The influence of ABCG2 polymorphism on erlotinib efflux in the K562 cell line

Anna Svedberg1, Lianne Jacobs1, Svante Vikingsson1,2

  • 1Clinical Pharmacology, Division of Drug Research, Department of Medical and Health Sciences, Linköping University, Linköping, Sweden.

Insights

Single nucleotide polymorphisms in the ABCG2 gene affect erlotinib transport. The ABCG2 34G>A variant shows higher erlotinib efflux than wild-type, impacting drug pharmacokinetics.

Area of Science:

  • Pharmacogenomics
  • Molecular Biology
  • Cancer Therapeutics

Background:

  • Interindividual variability in erlotinib pharmacokinetics and toxicity is significant.
  • The multidrug resistance protein ABCG2 is a key transporter of erlotinib.
  • Single nucleotide polymorphisms (SNPs) in ABCG2 are potential contributors to this variability.

Purpose of the Study:

  • To investigate the impact of wild-type (wt) ABCG2 and specific ABCG2 SNPs (34 G>A, 421 C>A) on erlotinib efflux.
  • To characterize erlotinib transport activity in engineered K562 cell lines.

Main Methods:

  • K562 cells were transduced with vectors expressing ABCG2 wt, ABCG2 SNPs (34 G>A, 421 C>A), or an empty vector.
  • ABCG2 expression was confirmed via flow cytometry after magnetic cell sorting.
  • Intracellular erlotinib concentrations were quantified using LC-MS/MS after drug incubation.

Main Results:

  • ABCG2 wt and the 34G>A SNP significantly mediated erlotinib efflux compared to control cells (P ≤ .001).
  • The ABCG2 34G>A variant exhibited higher erlotinib transport capacity than ABCG2 wt (P = .024).
  • No significant difference in erlotinib transport was observed for the 421 C>A SNP.

Conclusions:

  • Genetic variations in the ABCG2 gene influence erlotinib transport.
  • The ABCG2 34G>A polymorphism may contribute to interindividual differences in erlotinib pharmacokinetics and clinical outcomes.

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