Jul 2026· ACS Applied Bio Materials· Vol 9, pp. 7467-7485· 0 citations· 81 references
Medicine
TL;DR
Overall, this work presents a versatile and tunable strategy for integrating catanionic vesicles into thermosensitive polymeric scaffolds, providing a promising platform for localized melanoma drug delivery.
Abstract
Skin cancer, particularly melanoma, remains a major therapeutic challenge due to its high metastatic potential and limited efficacy of systemic chemotherapy. Localized and controlled delivery of chemotherapeutic agents such as doxorubicin (DOX) represents a promising alternative to systemic treatments and costly immunotherapies. Hybrid hydrogels that integrate polymeric scaffolds with embedded nanostructures (e.g., vesicles, micelles, or nanoparticles) have emerged as particularly effective platforms for enhancing therapeutic performance. Herein, we report the development of a thermosensitive hybrid hydrogel for potential melanoma drug delivery applications, obtained by dispersing DOX-loaded, pH-sensitive 12-2-12/SLSar catanionic vesicles within a poloxamer 237 (F87) scaffold. The system was comprehensively characterized in terms of rheological behavior, biocompatibility, drug-release kinetics, and in vitro anti-melanoma activity in 2D monolayer cell cultures and 3D spheroids. In parallel, molecular-level interactions between the F87 matrix and the surfactant-based vesicles were investigated. Strong polymer-surfactant interactions were observed, leading to the formation of mixed polymer/surfactant micelles and vesicles, and inducing significant modifications in aggregate physicochemical properties, particularly surface charge. These interactions were found to be thermally driven and strongly dependent on the polymer-to-surfactant ratio. The catanionic vesicles exhibited high DOX encapsulation efficiency and remained stably dispersed within the F87 scaffold. The resulting hybrid hydrogel demonstrated controlled release kinetics, offering potential advantages for localized drug delivery compared with vesicle-only formulations. Moreover, the hybrid system demonstrated excellent biocompatibility and significantly outperformed neat F87 hydrogels in enhancing DOX internalization and inducing melanoma cell death in vitro. Overall, this work presents a versatile and tunable strategy for integrating catanionic vesicles into thermosensitive polymeric scaffolds, providing a promising platform for localized melanoma drug delivery.
Objective(s): Topical delivery of anti-neoplastic agents could circumvent many drawbacks of chemotherapy in skin cancer. This study aims to develop a hybrid Hyaluronic acid-oleic acid (HA-C18) micelle--alginate hydrogel as a topical system for doxorubicin (DOX), enhancing skin penetration, providing controlled release,...
Majid Zia-Behbahani, Elahehnaz Parhizkar, M. Aghdaie et al.· Iranian Journal of Basic Med...· 0 citations
In vitro studies showed that the composite hydrogel displayed good biocompatibility and significantly inhibited MB49 bladder cancer cell proliferation, induced apoptosis, and suppressed migration and invasion, indicating that the HA-PBA/PVA hydrogel-liposome composite system is a promising localized therapeutic strateg...
Zi-Hao Chen, Jia-Xin Li, Hong Hu et al.· ACS Applied Bio Materials· 0 citations
Breast cancer treatment still faces challenges including local recurrence, systemic toxicity, tumor heterogeneity, drug resistance, and immunosuppression. Conventional systemic administration provides limited exposure at the tumor site and exhibits significant toxicity. Injectable hydrogels, combining the properties of...
Background: The fibrous tumor extracellular matrix (ECM), driven by cancer-associated fibroblasts (CAFs), forms a physical barrier against drugs and immune cells, yet direct CAF elimination risks promoting metastasis. Methods: In this study, we developed a locally injectable hydrogel based on synergistic dynamic covale...
Background: Biodegradable polymeric nanoparticles have emerged as a promising platform for enhancing cancer therapy by enabling targeted drug delivery to tumor sites. The ability to manipulate the chemical and physical properties of these polymers allows them to overcome various biological barriers and achieve site-spe...
Shalini Yadav, Saket Manali Rai, S. Chandel· International Journal of Cur...· 0 citations
How hydrogel–nanoparticle systems offer a promising strategy to modulate the tumor microenvironment by enabling targeted drug delivery, controlled release, enhanced tumor penetration, and improved therapeutic efficacy in breast cancer is critically discussed.
Poulami Dutta, Dhruvi Patel, H. Shukla et al.· ACS Applied Nano Materials· 0 citations
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