Targeting angiogenesis with integrative cancer therapies

Donald R Yance1, Stephen M Sagar

  • 1Center for Natural Healing, Ashland, Oregon, USA.

Insights

Natural health products (NHPs) with antiangiogenic properties show promise in cancer management by targeting tumor growth pathways and reducing metastasis. Further research is needed to optimize combinations and clinical applications.

Area of Science:

  • Integrative oncology
  • Natural product chemistry
  • Cancer biology

Background:

  • Cancer progression relies on multiple biochemical and physiological pathways, including angiogenesis.
  • Natural health products (NHPs) often possess antiangiogenic properties alongside other anticancer activities.
  • Traditional herbal medicine offers a rich source of compounds with potential anticancer effects.

Purpose of the Study:

  • To review NHPs with significant antiangiogenic activity for cancer management.
  • To explore the diverse molecular targets of these NHPs beyond angiogenesis.
  • To discuss the potential of NHPs as biological response modifiers and adaptogens in cancer therapy.

Main Methods:

  • Literature review of NHPs with documented antiangiogenic and anticancer activities.
  • Analysis of traditional uses and laboratory evidence for selected herbs.
  • Discussion of molecular pathways targeted by NHPs, including EGFR, HER-2/neu, COX-2, NF-kB, and Bcl-2.

Main Results:

  • Numerous NHPs demonstrate antiangiogenic effects through multiple mechanisms, including gene expression and enzyme activity modulation.
  • Identified NHPs include Artemisia annua, Viscum album, Curcuma longa, resveratrol, green tea, and Panax ginseng.
  • NHPs target key cancer pathways such as angiogenesis, EGFR, and inflammatory responses.

Conclusions:

  • NHPs with antiangiogenic activity offer a multi-targeted approach to cancer management.
  • Synergistic combinations of NHPs may enhance efficacy and reduce toxicity.
  • Further clinical trials are required to establish optimal dosing, combinations, and safety profiles for NHPs in cancer therapy.

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