Engineering Remotely Triggered Liposomes to Target Triple Negative Breast Cancer

Alexandra Sneider1, Rahul Jadia2, Brandon Piel1

  • 1University of Massachusetts Lowell, Department of Chemical Engineering, Francis College of Engineering, 1 University Ave, Lowell, MA 01854, USA.

Oncomedicine
|February 9, 2017
PubMed

Insights

This study developed targeted liposomes for Triple Negative Breast Cancer (TNBC) treatment using photodynamic therapy (PDT). Folate-targeted nanoparticles delivered a photosensitive drug, showing potential for improved TNBC therapy with reduced toxicity.

Area of Science:

  • Nanotechnology
  • Biomedical Engineering
  • Oncology

Background:

  • Triple Negative Breast Cancer (TNBC) lacks targeted therapies, necessitating novel treatment strategies.
  • Chemotherapy for TNBC faces challenges with drug solubility and systemic toxicity.
  • Liposomes offer a solution for drug delivery, encapsulating various compounds and enabling targeted administration.

Purpose of the Study:

  • To develop and evaluate folate-targeted, PEGylated liposomes loaded with benzoporphyrin derivative (BPD) for photodynamic therapy (PDT) in TNBC.
  • To assess the targeting efficacy and therapeutic potential of these nanoparticles against TNBC cells.
  • To investigate the theranostic capabilities of BPD-loaded liposomes for imaging and treatment.

Main Methods:

  • Synthesis and characterization of polyethylene glycol (PEG)-coated, folate-conjugated, BPD-loaded liposomes.
  • In vitro evaluation using a metastatic breast cancer cell line (MDA-MB-231).
  • Assessment of targeting effectiveness via folate competition, fluorescence confocal imaging, and MTT assays; evaluation of BPD toxicity before and after PDT.

Main Results:

  • Reproducible synthesis of liposomes with characterized size, PDI, zeta potential, stability, and drug release kinetics.
  • Demonstrated folate-receptor-mediated targeting and enhanced cellular uptake of targeted liposomes.
  • Observed BPD-mediated cell death via PDT in vitro, with potential for reduced toxicity compared to free drug.

Conclusions:

  • Folate-targeted liposomes represent a promising nanocarrier system for delivering BPD in PDT for TNBC.
  • This approach offers a potential strategy for targeted cancer therapy, combining drug delivery, imaging, and treatment.
  • Further research may lead to novel nanoparticle-mediated therapeutic strategies for TNBC.

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