Impact of Genetic Variants in the Nicotine Metabolism Pathway on Nicotine Metabolite Levels in Smokers

Author:

Perez-Paramo Yadira X.1ORCID,Watson Christy J.W.1ORCID,Chen Gang1ORCID,Thomas Claire E.23ORCID,Adams-Haduch Jennifer2ORCID,Wang Renwei2ORCID,Khor Chiea Chuen456ORCID,Koh Woon-Puay78ORCID,Nelson Heather H.910ORCID,Yuan Jian-Min23ORCID,Lazarus Philip1ORCID

Affiliation:

1. 1Department of Pharmaceutical Sciences, College of Pharmacy and Pharmaceutical Sciences, Washington State University, Spokane, Washington.

2. 2Division of Cancer Control and Population Sciences, UPMC Hillman Cancer Center, University of Pittsburgh, Pittsburgh, Pennsylvania.

3. 3Department of Epidemiology, Graduate School of Public Health, University of Pittsburgh, Pittsburgh, Pennsylvania.

4. 4Genome Institute of Singapore, Agency for Science, Technology and Research, Singapore, Singapore.

5. 5Singapore Eye Research Institute, Singapore, Singapore.

6. 6Eye Academic Clinical Program, Duke-NUS Medical School, Singapore, Singapore.

7. 7Health Services and Systems Research, Duke-NUS Medical School Singapore, Singapore, Singapore.

8. 8Saw Swee Hock School of Public Health, National University of Singapore, Singapore, Singapore.

9. 9Masonic Cancer Center, University of Minnesota, Minneapolis, Minnesota.

10. 10Division of Epidemiology and Community Health, School of Public Health, University of Minnesota, Minneapolis, Minnesota.

Abstract

Abstract Background: Nicotine metabolism is a major factor in nicotine dependence, with approximately 70% to 80% of nicotine metabolized to cotinine in Caucasians. Cotinine formation is catalyzed primarily by CYP2A6, which also converts cotinine to trans-3′-hydroxycotinine (3HC). The goal of the present study was to examine the effects of CYP2A6 deficiency on nicotine metabolism profiles in vivo and the importance of genetic variants in nicotine-metabolizing enzyme genes on urinary nicotine metabolites levels. Methods: Urine samples from 722 smokers who participated in the Singapore Chinese Health Study were analyzed using UPLC-MS/MS to detect nicotine and eight of its urinary metabolites, and a total of 58 variants in 12 genes involved in nicotine metabolism were investigated in 475 of these subjects with informative genotyping data. Results: Urine samples stratified by the ratio of 3HC/cotinine exhibited a 7-fold increase in nicotine-N’-oxide, a 6-fold increase in nicotine-Glucuronide (Gluc), and a 5-fold decrease in 3HC-Gluc when comparing the lower versus upper 3HC/cotinine ventiles. Significant (P < 0.0001) associations were observed between functional metabolizing enzyme genotypes and levels of various urinary nicotine metabolites, including CYP2A6 genotype and levels of nicotine, nicotine-Gluc, nicotine-N’-oxide and 3HC, UGT2B10 genotype and levels of cotinine, nicotine-Gluc and cotinine-Gluc, UGT2B17 genotype and levels of 3HC-Gluc, FMO3 genotype and levels of nicotine-N’-oxide, and CYP2B6 genotype and levels of nicotine-N’-oxide and 4-hydroxy-4-(3-pyridyl)-butanoic acid. Conclusions: These data suggest that several pathways are important in nicotine metabolism. Impact: Genotype differences in several nicotine-metabolizing enzyme pathways may potentially lead to differences in nicotine dependence and smoking behavior and cessation.

Funder

National Institute of Environmental Health Sciences

National Cancer Institute

Fulbright Association

National Medical Research Council

Publisher

American Association for Cancer Research (AACR)

Subject

Oncology,Epidemiology

Reference74 articles.

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2. Characterization of CYP2A6 involved in 3'-hydroxylation of cotinine in human liver microsomes;Nakajima;J Pharmacol Exp Ther,1996

3. Glucuronidation of nicotine and cotinine by UGT2B10: loss of function by the UGT2B10 Codon 67 (Asp/Tyr) polymorphism;Chen;Cancer Res,2007

4. Glucuronidation of trans-3'-hydroxycotinine by UGT2B17 and UGT2B10;Chen;Pharmacogen Genomics,2012

5. Stereoselective metabolism of (S)-(-)-nicotine in humans: formation of trans-(S)-(-)-nicotine N-1'-oxide;Park;Chem Res Toxicol,1993

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