Anti-cancer activity of nitrones and observations on mechanism of action

Robert A Floyd1, Hema K Chandru, Ting He

  • 1Merrick Foundation Chair in Aging Research, Head Experimental Therapeutics Reasearch Program, Oklahoma Medical Research, Foundation, Oklahoma City, 73104 USA. robert-floyd@omrf.org

Insights

Nitrone compounds like PBN and OKN-007 show anti-cancer activity in models of liver, glioma, and colon cancer. OKN-007, previously tested for stroke, demonstrates potent oral activity against established gliomas.

Area of Science:

  • Oncology
  • Medicinal Chemistry
  • Pharmacology

Background:

  • Nitrone compounds, including α-phenyl-tert-butylnitrone (PBN), exhibit anti-cancer properties.
  • PBN derivatives, such as 2,4-disulfophenyl-tert-butylnitrone (OKN-007), are being investigated for their therapeutic potential.

Purpose of the Study:

  • To summarize observations of PBN-nitrones in experimental cancer models.
  • To explore the mechanistic basis of PBN-nitrones' anti-cancer activity.

Main Methods:

  • Evaluation in rat choline deficiency liver cancer, rat C6 glioma, and mouse APC(Min/+) colon cancer models.
  • Assessment of OKN-007's efficacy in treating established rat gliomas.
  • Analysis of compound properties and potential mechanisms of action.

Main Results:

  • PBN and OKN-007 demonstrate anti-cancer activity across multiple experimental models.
  • OKN-007, previously found safe in human stroke trials, shows potent oral efficacy against fully formed gliomas.
  • Potential mechanisms include NO production suppression, protein S-nitrosylation, and NF-κB inhibition.

Conclusions:

  • PBN-nitrones represent a promising class of anti-cancer agents.
  • Further research into their mechanisms may reveal novel therapeutic strategies for various cancers.
  • OKN-007's safety profile and demonstrated glioma activity warrant continued investigation.

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