Deciphering the ancient and complex evolutionary history of human arylamine N-acetyltransferase genes

Etienne Patin1, Luis B Barreiro, Pardis C Sabeti

  • 1Centre National de la Recherche Scientifique, CNRS, FRE 2849, Unit of Molecular Prevention and Therapy of Human Diseases, Paris, France.

Insights

Human N-acetyltransferase (NAT) genes NAT1 and NAT2 show distinct genetic diversity patterns. A specific NAT2 haplotype (NAT2*5B) linked to slow acetylation was under positive selection, suggesting adaptation to environmental factors and influencing disease susceptibility.

Area of Science:

  • Human genetics
  • Evolutionary biology
  • Pharmacogenomics

Background:

  • N-acetyltransferase genes (NAT1 and NAT2) encode enzymes crucial for metabolizing drugs and carcinogens.
  • Functional variations in NAT genes are linked to drug reactions and cancer risk.
  • High global frequencies of NAT2 slow-acetylator mutations prompt investigation into their adaptive significance.

Purpose of the Study:

  • To investigate the role of population history and natural selection in shaping NAT1 and NAT2 genetic variation.
  • To characterize genetic diversity across 13 diverse human populations.
  • To identify specific haplotypes under selection and their functional implications.

Main Methods:

  • Resequencing and genotyping of NAT1, NAT2, and NATP genes.
  • Linkage disequilibrium mapping.
  • Sequence-based neutrality tests and Long-Range Haplotype (LRH) test.

Main Results:

  • NAT1 exhibits reduced diversity, consistent with purifying selection.
  • NAT2 shows high diversity, driven by functional variation.
  • A NAT2 haplotype (NAT2*5B), associated with slow acetylation, was identified under recent positive selection in Eurasians.

Conclusions:

  • NAT2 variation reflects adaptation to fluctuating xenobiotic environments.
  • The selected NAT2*5B haplotype may have conferred a selective advantage historically.
  • This haplotype is currently associated with increased susceptibility to bladder cancer and adverse drug reactions.

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