Triple-negative breast cancer targeting and killing by EpCAM-directed, plasmonically active nanodrug systems

Samir V Jenkins1, Zeid A Nima2, Kieng B Vang2

  • 11Department of Radiation Oncology, University of Arkansas for Medical Sciences, Little Rock, AR USA.

Insights

Researchers developed a novel nanodrug delivery system targeting EpCAM for triple-negative breast cancer. This system shows enhanced tumor targeting and drug delivery, offering a promising theranostic approach.

Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Oncology

Background:

  • Triple-negative breast cancer (TNBC) lacks specific therapeutic targets like estrogen or Her2 receptors.
  • Targeted drug delivery systems are crucial for effective TNBC treatment.
  • Epithelial cell adhesion/activating molecule (EpCAM) is a potential target for TNBC therapy.

Purpose of the Study:

  • To engineer and evaluate a novel nanodrug delivery system for TNBC.
  • To target EpCAM-expressing TNBC cells using silver-coated gold nanorods (AuNR/Ag).
  • To assess the theranostic capabilities of the AuNR/Ag/Dox-EpCAM system.

Main Methods:

  • Fabrication of silver-coated gold nanorods (AuNR/Ag) functionalized with EpCAM antibodies.
  • Loading of doxorubicin (Dox) onto the AuNR/Ag/Dox-EpCAM system.
  • In vitro efficacy testing using 4T1 and MDA-MD-231 TNBC cell lines.
  • In vivo targeting and uptake assessment using multimodal imaging (SERS, photoacoustic microscopy) and ICP-MS.

Main Results:

  • AuNR/Ag/Dox-EpCAM demonstrated specific targeting of EpCAM-expressing tumors.
  • Effective dose (ED50) for 4T1 cells (high EpCAM) was 3 μM, and for MDA-MD-231 cells (low EpCAM) was 110 μM.
  • Targeted nanoparticles showed significantly higher uptake in EpCAM-expressing cells and tumors compared to untargeted ones (p < 0.05).
  • The AuNR/Ag system allowed for simultaneous detection via SERS and photoacoustic microscopy.

Conclusions:

  • The developed EpCAM-targeted nanodrug system is a viable theranostic for TNBC.
  • This platform offers improved multimodal imaging capabilities for enhanced drug delivery.
  • Potential for broader application in delivering other chemotherapeutics for various cancers.

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