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Isolation of Primary Mouse Hepatocytes for Nascent Protein Synthesis Analysis by Non-radioactive L-azidohomoalanine Labeling Method
Published on: October 23, 2018
PPAR alpha-mediated responses in the rodent liver: a holistic biochemical view
S Chevalier1, N Macdonald, R A Roberts
1Pfizer-Discovery Support Laboratory, Z. I. de Poce sur Cisse, BP 159, AMBOISE, 37401, France. Stephan.Chevalier@pfizer.com
Abstract:
Carcinogenesis through the direct action of genotoxic, DNA damaging chemicals is an established and well-studied paradigm. As yet there are no short term tests available for non-genotoxic rodent carcinogens that do not damage DNA but cause liver tumours in long term rodent bioassays. A key aim is to develop short term in vitro screens for the detection of nongenotoxic carcinogens, and this requires knowledge of the mode or mechanism of action of this class of chemicals. The largest and most chemically diverse family of non-genotoxic hepatocarcinogens is the peroxisome proliferators (PPs) such as hypolipidaemic fibrate drugs, plasticizers used in clingwrap/medical tubing and certain pesticides and solvents. PPs mediate their biological responses via activation of the transcription factor PPAR alpha (peroxisome proliferator activated receptor alpha), a member of the nuclear hormone receptor superfamily. PPAR alpha activation is responsible for the pleiotropic effects of PPs in rodent liver such as the induction of enzymes of the b-oxidation pathway, hepatocyte DNA synthesis, liver enlargement and tumourigenesis. Although much is known, we are far from defining the key cell cycle regulating targets of PPs, due perhaps to past limitations of technology. The technology of proteomics allows quantitative measurement of the expression levels of potentially thousands of individual genes at the protein level on exposure to toxic insult. This is predicted to revolutionise the way many biological systems are investigated. Here we review the current knowledge of proteins involved in the response to peroxisome proliferators and describe the impact of proteomics in this field.
Insights
Developing short-term tests for non-genotoxic carcinogens, like peroxisome proliferators (PPs), is crucial. Proteomics offers a new way to understand how PPs cause liver tumors by analyzing protein changes.
Area of Science:
- Toxicology
- Molecular Biology
- Biochemistry
Background:
- Genotoxic carcinogens are well-understood, but non-genotoxic carcinogens lack short-term detection methods.
- Non-genotoxic rodent carcinogens can cause liver tumors without damaging DNA.
- Peroxisome proliferators (PPs) are a major class of non-genotoxic hepatocarcinogens, acting via PPAR alpha activation.
Purpose of the Study:
- To develop in vitro screens for non-genotoxic carcinogens.
- To understand the mechanisms of action for non-genotoxic hepatocarcinogens.
- To review the role of proteins in the response to peroxisome proliferators and the impact of proteomics.
Main Methods:
- Review of current knowledge on proteins involved in the peroxisome proliferator response.
- Discussion of the application of proteomics in studying toxic insult.
- Analysis of PPAR alpha activation and its downstream effects.
Main Results:
- Peroxisome proliferator activated receptor alpha (PPAR alpha) activation leads to pleiotropic effects in rodent liver.
- These effects include enzyme induction, DNA synthesis, liver enlargement, and tumor formation.
- Proteomics enables quantitative measurement of protein expression changes in response to toxic agents.
Conclusions:
- Understanding the key cell cycle regulating targets of PPs is essential for developing predictive assays.
- Proteomics is a revolutionary technology for investigating biological systems and understanding carcinogenesis.
- Further research using proteomics can advance the detection and understanding of non-genotoxic carcinogens.
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