A mathematical feasibility argument for the use of aptamers in chemotherapy and imaging

Khalid Boushaba1, Howard Levine, Marit Nilsen Hamilton

  • 1Department of Mathematics, Iowa State University, Ames, IA 50011, USA. boushaba@iastate.edu

Insights

Intracellular RNA aptamers can enhance drug delivery into cancer cells by acting as a

Area of Science:

  • Drug discovery and development
  • Molecular biology
  • Pharmacokinetics

Background:

  • Drug design faces challenges in achieving optimal function and efficient partitioning into target cellular compartments.
  • Cancer cells' multidrug resistance transporters necessitate higher extracellular drug concentrations for effective intracellular drug levels.
  • Current strategies like cyclodextrins have limitations in increasing extracellular drug concentrations.

Purpose of the Study:

  • To propose and demonstrate the principle of using intracellular RNA aptamers as a 'pull' mechanism to increase intracellular drug concentrations.
  • To investigate how intracellular aptamers can enhance drug transport across cell membranes and improve drug efficacy.
  • To explore the potential of aptamers for a dual role in increasing inhibitor effectiveness and imaging aptamer-expressing cells.

Main Methods:

  • Development of a mathematical model to simulate drug-enzyme interactions and the effect of intracellular aptamers.
  • Analysis of drug (inhibitor) distribution, enzyme binding, and equilibrium shifts.
  • Computational simulation to evaluate the proposed aptamer-based drug delivery strategy.

Main Results:

  • Intracellular aptamers can increase the efficiency of inhibitor transport into cells.
  • Optimal aptamer performance requires binding affinity comparable to the target enzyme and high cytoplasmic diffusibility.
  • Simulations confirm that aptamers can drive the drug-enzyme equilibrium to enhance intracellular drug concentrations.

Conclusions:

  • Intracellular RNA aptamers offer a novel 'pull' strategy to overcome drug resistance and improve drug delivery.
  • The efficacy of this approach is dependent on specific aptamer-enzyme binding and diffusion characteristics.
  • This strategy holds promise for enhancing cancer treatment and enabling targeted cell imaging.