Injectable Thermoresponsive Hydrogels for Localized Drug Delivery: Mechanisms, In Vivo Evidence and Translational Challenges

Injectable thermoresponsive hydrogels are useful for localized drug delivery because they can be administered as low-viscosity formulations and then form, or reinforce, therapeutic depots directly at diseased tissue sites. Their common design principle is a temperature-dependent transition from a flowable formulation before administration to an in situ matrix at physiological temperature, or a thermally regulated change in swelling, mesh size, drug-matrix affinity or degradation. This review focuses on thermoresponsive injectable systems for localized delivery, including PNIPAM-based systems, poloxamers/Pluronics, PEG/polyester block copolymers, polyurethane-based hydrogels, chitosan-based thermogels, hyaluronan- and glycosaminoglycan-based systems, and selected multicomponent or nanocomposite networks. The in vivo application areas considered are local cancer therapy, wound healing and antibacterial treatment, osteoarthritis and intra-articular delivery, and myocardial infarction/cardiac repair. Across these indications, preclinical studies suggest that thermoresponsive hydrogels may prolong local residence time, reduce systemic exposure, enhance delivery of poorly soluble or unstable payloads, and modulate disease-specific microenvironments. Remaining challenges include gelation control, mechanical stability, degradation products, immune response, sterilization, manufacturing reproducibility, disease heterogeneity and robust translational validation.

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Publication Details

Journal
Journal of Functional Biomaterials
Published
2026-09-01
DOI
https://doi.org/10.3390/jfb17090436
Primary Topic
Hydrogels: synthesis, properties, applications
Type
article
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article

Injectable Thermoresponsive Hydrogels for Localized Drug Delivery: Mechanisms, In Vivo Evidence and Translational Challenges

Lucia Sessa, Miriam Di Martino, Simona Concilio, Giulia Pagliari et al.
Journal of Functional Biomaterials
Hydrogels: synthesis, properties, applications
article

Injectable Thermoresponsive Hydrogels for Localized Drug Delivery: Mechanisms, In Vivo Evidence and Translational Challenges

Lucia Sessa, Miriam Di Martino, Simona Concilio, Giulia Pagliari, Daniela Silvestrino
article en

Abstract

Injectable thermoresponsive hydrogels are useful for localized drug delivery because they can be administered as low-viscosity formulations and then form, or reinforce, therapeutic depots directly at diseased tissue sites. Their common design principle is a temperature-dependent transition from a flowable formulation before administration to an in situ matrix at physiological temperature, or a thermally regulated change in swelling, mesh size, drug-matrix affinity or degradation. This review focuses on thermoresponsive injectable systems for localized delivery, including PNIPAM-based systems, poloxamers/Pluronics, PEG/polyester block copolymers, polyurethane-based hydrogels, chitosan-based thermogels, hyaluronan- and glycosaminoglycan-based systems, and selected multicomponent or nanocomposite networks. The in vivo application areas considered are local cancer therapy, wound healing and antibacterial treatment, osteoarthritis and intra-articular delivery, and myocardial infarction/cardiac repair. Across these indications, preclinical studies suggest that thermoresponsive hydrogels may prolong local residence time, reduce systemic exposure, enhance delivery of poorly soluble or unstable payloads, and modulate disease-specific microenvironments. Remaining challenges include gelation control, mechanical stability, degradation products, immune response, sterilization, manufacturing reproducibility, disease heterogeneity and robust translational validation.

Journal of Functional BiomaterialsVol. 17(9)
University of Salerno (IT)
Good health and well-being
Openalex Percentile: Top 19%
Hydrogels: synthesis, properties, applications
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Injectable Thermoresponsive Hydrogels for Localized Drug Delivery: Mechanisms, In Vivo Evidence and Translational Challenges — Lucia Sessa, Miriam Di Martino, et al. · Journal of Functional Biomaterials (2026) | TGRS Research Map | TGRS