Emerging anti-cancer molecular mechanisms of aminobisphosphonates

Michele Caraglia1, Daniele Santini, Monica Marra

  • 1Department of Experimental Oncology, Experimental Pharmacology Unit, National Institute of Tumours, Fondazione G. Pascale, Via Mariano Semmola, 80131 Naples, Italy. michele.caraglia@fondazionepascale.it

Insights

Aminobisphosphonates (NBPs) show direct anti-cancer effects by targeting cellular pathways involved in tumor growth and survival. Further research is needed to fully understand their molecular targets and optimize anti-cancer strategies.

Area of Science:

  • Oncology
  • Pharmacology
  • Molecular Biology

Background:

  • Bone metastases are prevalent in advanced breast and prostate cancers.
  • Aminobisphosphonates (NBPs) are used for their anti-resorptive properties in bone metastases.
  • Emerging evidence suggests NBPs possess direct anti-tumour effects.

Purpose of the Study:

  • To review the metabolic pathways targeted by NBPs.
  • To explore the direct anti-cancer mechanisms of NBPs.
  • To discuss clinical studies, pharmacokinetic challenges, and pre-clinical interactions of NBPs.

Main Methods:

  • Literature review of metabolic pathways and prenylation processes.
  • Analysis of studies on NBP anti-neoplastic actions (apoptosis, cell cycle, invasion, migration, angiogenesis).
  • Review of clinical trials on skeletal-related events and pharmacokinetic studies.

Main Results:

  • NBPs may target prenylation of small GTP-binding proteins, affecting tumor cell survival and proliferation.
  • Reported anti-neoplastic effects include apoptosis induction, cell cycle arrest, and reduced invasion, migration, and angiogenesis.
  • Clinical studies confirm NBP efficacy in preventing skeletal-related events; liposomal formulations may improve pharmacokinetics.

Conclusions:

  • NBPs exhibit direct anti-cancer effects through multiple mechanisms, potentially targeting prenylation pathways.
  • While effective against skeletal-related events, the precise molecular targets of NBPs remain to be fully elucidated.
  • Further technological advancements are required to identify NBP targets and develop novel anti-cancer strategies.

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