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A novel targeted multifunctional nanoplatform for visual chemo-hyperthermia synergy therapy on metastatic lymph nodes
Weiwei Liu1, Xiaoping Ye1, Lingyun He1
1Chongqing Key Laboratory of Ultrasound Molecular Imaging, Institute of Ultrasound Imaging, Department of Ultrasound, The Second Affiliated Hospital of Chongqing Medical University, Chongqing, 400010, People's Republic of China.
Background:
Distant metastasis to vital organs is the major contributor to breast cancer mortality, and regional lymph node metastasis is an important facilitator of distant metastasis and recurrence in this cancer. The early diagnosis and precise treatment of lymph node metastasis are crucial for staging and prognosis in breast cancer. Herein, we report a visualized precision medicine nanoplatform of metastatic lymph nodes for ultrasonic/photoacoustic (US/PA) dual modal imaging-guided in situ targeted hyperthermia-combined chemotherapy.
Results:
Carbon nanoparticles (CNs), approved by the China Food and Drug Administration, were loaded with docetaxel and rationally combined with anti-hypoxia-inducible factor 1α antibody-modified poly (lactic-co-glycolic acid) (PLGA) nanoparticles to achieve the combination of passive targeting at the lymph nodes and intracellular targeting at HIF 1α factor. The accumulation and retention of nanoparticles in metastatic lymph nodes via lymphatic delivery were enhanced. Docetaxel could be effectively offloaded by CNs that have active carbon nanoparticles, and the PLGA membrane prevented drug leakage. The nanoparticles exhibited excellent photothermal performance with a photothermal conversion efficiency of 28.9%, killing tumor cells in metastatic lymph nodes through hyperthermia. In vitro and in vivo systematic evaluations revealed that hyperpyrexia triggered the rupture of nanoparticles caused by the phase transition of perfluorohexane, resulting in docetaxel release for achieving in situ hyperthermia-combined chemotherapy.
Conclusions:
The laser-triggered highly efficient in situ chemotherapy nanosystem achieves targeted synergistic chemo-hyperthermia treatment of metastatic lymph nodes, and lymphatic delivery represents a strategy to avoid additional injury caused by drugs entering the blood circulation.
Insights
This study presents a novel nanoplatform for treating breast cancer lymph node metastasis. The system combines targeted chemotherapy with hyperthermia, guided by dual-mode imaging, to effectively eliminate cancer cells with minimal systemic side effects.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Lymph node metastasis is a key driver of breast cancer mortality.
- Early detection and treatment of lymph node metastasis are critical for patient outcomes.
- Current treatments often lack specificity, leading to systemic side effects.
Purpose of the Study:
- To develop a visualized precision medicine nanoplatform for dual-mode imaging-guided therapy of metastatic lymph nodes.
- To combine in situ targeted hyperthermia with chemotherapy for synergistic treatment.
- To utilize lymphatic delivery to enhance drug accumulation and minimize systemic exposure.
Main Methods:
- Development of docetaxel-loaded carbon nanoparticles (CNs) combined with anti-hypoxia-inducible factor 1α antibody-modified PLGA nanoparticles.
- Utilizing lymphatic delivery for passive and intracellular targeting of metastatic lymph nodes.
- Employing ultrasonic/photoacoustic (US/PA) dual modal imaging for guidance and laser-induced hyperthermia for drug release and tumor cell ablation.
Main Results:
- Enhanced accumulation and retention of nanoparticles in metastatic lymph nodes.
- High photothermal conversion efficiency (28.9%) enabling hyperthermia-induced tumor cell death.
- Laser-triggered nanoparticle rupture and docetaxel release for synergistic chemo-hyperthermia treatment.
- In vitro and in vivo studies confirmed the efficacy of the combined therapeutic approach.
Conclusions:
- The developed nanosystem provides a highly efficient, laser-triggered approach for in situ chemo-hyperthermia treatment of metastatic lymph nodes.
- Lymphatic delivery strategy effectively targets metastatic sites while avoiding systemic drug toxicity.
- This precision nanomedicine platform offers a promising strategy for improving breast cancer treatment outcomes.
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