Targetable Biomimetic NIR-II Theranostic Nanoplatform for Highly Efficient Multimodal Imaging-Guided Photothermal
Chenyang Chu1,2, Zhong Du3, Jing Wang1,2
1Department of Gynecology, The First Affiliated Hospital of Xinjiang Medical University, State Key Laboratory of Pathogenesis, Prevention and Treatment of High Incidence Diseases in Central Asia, Urumqi, People's Republic of China.
Purpose:
Cervical cancer (CC) is still the fourth most common cause of cancer deaths in women. However, current biomedical imaging techniques exhibit inherent limitations in the diagnosis and treatment of CC. This study aims to develop a biomimetic nanoplatform based on tumor cell membranes, loaded with a palladium (Pd)-based computed tomography (CT) contrast agent and the near-infrared (NIR) fluorescent probe indocyanine green (ICG). This multifunctional nanoplatform is designed to integrate multimodal imaging with photothermal therapy (PTT), thereby improving the diagnostic accuracy and therapeutic efficacy against CC.
Methods:
In this study, biomimetic nanoparticles (NPs), designated as M@Pd-ICG NPs, were synthesized by encapsulating Pd and ICG within HeLa cell membranes derived from cell-derived xenograft (CDX) models. Subsequently, the toxicity, biocompatibility, and tumor suppression capability of the M@Pd-ICG NPs were evaluated in vitro. In vivo, the multimodal imaging performance of the M@Pd-ICG NPs and their photothermal therapeutic efficacy under 808-nm laser irradiation were investigated in mouse model bearing subcutaneous cervical tumor.
Results:
The M@Pd-ICG NPs were successfully prepared and exhibited favorable stability, excellent photothermal conversion efficiency (34.04%), and good biocompatibility, enabling homologous targeting and prolonged circulation time. The M@Pd-ICG NPs integrated the complementary advantages of NIR-II fluorescence imaging (900-1700 nm, NIR-II FI), photothermal imaging (PTI), and CT imaging. Both in vitro and in vivo studies demonstrated that, under 808-nm laser irradiation, M@Pd-ICG NPs induced significant photothermal effects and tumor ablation.
Conclusion:
M@Pd-ICG NPs successfully integrate multimodal imaging and PTT, owing to their excellent targeting capability and good biocompatibility, demonstrating potential for further biomedical applications.
Insights
This study introduces M@Pd-ICG nanoparticles for cervical cancer, combining advanced imaging and photothermal therapy. These nanoparticles show promise for improved diagnosis and treatment of cervical cancer.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Cervical cancer (CC) remains a significant cause of cancer mortality in women.
- Current imaging techniques for CC diagnosis and treatment have limitations.
- There is a need for advanced theranostic platforms for CC management.
Purpose of the Study:
- To develop a biomimetic nanoplatform for cervical cancer (CC) diagnosis and therapy.
- To create a multifunctional nanoparticle integrating computed tomography (CT) contrast, near-infrared (NIR) fluorescence, and photothermal therapy (PTT).
- To enhance diagnostic accuracy and therapeutic efficacy against CC using a novel nanoplatform.
Main Methods:
- Synthesized biomimetic nanoparticles (M@Pd-ICG NPs) using HeLa cell membranes, encapsulating palladium (Pd) and indocyanine green (ICG).
- Evaluated in vitro toxicity, biocompatibility, and tumor suppression.
- Investigated in vivo multimodal imaging and photothermal therapeutic efficacy in a mouse model with subcutaneous cervical tumors.
Main Results:
- Successfully prepared M@Pd-ICG NPs with good stability, high photothermal conversion efficiency (34.04%), and biocompatibility.
- Achieved homologous targeting and prolonged circulation time.
- Demonstrated integrated NIR-II fluorescence imaging, photothermal imaging, and CT imaging capabilities.
- Confirmed significant photothermal effects and tumor ablation in vitro and in vivo under laser irradiation.
Conclusions:
- M@Pd-ICG NPs effectively integrate multimodal imaging and photothermal therapy for cervical cancer.
- The nanoplatform exhibits excellent targeting and biocompatibility, showing potential for biomedical applications.
- This approach offers a promising strategy for improving CC diagnosis and treatment outcomes.
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