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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.
Abstract:
Triple Negative Breast Cancer (TNBC) continues to present a challenge in the clinic, as there is still no approved targeted therapy. TNBC is the worst sub-type of breast cancer in terms of prognosis and exhibits a deficiency in estrogen, progesterone, and human epidermal growth factor 2 (HER2) receptors. One possible option for the treatment of TNBC is chemotherapy. The issue with many chemotherapy drugs is that their effectiveness is diminished due to poor water solubility, and the method of administration directly or with a co-solvent intravenously can lead to an increase in toxicity. The issues of drug solubility can be avoided by using liposomes as a drug delivery carrier. Liposomes are engineered, biological nanoconstructs that possess the ability to encapsulate both hydrophobic and hydrophilic drugs and have been clinically approved to treat cancer. Specific targeting of cancer cell receptors through the use of ligands conjugated to the surface of drug-loaded liposomes could lessen damage to normal, healthy tissue. This study focuses on polyethylene glycol (PEG)-coated, folate conjugated, benzoporphyrin derivative (BPD)-loaded liposomes for treatment via photodynamic therapy (PDT). The folate receptor is over expressed on TNBC cells so these liposomes are targeted for greater uptake into cancer cells. PDT involves remotely irradiating light at 690 nm to trigger BPD, a hydrophobic photosensitive drug, to form reactive oxygen species that cause tumor cell death. BPD also displays a fluorescence signal when excited by light making it possible to image the fluorescence prior to PDT and for theranostics. In this study, free BPD, non-targeted and folate-targeted PEGylated BPD-loaded liposomes were introduced to a metastatic breast cancer cell line (MDA-MB-231) in vitro. The liposomes were reproducibly synthesized and characterized for size, polydispersity index (PDI), zeta potential, stability, and BPD release kinetics. Folate competition tests, fluorescence confocal imaging, and MTT assay were used to observe and quantify targeting effectiveness. The toxicity of BPD before and after PDT in monolayer and 3D in vitro cultures with TNBC cells was observed. This study may contribute to a novel nanoparticle-mediated approach to target TNBC using PDT.
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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