Toxicity of antiviral nucleoside analogs and the human mitochondrial DNA polymerase

A A Johnson1, A S Ray, J Hanes

  • 1Institute for Cellular and Molecular Biology, University of Texas, Austin, Texas 78712, USA.

Insights

Mitochondrial polymerase (Pol gamma) incorporation and removal kinetics explain nucleoside analog toxicity in AIDS treatment. High incorporation and low removal rates correlate with increased toxicity, aiding new drug screening.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Pharmacology

Background:

  • Nucleoside analogs are crucial in treating HIV/AIDS.
  • Mitochondrial toxicity is a significant clinical concern with these drugs.
  • Mitochondrial polymerase (Pol gamma) is implicated in incorporating these analogs.

Purpose of the Study:

  • To investigate the role of mitochondrial polymerase (Pol gamma) in the toxicity of nucleoside analogs.
  • To kinetically analyze the incorporation and removal of FDA-approved and experimental nucleoside analogs by Pol gamma.
  • To establish a predictive model for nucleoside analog toxicity based on enzymatic incorporation and removal rates.

Main Methods:

  • Utilized recombinant, exonuclease-deficient human Pol gamma holoenzyme.
  • Performed single turnover kinetic studies to determine binding (K(d)/K(m)) and catalytic (k(pol)/k(cat)) rates.
  • Calculated specificity constants (k(cat)/K(m)) and measured exonuclease removal rates for various nucleoside analog triphosphates.

Main Results:

  • Specificity constants for analog incorporation varied over 500,000-fold, with ddC > ddA (ddI) > d4T showing highest values.
  • Higher toxicity of d4T, ddC, and ddA correlated with tighter binding to Pol gamma.
  • Exonuclease removal rates differed significantly, with ddC removal being extremely slow (<0.00002 s(-1)) and FIAU being rapidly and stably incorporated.

Conclusions:

  • The combination of high incorporation rates and inefficient exonuclease removal by Pol gamma contributes to the toxicity of certain nucleoside analogs (e.g., ddC, ddI).
  • Efficient excision of analogs like (-)3TC, CBV, and AZT may contribute to their lower toxicity profiles.
  • A novel toxicity index integrating incorporation and removal rates can rapidly screen new analogs for potential clinical toxicity.

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