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Injectable hydrogel-based platforms for precision lung cancer therapy: bridging biomaterials and oncology
Sambhavi Swarn1, Vrutti Parmar2, Anupam Verma3
1Department of Pharmaceutical Chemistry, MS University of Baroda, Vadodara, Gujarat, India.
Abstract:
Lung cancer is the leading cause of cancer-related deaths globally, with around 2.5 million new cases and 1.8 million fatalities reported each year, driven by late-stage diagnosis, aggressive tumor biology, and limited efficacy of systemic therapies due to poor tumor penetration and dose-limiting toxicities. These clinical challenges underscore the urgent need for localized, precision drug delivery strategies. This review critically examines injectable hydrogel-based platforms as emerging solutions for precision lung cancer therapy, focusing on their design principles, therapeutic mechanisms, and translational potential. Recent literature highlights three transformative advances: (i) in situ-forming hydrogel depots that enable sustained intratumoral drug retention while minimizing systemic exposure; (ii) multifunctional hydrogels capable of co-delivering chemotherapeutics, immunomodulators, or phototherapeutic agents to synergistically remodel the tumor microenvironment; and (iii) stimuli-responsive systems that exploit tumor-specific cues (pH, enzymes, redox state) to achieve on-demand drug release and enhanced therapeutic precision. Preclinical studies consistently demonstrate improved antitumor efficacy, reduced off-target toxicity, and compatibility with radiotherapy, photothermal therapy, and immune checkpoint blockade. Despite these advances, clinical translation remains constrained by key hurdles, including scalable manufacturing, sterilization, long-term biocompatibility, and regulatory standardization. Addressing these challenges will be critical to advancing injectable hydrogels from promising experimental platforms to clinically deployable therapies for lung cancer.
Insights
Injectable hydrogels offer a promising localized drug delivery strategy for lung cancer, improving treatment efficacy and reducing toxicity. Overcoming manufacturing and regulatory hurdles is key for clinical application.
Area of Science:
- Biomaterials Science
- Oncology
- Drug Delivery
Background:
- Lung cancer is a leading cause of global cancer deaths, often diagnosed late with limited treatment options.
- Systemic therapies face challenges in tumor penetration and cause dose-limiting toxicities, necessitating localized treatment strategies.
- Injectable hydrogels are emerging as a promising platform for precision lung cancer therapy.
Purpose of the Study:
- To review injectable hydrogel platforms for precision lung cancer therapy.
- To examine their design, therapeutic mechanisms, and translational potential.
- To highlight advances and challenges in their clinical application.
Main Methods:
- Review of recent literature on injectable hydrogel platforms for lung cancer.
- Focus on in situ-forming depots, multifunctional hydrogels, and stimuli-responsive systems.
- Analysis of preclinical data on efficacy, toxicity, and combination therapies.
Main Results:
- In situ-forming hydrogels provide sustained intratumoral drug delivery, minimizing systemic exposure.
- Multifunctional hydrogels can co-deliver agents to remodel the tumor microenvironment.
- Stimuli-responsive hydrogels enable on-demand drug release for enhanced precision.
- Preclinical studies show improved antitumor efficacy, reduced toxicity, and compatibility with other therapies.
Conclusions:
- Injectable hydrogels demonstrate significant potential for localized lung cancer treatment.
- Advances include in situ formation, multifunctionality, and stimuli-responsiveness.
- Clinical translation requires addressing challenges in manufacturing, sterilization, biocompatibility, and regulation.

