Targeting of the breast cancer microenvironment with a potent and linkable oxindole based antiangiogenic small

Orestis Argyros1, Theodoros Karampelas1, Aimilia Varela2

  • 1Division of Pharmacology-Pharmacotechnology, Biomedical Research Foundation Academy of Athens, Athens, 11527, Greece.

Oncotarget
|April 20, 2017
PubMed

Insights

A novel sunitinib analogue, SAP, shows efficacy in preclinical breast cancer models. This targeted antiangiogenic molecule offers improved tumor accumulation and reduced toxicity compared to sunitinib.

Area of Science:

  • Oncology
  • Pharmacology
  • Biomedical Engineering

Background:

  • Antiangiogenic small molecules like sunitinib have shown limited efficacy in breast cancer due to off-target toxicity.
  • There is a need for targeted antiangiogenic therapies with improved pharmacological properties.

Purpose of the Study:

  • To design and preclinically evaluate a novel sunitinib analogue, SAP, for targeted breast cancer therapy.
  • To assess SAP's pharmacological properties, efficacy, and toxicity in preclinical models.

Main Methods:

  • In silico and in vitro studies for target engagement (VEGFR2).
  • Pharmacokinetic and biodistribution studies in mice (LC-MS/MS).
  • Efficacy testing in breast cancer xenograft and syngeneic models; pharmacodynamic evaluation (phosphokinase assays, immunohistochemistry); toxicity assessment (cardiac and blood).

Main Results:

  • SAP demonstrated retained antiangiogenic and cytotoxic properties with enhanced blood exposure and tumor accumulation versus sunitinib.
  • SAP was efficacious across all tested breast cancer models.
  • SAP treatment led to decreased tumor markers (Ki-67, CD31) and reduced signaling pathway activation (p-AKT, p-ERK, p-S6), with negligible hematotoxicity and manageable cardiac effects.

Conclusions:

  • SAP is a rationally designed, conjugatable antiangiogenic small molecule.
  • SAP shows significant preclinical efficacy in breast cancer models.
  • SAP represents a promising candidate for targeted breast cancer therapy with an improved safety profile.

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