Characterization of potent and selective iodonium-class inhibitors of NADPH oxidases

Jiamo Lu1, Prabhakar Risbood2, Charles T Kane3

  • 1Center for Cancer Research, National Cancer Institute, Bethesda, MD 20892, USA.

Insights

Researchers developed novel diphenylene iodonium (DPI) analogs to inhibit NADPH oxidases (NOXs) in cancer. Four analogs showed potent anticancer activity, with two demonstrating enhanced inhibition of DUOX2, offering a new therapeutic strategy for NOX-driven tumors.

Area of Science:

  • Biochemistry
  • Pharmacology
  • Oncology

Background:

  • NADPH oxidases (NOXs) are implicated in inflammation and cancer progression.
  • Existing NOX inhibitors have limited clinical success due to efficacy and bioavailability issues.
  • Diphenylene iodonium (DPI) is a known NOX inhibitor, but requires optimization.

Purpose of the Study:

  • To synthesize and evaluate novel DPI analogs with improved solubility and functionalization for enhanced NOX inhibition.
  • To assess the anticancer efficacy and specificity of these analogs against colon cancer cells and specific NOX isoforms.

Main Methods:

  • Synthesis of 36 DPI analogs focusing on solubility and functionalization.
  • Evaluation of inhibitory activity using cell viability and clonogenic assays on HT-29 colon cancer cells.
  • Assessment of reactive oxygen species (ROS) generation inhibition using luminescence and Amplex Red assays in cells expressing specific NOX isoforms.

Main Results:

  • Four DPI analogs (NSCs 740104, 751140, 734428, 737392) demonstrated potent, nanomolar inhibition of HT-29 cell growth and ROS production.
  • Analogs NSC 737392 and 734428 showed >10-fold higher activity against DUOX2-overexpressing cells compared to others.
  • A novel analog, NSC 780521, was synthesized with optimized potency against DUOX2.

Conclusions:

  • Novel iodonium analogs exhibit significant anticancer activity and potent ROS inhibition.
  • Specific analogs demonstrate improved potency against DUOX2, suggesting targeted therapeutic potential.
  • These optimized DPI analogs represent a promising new class of agents for treating NOX-driven cancers.

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