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Anticancer Efficacy of Photodynamic Therapy with Lung Cancer-Targeted Nanoparticles
Published on: December 1, 2016
A dual pH/ROS-sensitive nanoplatform blocking NETs formation and co-delivering paclitaxel for potent therapeutic
Yuan Quan1, Yan Yuan1, Kejin Chen1
1Key Laboratory of Drug Targeting and Drug Delivery System of the Education Ministry and Sichuan Province, Sichuan Engineering Laboratory for Plant-Sourced Drug and Sichuan Research Center for Drug Precision Industrial Technology, West China School of Pharmacy, Sichuan University, Chengdu 610041, P. R. China. qinglin@scu.edu.cn.
Abstract:
Triple-negative breast cancer (TNBC) is an aggressive breast cancer subtype with high recurrence rates, limited therapeutic options, and a strong propensity for spontaneous lung metastasis. Increasing evidence indicates that neutrophil extracellular traps (NETs) significantly promote TNBC progression, immune evasion, and metastatic dissemination, highlighting NET inhibition as a promising therapeutic strategy. Herein, we developed a dual pH/ROS-responsive nanoplatform (pH/ROS@(PTX/SIV)) constructed from acetylated dextran (Ace-DEX) and phenylboronic acid-modified dextran (PBAP-DEX) and further functionalized with the fibronectin-targeting peptide CREKA to achieve tumor-specific accumulation. This nanoplatform enables controlled, microenvironment-responsive release of paclitaxel (PTX) and the neutrophil elastase inhibitor sivelestat (SIV) in acidic and oxidative tumor tissues. The optimized nanoparticles exhibited uniform size, high encapsulation efficiencies, and robust dual-responsive drug release. In vitro, CREKA modification markedly enhanced cellular uptake and tumor-targeting efficiency, while the dual-loaded system showed superior cytotoxicity against TNBC cells. In orthotopic TNBC mouse models, pH/ROS@(PTX/SIV) significantly suppressed primary tumor growth, prolonged survival, and critically inhibited spontaneous lung metastasis. Mechanistically, the formulation effectively blocked NET formation both in isolated primary neutrophils and in tumor tissues, thereby disrupting NET-mediated pro-metastatic signaling. Furthermore, the nanoplatform displayed favorable systemic safety with negligible organ toxicity. This dual-responsive, NET-modulating nanoplatform provides a potent and safe therapeutic strategy for combating TNBC and preventing its metastasis, offering strong potential for clinical translation.
Insights
This study presents a novel nanoplatform that targets triple-negative breast cancer (TNBC) and inhibits neutrophil extracellular traps (NETs). The dual-drug delivery system effectively suppresses tumor growth and prevents lung metastasis, offering a promising new therapy for TNBC.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Triple-negative breast cancer (TNBC) is aggressive with poor prognosis.
- Neutrophil extracellular traps (NETs) significantly drive TNBC progression and metastasis.
- Targeting NETs presents a potential therapeutic strategy for TNBC.
Purpose of the Study:
- To develop and evaluate a dual pH/ROS-responsive nanoplatform for targeted TNBC therapy.
- To investigate the nanoplatform's ability to inhibit NET formation and prevent lung metastasis.
- To assess the safety and efficacy of the nanoplatform in preclinical TNBC models.
Main Methods:
- Constructed a dual pH/ROS-responsive nanoplatform (pH/ROS@(PTX/SIV)) using acetylated dextran and phenylboronic acid-modified dextran.
- Functionalized nanoparticles with CREKA peptide for tumor-specific accumulation.
- Evaluated nanoparticle characteristics, drug release kinetics, in vitro cytotoxicity, and in vivo efficacy in orthotopic TNBC mouse models.
- Assessed NET inhibition and systemic toxicity.
Main Results:
- Optimized nanoparticles showed uniform size, high drug encapsulation, and dual-responsive release.
- CREKA modification enhanced cellular uptake and tumor targeting.
- The dual-loaded nanoplatform demonstrated superior cytotoxicity against TNBC cells in vitro.
- In vivo studies showed significant suppression of primary tumor growth, prolonged survival, and inhibited lung metastasis.
- The formulation effectively blocked NET formation and exhibited favorable safety profiles.
Conclusions:
- The developed dual-responsive, NET-modulating nanoplatform is a potent and safe therapeutic strategy for TNBC.
- This approach effectively inhibits TNBC progression and metastasis by targeting NETs.
- The nanoplatform shows significant potential for clinical translation in treating TNBC.

