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Updated: Jul 9, 2026

Atomic Force Microscopy Investigations of DNA Lesion Recognition in Nucleotide Excision Repair
Published on: May 24, 2017
Single nucleotide polymorphisms of the DNA repair gene XPD/ERCC2 alter mRNA expression
Kevin J Wolfe1, Jeffrey K Wickliffe, Courtney E Hill
1Department of Preventive Medicine and Community Health, The University of Texas Medical Branch, Galveston, Texas 77555-1110, USA.
Objectives:
Epidemiological studies documented associations between single nucleotide polymorphisms (SNPs) in the nucleotide excision repair gene XPD/ERCC2 and cancer risk. Little is known, however, about the underlying mechanisms for these associations. We explored a novel mechanism that could further explain the reported risk-modifying effect of these SNPs on disease susceptibility.
Methods:
Using quantitative real-time polymerase chain reaction, we examined the relationship between three SNPs in the XPD gene (R156R in exon 6, D312N in exon 10 and K751Q in exon 23) and mRNA levels as a potential mechanism by which these SNPs could alter DNA repair capacity and affect disease risk. To further investigate the mechanism(s) by which these SNPs alter mRNA transcription levels, we performed a localized Mfold structure analysis on the mRNA sequence surrounding the studied SNPs.
Results:
All three SNPs studied, alone and in combination, significantly decreased constitutive XPD mRNA levels (P<0.003) in lymphocytes of healthy subjects. The decrease in mRNA levels was significantly greater in smokers and was exacerbated by smoking duration and intensity. The decrease was more pronounced in older than in younger subjects. The R156R and the K751Q polymorphisms were predicted to alter mRNA secondary structure, indicating that these SNPs potentially affect local folding and mRNA stability.
Conclusions:
Our results provide novel mechanistic explanations for epidemiological studies linking these SNPs to elevated cancer risk and emphasize the importance of comprehensively investigating the effect of both synonymous and nonsynonymous SNPs as risk modifiers by considering their potential effects on gene expression, protein translation and functions.
Insights
Single nucleotide polymorphisms (SNPs) in the XPD gene significantly decrease XPD mRNA levels, potentially explaining their link to cancer risk. This effect is heightened in smokers and older individuals.
Area of Science:
- Genetics
- Molecular Biology
- Cancer Research
Background:
- Epidemiological studies suggest associations between XPD/ERCC2 gene single nucleotide polymorphisms (SNPs) and cancer risk.
- The underlying molecular mechanisms for these associations remain largely unexplored.
Purpose of the Study:
- To investigate a novel mechanism linking XPD gene SNPs to cancer susceptibility.
- To explore the relationship between specific XPD SNPs and mRNA levels as a potential mediator of DNA repair capacity and disease risk.
Main Methods:
- Quantitative real-time polymerase chain reaction (qPCR) was used to assess XPD mRNA levels in relation to three XPD SNPs (R156R, D312N, K751Q).
- Mfold structure analysis was performed on mRNA sequences surrounding the SNPs to investigate effects on transcription.
- Lymphocytes from healthy subjects were analyzed.
Main Results:
- All three studied XPD SNPs significantly decreased constitutive XPD mRNA levels (P<0.003).
- The reduction in mRNA levels was more pronounced in smokers, older individuals, and was exacerbated by smoking duration and intensity.
- R156R and K751Q polymorphisms were predicted to alter mRNA secondary structure, potentially affecting mRNA stability.
Conclusions:
- The study provides novel mechanistic insights into how XPD gene SNPs may modify cancer risk by affecting gene expression.
- Findings highlight the importance of considering both synonymous and nonsynonymous SNPs and their impact on gene expression and protein function in risk assessment.
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