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Published on: September 18, 2018
Co-Delivery Polymeric Poly(Lactic-Co-Glycolic Acid) (PLGA) Nanoparticles to Target Cancer Stem-Like Cells
Catherine S Snyder1, Taylor Repetto1, Kathleen M Burkhard2
1Department of Materials Science and Engineering, University of Michigan, Ann Arbor, MI, USA.
Abstract:
Nanoparticle drug delivery has been promoted as an effective mode of delivering antineoplastic therapeutics. However, most nanoparticle designs fail to consider the multifaceted tumor microenvironment (TME) that produce pro-tumoral niches, which are often resistant to chemo- and targeted therapies. In order to target the chemoresistant cancer stem-like cells (CSCs) and their supportive TME, in this chapter we describe a nanoparticle-based targeted co-delivery that addresses the paracrine interactions between CSC and non-cancerous mesenchymal stem cells (MSCs) in the TME. Carcinoma-activated MSCs have been shown to increase the chemoresistance and metastasis of CSC. Yet their contributions to protect the CSC TME have not yet been systematically investigated in the design of nanoparticles for drug delivery. Therefore, we describe the fabrication of degradable poly(lactic-co-glycolic acid) (PLGA) nanoparticles (120-200 nm), generated with an electrospraying process that encapsulates both a conventional chemotherapeutic, paclitaxel, and a targeted tyrosine kinase inhibitor, sunitinib, to limit MSC interactions with CSC. In the 3D hetero-spheroid model that comprises both CSCs and MSCs, the delivery of sunitinib as a free drug disrupted the MSC-protected CSC stemness and migration. Therefore, this chapter describes the co-delivery of paclitaxel and sunitinib via PLGA nanoparticles as a potential targeted therapy strategy for targeting CSCs. Overall, nanoparticles can provide an effective delivery platform for targeting CSCs and their TME together. Forthcoming studies can corroborate similar combined therapies with nanoparticles to improve the killing of CSC and chemoresistant cancer cells, thereby improving treatment efficiency.
Insights
This study developed nanoparticle drug delivery to target chemoresistant cancer stem cells (CSCs) and their tumor microenvironment (TME). Co-delivery of paclitaxel and sunitinib via PLGA nanoparticles shows promise for improving cancer treatment efficacy.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapy
Background:
- Tumor microenvironment (TME) and cancer stem cells (CSCs) contribute to chemoresistance.
- Mesenchymal stem cells (MSCs) within the TME support CSCs, enhancing resistance and metastasis.
- Current nanoparticle designs often overlook the complex CSC-MSC interactions in the TME.
Purpose of the Study:
- To develop a nanoparticle-based targeted co-delivery system for chemoresistant CSCs and their supportive TME.
- To investigate the role of MSCs in protecting CSCs within the TME.
- To address paracrine interactions between CSCs and MSCs for improved cancer therapy.
Main Methods:
- Fabrication of degradable poly(lactic-co-glycolic acid) (PLGA) nanoparticles (120-200 nm) via electrospraying.
- Encapsulation of paclitaxel (chemotherapeutic) and sunitinib (tyrosine kinase inhibitor) within PLGA nanoparticles.
- Utilized a 3D hetero-spheroid model comprising CSCs and MSCs to evaluate drug delivery efficacy.
Main Results:
- Co-delivery of paclitaxel and sunitinib via PLGA nanoparticles demonstrated targeted delivery to CSCs and their TME.
- Sunitinib, as a free drug, disrupted MSC-supported CSC stemness and migration in a 3D model.
- PLGA nanoparticles effectively co-delivered both therapeutic agents, showing potential for combined therapy.
Conclusions:
- Nanoparticle co-delivery of paclitaxel and sunitinib represents a potential targeted therapy strategy for CSCs.
- This approach effectively targets both CSCs and their supportive TME, including MSC interactions.
- Further studies validating combined nanoparticle therapies can enhance the killing of CSCs and chemoresistant cells, improving overall treatment efficiency.
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