Drug screening in human physiologic medium identifies uric acid as an inhibitor of rigosertib efficacy

Vipin Rawat1, Patrick DeLear2, Prarthana Prashanth1

  • 1Department of Physiology and Biophysics, University of Illinois College of Medicine, University of Illinois Cancer Center, Chicago, IL.

Insights

Cancer drug effectiveness changes dramatically with physiological nutrient levels. Uric acid in human plasma inhibits rigosertib by interfering with microtubule destabilization, explaining clinical trial failures.

Area of Science:

  • Oncology
  • Cell Biology
  • Pharmacology

Background:

  • Traditional cell culture media use non-physiological nutrient levels, impacting cancer cell responses to therapies.
  • Understanding nutrient-dependent therapeutic responses is crucial for effective cancer treatment.

Approach:

  • Drug screening was performed in human plasma-like medium (HPLM) to evaluate physiological nutrient effects.
  • Investigated nutrient-dependent drug sensitivity and mechanisms of action for various compounds.

Key Points:

  • Physiological nutrient levels significantly altered cancer cell sensitivity to multiple FDA-approved and clinical trial drugs.
  • Rigosertib's microtubule-destabilizing activity was inhibited by uric acid, a waste product abundant in human plasma.
  • Structural modeling suggests uric acid acts as an uncompetitive inhibitor by interacting with the tubulin-rigosertib complex.

Conclusions:

  • Uric acid's inhibitory effect on rigosertib provides a potential explanation for the drug's failure in phase 3 clinical trials.
  • Employing physiological media like HPLM in vitro yields results more predictive of human therapeutic responses.

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