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Updated: Feb 4, 2026

Anticancer Efficacy of Photodynamic Therapy with Lung Cancer-Targeted Nanoparticles
Published on: December 1, 2016
Erlotinib-Guided Self-Assembled Trifunctional Click Nanotheranostics for Distinguishing Druggable Mutations and
Abstract:
The outcome of molecular targeted therapies is restricted by the ambiguous molecular subtypes of nonsmall cell lung cancer (NSCLC), which are difficult to be defined with druggable mutations, and the inevitable emergence of drug-resistance. Here we used the Cu-catalyzed click chemistry to synthesize a chitosan-based self-assembled nanotheranostics (CE7Ns) composed of a near-infrared (NIR) fluorescent photosensitizer Cy7 and molecular targeted drug erlotinib. The well-characterized CE7Ns can release erlotinib and Cy7 fast under acidic condition in the presence of lysozyme, distinguish three molecular subtypes of NSCLC, and specifically bind to the erlotinib-sensitive epidermal growth factor receptor (EGFR)-mutated PC-9 cells. The uptake of CE7Ns is much more in PC-9 cells than in other NSCLC cells, thus generating a notable fluorescence signal in PC-9 cells. Upon NIR irradiation, Cy7 in CE7Ns produces high reactive oxygen species in PC-9 cells. The synergistic effect between erlotinib-targeted therapy and photodynamic therapy significantly up-regulates cancer suppressor p53 and inhibits Survivin, which results in more apoptosis and cell cycle arrest. Upon intravenous administration, the erlotinib-guided CE7Ns significantly accumulate in PC-9-seeded mouse lungs and produce strong fluorescence. Upon NIR irradiation, CE7Ns significantly inhibit the subcutaneously implanted PC-9 tumor growth. This study provides, for the first time, a novel strategy to synthesize a multifunctional theranostic entity to simultaneously distinguish and image druggable mutations and combine targeted therapy with photodynamic therapy to overcome drug resistance.
Insights
This study introduces novel nanotheranostics for non-small cell lung cancer (NSCLC). These nanotheranostics target EGFR mutations, combine drug delivery with photodynamic therapy, and overcome drug resistance.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Nonsmall cell lung cancer (NSCLC) treatment is limited by ambiguous molecular subtypes and drug resistance.
- Accurate identification of druggable mutations and overcoming resistance are critical challenges.
Purpose of the Study:
- To develop a chitosan-based nanotheranostic (CE7Ns) for NSCLC.
- To combine molecular targeting, imaging, and therapy to address drug resistance.
Main Methods:
- Synthesized CE7Ns using click chemistry, incorporating Cy7 (photosensitizer) and erlotinib (targeted drug).
- Evaluated CE7Ns for drug release, NSCLC subtype differentiation, and specific binding to EGFR-mutated PC-9 cells.
- Investigated the synergistic effects of targeted therapy and photodynamic therapy in vitro and in vivo.
Main Results:
- CE7Ns demonstrated targeted drug release and specific uptake in PC-9 cells, generating fluorescence.
- NIR irradiation of CE7Ns induced reactive oxygen species, leading to apoptosis and cell cycle arrest.
- CE7Ns accumulated in tumor sites in vivo and significantly inhibited PC-9 tumor growth upon NIR irradiation.
Conclusions:
- CE7Ns offer a novel theranostic strategy for NSCLC, enabling simultaneous imaging of druggable mutations and combination therapy.
- This approach effectively overcomes drug resistance by combining targeted therapy with photodynamic therapy.
- The developed nanotheranostics show promise for improved NSCLC diagnosis and treatment.
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