Virtual Screening for the Discovery of Microbiome β-Glucuronidase Inhibitors to Alleviate Cancer Drug Toxicity

Anup P Challa1,2,3, Xin Hu3, Ya-Qin Zhang3

  • 1Department of Chemical and Biomolecular Engineering, Vanderbilt University, Nashville, Tennessee 37212, United States.

Insights

Researchers discovered new small-molecule inhibitors for beta-glucuronidase (βGUS) enzymes. These inhibitors could reduce serious adverse events from anti-cancer drugs, improving patient treatment adherence.

Area of Science:

  • Pharmacology and Drug Discovery
  • Microbiome Research
  • Oncology

Background:

  • First-line anti-cancer drugs often cause serious adverse events (SAEs) due to "off-target" effects, leading to poor patient adherence.
  • Gut bacteria's beta-glucuronidase (βGUS) enzymes reactivate excreted drug-glucuronide conjugates, causing dose-limiting toxicities.
  • Targeting βGUS offers a potential strategy to mitigate drug-induced gut toxicity and improve cancer treatment outcomes.

Purpose of the Study:

  • To discover novel chemical series of βGUS inhibitors using structure-based virtual high-throughput screening (vHTS).
  • To identify compounds that can prevent serious adverse events associated with standard anti-cancer therapies.
  • To explore therapeutic adjuncts targeting the human microbiome for enhanced cancer treatment.

Main Methods:

  • Development of homology models for βGUS.
  • Large-scale vHTS of nearly 400,000 compounds from the NIH chemical libraries.
  • Prioritization of compounds and subsequent in vitro biochemical assays to confirm βGUS inhibitory activity.

Main Results:

  • Identified 69 diverse compounds with positive inhibitory activity against βGUS from the vHTS campaign.
  • Achieved a hit rate of 24% from the prioritized cherry-picked compounds.
  • The identified chemical series represent promising leads for developing βGUS inhibitors.

Conclusions:

  • Novel βGUS inhibitors were successfully discovered through structure-based vHTS.
  • These inhibitors hold potential for preventing serious adverse events in cancer patients undergoing standard chemotherapy.
  • The findings support the development of microbiome-targeted therapies to improve anti-cancer drug efficacy and tolerability.

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