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Tumor-Specific Formation of Enzyme-Instructed Supramolecular Self-Assemblies as Cancer Theranostics
Peng Huang1,2, Yuan Gao3,4, Jing Lin1,5
1Laboratory of Molecular Imaging and Nanomedicine (LOMIN), National Institute of Biomedical Imaging and Bioengineering (NIBIB), National Institutes of Health , Bethesda, Maryland 20892, United States.
Abstract:
Despite the effort of developing various nanodelivery systems, most of them suffer from undesired high uptakes by the reticuloendothelial system, such as liver and spleen. Herein we develop an endogenous phosphatase-triggered coassembly strategy to form tumor-specific indocyanine green (ICG)-doped nanofibers (5) for cancer theranostics. Based on coordinated intermolecular interactions, 5 significantly altered near-infrared absorbance of ICG, which improves the critical photoacoustic and photothermal properties. The phosphatase-instructed coassembly process, as well as its theranostic capability, was successfully conducted at different levels ranging from in vitro, living cell, tissue mimic, to in vivo. Specifically, the tumor uptake of ICG was markedly increased to 15.05 ± 3.78%ID/g, which was 25-fold higher than that of free ICG (0.59 ± 0.24%ID/g) at 4 h after intravenous injection. The resulting ultrahigh T/N ratios (>15) clearly differentiated tumors from the surrounding normal tissue. Complete tumor elimination with high therapeutic accuracy has been successfully achieved upon laser irradiation (0.8 W/cm(2), 5 min) within 24-48 h postinjection. As the first example, in vivo formation of tumor-specific ICG-doped nanofiber for PTT theranostics owns the immense potential for clinical translation of personalized nanomedicine with targeted drug delivery as well as for cancer theranostics.
Insights
This study introduces a novel nanodelivery system using phosphatase-triggered coassembly of indocyanine green (ICG)-doped nanofibers for targeted cancer theranostics, significantly enhancing tumor uptake and enabling effective photothermal therapy.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Materials Science
Background:
- Conventional nanodelivery systems often face rapid clearance by the reticuloendothelial system (liver, spleen).
- Targeted delivery of therapeutic agents to tumors remains a significant challenge in cancer treatment.
Purpose of the Study:
- To develop a tumor-specific nanodelivery system using an endogenous enzyme-triggered coassembly strategy.
- To enhance the theranostic capabilities of indocyanine green (ICG) for cancer treatment.
Main Methods:
- Coassembly of ICG-doped nanofibers triggered by endogenous phosphatases.
- Evaluation of photoacoustic and photothermal properties of the engineered nanofibers.
- In vitro, cellular, tissue mimic, and in vivo studies to assess tumor uptake and therapeutic efficacy.
Main Results:
- The developed nanofibers exhibited altered ICG absorbance, improving photoacoustic and photothermal properties.
- Markedly increased tumor uptake of ICG (15.05 ± 3.78%ID/g), a 25-fold increase compared to free ICG.
- Achieved complete tumor elimination via photothermal therapy with high therapeutic accuracy and ultrahigh tumor-to-normal tissue ratios (>15).
Conclusions:
- The phosphatase-instructed coassembly strategy successfully creates tumor-specific nanofibers for enhanced cancer theranostics.
- This approach offers a promising platform for clinical translation in personalized nanomedicine and targeted cancer therapy.
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