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Updated: Jun 12, 2025

Anticancer Efficacy of Photodynamic Therapy with Lung Cancer-Targeted Nanoparticles
Published on: December 1, 2016
A nanotechnology driven effectual localized lung cancer targeting approaches using tyrosine kinases inhibitors:
Ankaj Kumar1, Klaudi K Vaiphei1, Arvind Gulbake1
1Department of Pharmaceutics, National Institute of Pharmaceutical Education and Research Guwahati, Assam 781101, India.
Abstract:
The higher incidence and mortality rate among all populations worldwide explains the unmet solutions in the treatment of lung cancer. The evolution of targeted therapies using tyrosine kinase inhibitors (TKI) has encouraged anticancer therapies. However, on-target and off-target effects and the development of drug resistance limited the anticancer potential of such targeted biologics. The advances in nanotechnology-driven-TKI embedded carriers that offered a new path toward lung cancer treatment. It is the inhalation route of administration known for its specific, precise, and efficient drug delivery to the lungs. The development of numerous TKI-nanocarriers through inhalation is proof of TKI growth. The future scopes involve using potential lung cancer biomarkers to achieve localized active cancer-targeting strategies. The adequate knowledge of in vitro absorption models usually helps establish better in vitro - in vivo correlation/extrapolation (IVIVC/E) to successfully evaluate inhalable drugs and drug products. The advanced in vitro and ex vivo lung tissue/ organ models offered better tumor heterogeneity, etiology, and microenvironment heterogeneity. The involvement of lung cancer organoids (LCOs), human organ chip models, and genetically modified mouse models (GEMMs) has resolved the challenges associated with conventional in vitro and in vivo models. To access potential inhalation-based drugtherapies, biological barriers, drug delivery, device-based challenges, and regulatory challenges must be encountered associated with their development. A proper understanding of material toxicity, size-based particle deposition at active disease sites, mucociliary clearance, phagocytosis, and the presence of enzymes and surfactants are required to achieve successful inhalational drug delivery (IDD). This article summarizes the future of lung cancer therapy using targeted drug-mediated inhalation using TKI.
Insights
Targeted therapies using tyrosine kinase inhibitors (TKI) show promise for lung cancer, but drug resistance is a challenge. Nanotechnology-enabled inhalation delivery offers a precise, efficient strategy for TKI treatment, overcoming limitations.
Area of Science:
- Oncology
- Nanotechnology
- Pharmacology
Background:
- Lung cancer has high incidence and mortality globally, with unmet treatment needs.
- Targeted therapies like tyrosine kinase inhibitors (TKI) are advancing cancer treatment.
- Drug resistance and side effects limit the efficacy of current TKI therapies.
Purpose of the Study:
- To explore the potential of nanotechnology-driven TKI carriers for lung cancer treatment via inhalation.
- To review advancements in inhalable drug delivery systems for lung cancer.
- To discuss future strategies for targeted lung cancer therapy.
Main Methods:
- Review of current literature on TKI, nanotechnology, and inhalation drug delivery for lung cancer.
- Analysis of advanced in vitro and ex vivo lung models, including organoids and organ chips.
- Discussion of challenges and future directions in inhalable TKI therapy.
Main Results:
- Nanotechnology-based TKI carriers delivered via inhalation offer precise and efficient lung drug delivery.
- Advanced in vitro/ex vivo models (organoids, organ chips) improve the evaluation of lung cancer therapies.
- Biomarker-guided, localized targeting strategies are emerging for improved treatment outcomes.
Conclusions:
- Inhalational drug delivery of TKI holds significant promise for overcoming lung cancer treatment challenges.
- Addressing biological, device, and regulatory hurdles is crucial for successful implementation.
- Future lung cancer therapy will likely involve targeted, inhalation-based TKI strategies.
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