases
/ Kupffer cells
/ Liver
/ Liver - drug effects
/ Liver - pathology
/ Macrophages
/ Male
/ Medical research
/ Medicine
/ Metabolism
/ Mice
/ mRNA
/ Overdose
/ Polypeptides
/ Prostate
/ Rodents
/ Toxicity
/ Toxicology
/ Toxins
/ Transcription factors
/ Tumorigenesis
/ Xenobiotics
2011
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Humanizing π-Class Glutathione S-Transferase Regulation in a Mouse Model Alters Liver Toxicity in Response to Acetaminophen Overdose
Journal Article
Humanizing π-Class Glutathione S-Transferase Regulation in a Mouse Model Alters Liver Toxicity in Response to Acetaminophen Overdose
2011
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Overview
Glutathione S-transferases (GSTs) metabolize drugs and xenobiotics. Yet despite high protein sequence homology, expression of π-class GSTs, the most abundant of the enzymes, varies significantly between species. In mouse liver, hepatocytes exhibit high mGstp expression, while in human liver, hepatocytes contain little or no hGSTP1 mRNA or hGSTP1 protein. π-class GSTs are known to be critical determinants of liver responses to drugs and toxins: when treated with high doses of acetaminophen, mGstp1/2+/+ mice suffer marked liver damage, while mGstp1/2-/- mice escape liver injury.
To more faithfully model the contribution of π-class GSTs to human liver toxicology, we introduced hGSTP1, with its exons, introns, and flanking sequences, into the germline of mice carrying disrupted mGstp genes. In the resultant hGSTP1+mGstp1/2-/- strain, π-class GSTs were regulated differently than in wild-type mice. In the liver, enzyme expression was restricted to bile duct cells, Kupffer cells, macrophages, and endothelial cells, reminiscent of human liver, while in the prostate, enzyme production was limited to basal epithelial cells, reminiscent of human prostate. The human patterns of hGSTP1 transgene regulation were accompanied by human patterns of DNA methylation, with bisulfite genomic sequencing revealing establishment of an unmethylated CpG island sequence encompassing the gene promoter. Unlike wild-type or mGstp1/2-/- mice, when hGSTP1+mGstp1/2-/- mice were overdosed with acetaminophen, liver tissues showed limited centrilobular necrosis, suggesting that π-class GSTs may be critical determinants of toxin-induced hepatocyte injury even when not expressed by hepatocytes.
By recapitulating human π-class GST expression, hGSTP1+mGstp1/2-/- mice may better model human drug and xenobiotic toxicology.
Publisher
Public Library of Science,Public Library of Science (PLoS)
Subject
/ Acetaminophen - adverse effects
/ Animals
/ Biology
/ Cancer
/ Chemical and Drug Induced Liver Injury - enzymology
/ Chemical and Drug Induced Liver Injury - pathology
/ DNA
/ DNA Methylation - drug effects
/ Drugs
/ Enzymes
/ Exons
/ Female
/ Genes
/ Glutathione S-Transferase pi - deficiency
/ Glutathione S-Transferase pi - metabolism
/ Homology
/ Humans
/ Introns
/ Kinases
/ Liver
/ Male
/ Medicine
/ Mice
/ mRNA
/ Overdose
/ Prostate
/ Rodents
/ Toxicity
/ Toxins
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