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Functional characterization of the human CYP1A1 negative regulatory element: modulation of Ah receptor mediated
1Department of Pharmacology, Wayne State University School of Medicine, Detroit, MI 48201-1998, USA.
Abstract:
The mechanisms that underly the regulation of human CYP1A1 have merited considerable attention because of their association both with toxic outcomes and the etiology of several cancers. Previous work conducted in this laboratory has identified a negative regulatory element (NRE) in the 5' region of this gene that appeared to modulate CYP1A1 transcriptional activity. This NRE is present in two functional copies, a high affinity 21-bp palindrome centered at position -784, and an additional element found within a GC-rich region between position -728 and -558. In this report, the regulatory function of the NREs in the context of the CYP1A1 promoter was evaluated. This was accomplished by substituting mutated elements for the corresponding wild-type element in a vector that contained human CYP1A1 sequences positions -1140 to +59 directing the transcription of the chloramphenicol acetyltransferase reporter gene. Expression vectors containing specific mutations in each or both NREs were characterized. We show that eliminating the binding of the CYP1A1 repressor protein to one or both repressor motifs results in a significant 2- to 3-fold increase in the inducibility of CYP1A1 promoter activity. Although mutation of both sites appeared to result in an increase in inducibility over that observed with only one site mutated, the effect was not additive. Such aberrant transcriptional activity correlates with the highly inducible aryl hydrocarbon hydroxylase phenotype that is a reported marker for individuals predisposed to lung cancer. Mutation of the NRE, or more likely, the cognate repressor protein(s), may provide a genetic basis for this phenotype.
Insights
Negative regulatory elements (NREs) in the human CYP1A1 gene control its activity. Mutating these NREs significantly increases CYP1A1 inducibility, potentially explaining cancer predisposition.
Area of Science:
- Molecular Biology
- Genetics
- Toxicology
Background:
- The human CYP1A1 gene's regulation is crucial due to its links with toxic outcomes and cancer.
- Previous research identified a negative regulatory element (NRE) in the 5' region of CYP1A1.
- This NRE exists in two functional copies, influencing CYP1A1 transcriptional activity.
Purpose of the Study:
- To evaluate the regulatory function of NREs within the CYP1A1 promoter.
- To investigate the impact of NRE mutations on CYP1A1 gene inducibility.
Main Methods:
- Utilized reporter gene assays with chloramphenicol acetyltransferase (CAT) to measure promoter activity.
- Introduced specific mutations into the NREs within the CYP1A1 promoter sequence (-1140 to +59).
- Characterized expression vectors containing mutations in one or both NREs.
Main Results:
- Eliminating repressor protein binding to one or both NREs resulted in a significant 2- to 3-fold increase in CYP1A1 promoter inducibility.
- Mutating both NRE sites increased inducibility, but the effect was not additive compared to single-site mutations.
- Aberrant transcriptional activity correlated with the highly inducible aryl hydrocarbon hydroxylase phenotype.
Conclusions:
- Mutation of NREs or their associated repressor proteins may underlie the genetic basis for the highly inducible aryl hydrocarbon hydroxylase phenotype.
- This phenotype is a known marker for individuals predisposed to lung cancer.
- Understanding CYP1A1 regulation offers insights into cancer etiology and toxicological responses.