Theoretical modeling of collaterally sensitive drug cycles: shaping heterogeneity to allow adaptive therapy

Nara Yoon1,2, Nikhil Krishnan3, Jacob Scott4

  • 1Department of Translational Hematology and Oncology Research, Cleveland Clinic, Cleveland, OH, USA.

Insights

This study models sequential drug therapies using collaterally sensitive drugs. Optimal strategies involve an initial tumor shaping period followed by adaptive therapy to maintain subpopulations.

Area of Science:

  • Mathematical Biology
  • Cancer Research
  • Pharmacology

Background:

  • Previous work focused on optimal therapeutic strategies with two collaterally sensitive drugs.
  • Collateral sensitivity describes a phenomenon where resistance to one drug induces sensitivity to another.

Purpose of the Study:

  • To extend the exploration of optimal therapeutic strategies to sequential drug therapies with an arbitrary number of drugs (N).
  • To develop a dynamical model for sequential drug therapies with N drugs.

Main Methods:

  • Developed a dynamical model classifying tumor cells into N subpopulations, each with specific resistance/sensitivity profiles to N drugs.
  • Simulated sequential drug administration with adaptive switching based on drug efficacy.

Main Results:

  • Identified an initial 'shaping' period where the tumor composition is optimized for equal drug efficacy.
  • Demonstrated that after shaping, rapid drug switching maintains subpopulations, consistent with adaptive therapy principles.
  • Developed methodologies for administering optimal regimens with limited drug parameter and population data.

Conclusions:

  • Optimal sequential drug therapy involves an initial tumor shaping phase followed by adaptive drug switching.
  • The developed methodologies allow for effective adaptive therapy even with incomplete clinical or experimental data.

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