Aug 2026· Pharmaceuticals· Vol 19, pp. 1324· 0 citations· 158 references
Medicine
TL;DR
This narrative review consolidates the state of the art and departs from the conventional carrier-type survey and identifies converging strategies that could move stimuli-responsive controlled release from an aspirational outcome to a routine clinical reality.
Abstract
Most active pharmaceutical ingredients (APIs) reach their target by passive systemic distribution, so the dose required for efficacy at the lesion is set by what healthy tissue can tolerate; conventional dosage forms consequently produce pharmacokinetic profiles that oscillate between toxic peaks and sub-therapeutic troughs. Nanoparticulate carriers (liposomes, lipid nanoparticles, polymeric and inorganic systems, and biomimetic carriers) and hydrogels (natural, synthetic, supramolecular, and microgel-assembled) have emerged as the dominant strategies to address this, increasingly combined as hybrid nanoparticle–hydrogel constructs in which the gel provides locoregional retention and the nanoparticles provide cargo protection, intracellular delivery and stimuli responsiveness. Stimuli-responsive chemistries (pH, redox, enzyme, ROS, hypoxia, temperature, light, magnetic, ultrasound, glucose, and multi-stimuli logic) translate the molecular signatures of a disease into spatiotemporally controlled cargo release. This narrative review consolidates the state of the art (prioritizing 2022–2026) and departs from the conventional carrier-type survey in one respect: the literature is read along an explicit chain—disease cue, sensing chemistry, carrier architecture, release mechanism and kinetics, administration route, and clinical readiness—which exposes a variable that classification by carrier type conceals. Across all three material classes, what governs release behavior is not primarily the carrier chemistry but the identity of the released species (dissolved drug, drug from an embedded nanoparticle, an intact nanoparticle, and a matrix fragment) and the transport step that limits it. This is why power-law exponent analysis developed for dissolved drug fits particulate release poorly, why statistical goodness-of-fit cannot by itself establish a release mechanism, and why carrier class predicts clinical readiness less well than administration route and regulatory product type. Translational hurdles—CMC complexity, regulatory fragmentation, anti-PEG immunogenicity, and the structural mismatch between preclinical promise and clinical efficacy—are critically appraised in light of previously reported <1% delivery efficiency analysis. This review identifies converging strategies that could move stimuli-responsive controlled release from an aspirational outcome to a routine clinical reality.
Cancer remains a major global health challenge, and the limitations of conventional therapies, including systemic toxicity, drug resistance, and poor tumor selectivity, continue to drive the development of advanced nanomedicine strategies. In this context, nanocarriers offer promising opportunities to improve pharmacokinetics, enhance tumor accumulation, and enable controlled or stimuli-responsive drug release. Among them, inorganic nanoparticles (NPs) have gained considerable attention because of their structural stability, tunable surface chemistry, and multifunctional capabilities. Their performance depends on a structure–property–function relationship in which composition, morphology, porosity, degradability, and surface characteristics strongly influence interactions at the nano–bio interface. This review examines the main classes of nanoplatforms currently explored for cancer therapy, including inorganic, polymeric, lipid-based, and hybrid organic–inorganic systems. Particular attention is given to the trade-offs that define each platform in terms of loading capacity, biodegradability, multifunctionality, and translational potential. The discussion also highlights the role of predictive biological models, emphasizing that 3D spheroids, organoids, and organ-on-chip systems provide more realistic insights than conventional 2D assays for evaluating tumor penetration and microenvironment-responsive delivery. In addition, the review considers emerging directions in AI-guided nanoparticle engineerization design and natural-compound-based nanomedicines, both of which are expanding the therapeutic landscape. Overall, the field is moving toward more integrated, application-specific, and clinically translatable nanomedicine platforms capable of addressing the complex biological barriers of cancer treatment.
C. Boncristiani, F. Baldassarre, Khadija Eddahaoui et al.· Materials· 0 citations
This review provides a comprehensive assessment of four major nanoparticle families—polymeric carriers, lipid-based vehicles, inorganic systems, inorganic systems, and hybrid composites—focusing on how their physicochemical properties govern drug encapsulation, release behavior, and tissue compatibility.
Z. Asiri, Abeer Mobarki, Sahar S. Alghamdi et al.· International Journal of Mol...· 0 citations
The combination of polymeric materials and prodrug chemistry has reformed drug delivery by presenting specific, precise, and targeted therapeutic release. This review provides the informations on progresses in polymeric materials for prodrug design, focusing on their importance in improving bioavailability, pharmacokinetics, and site-specific activation. Polymers play role as dedicated carriers that enhance solubility, stability, and biocompatibility while shortening toxicity. Novel polymeric designs, such as stimuli responsive micelles, nanogels, and amphiphilic conjugates coordinated release as a response to the stimuli: pH, enzyme, or redox potential gradient, mostly in cancer and inflammatory disease therapy. Prodrug approaches including carrier-linked, bio-precursor, and site-specific designs are deliberated in light of enzyme-activated, photo, and radiotherapy responsive systems. Challenges persist in large scale synthesis, clinical translation, and patient specific differences. Impending directions highlight the merging of artificial intelligence, regenerative medicine, and bioorthogonal chemistry to create personalized and multifunctional polymer-prodrug delivery systems that can significantly boost therapeutic precision.
This review aims to provide a comprehensive summary of the current advances, mechanisms, and perspectives of smart stimuli-responsive injectable hydrogels, including their successful outcomes in completely curing tumours, 75% tumour regression using a GSH-responsive peptide gel, and significant functional repair in spinal cord injury repairs using microenvironment-responsive matrices.
Sedhu Raagavan Sarkgunan, Benjamin Jeganathan, Rajesh Sathiyamoorthy et al.· Current Pharmaceutical Resea...· 0 citations
This review highlights a formulation-driven framework for the rational design and clinical translation of hydrogel-based pharmaceutical excipients in advanced drug delivery systems.
Suriya Prakaash Kannan, Dakshinesh Parameswaran, Damodharan Narayanasamy· Biochemical and Biophysical...· 0 citations
Oral drug delivery is preferred for patient compliance, but it's challenging for biologics and sensitive therapeutics due to the harsh gastrointestinal environment. Engineered oral hydrogels, enhanced through chemical modifications, offer superior entrapment efficiency and controlled release compared to traditional forms like capsules. Through innovative mechanisms, including stimuli-responsiveness, active adhesion, and microenvironmental modulation, oral hydrogels overcome key limitations associated with traditional oral formulations. These systems can achieve prolonged retention and site-specific controlled release in targeted areas of the gut, such as the colon, through chemical engineering strategies. Meanwhile, they can also be used as bioactive ingredients to regulate intestinal microbiota, restore the integrity of the mucosal barrier, and play a systemic therapeutic role in distal organs through the gut-brain axis and gut-immune axis. This review summarizes the research progress of oral hydrogel materials, focusing on their stimuli-responsive and mucus-adhesive designs for efficient drug delivery, as well as extended functions such as regulation of intestinal microbiota. It also addresses the challenges of clinical translation and examines bottlenecks and regulatory pathways to scale up through disease-specific cases. Finally, an integrated framework combining rational design, artificial intelligence, and translational science is proposed to bridge the gap from laboratory research to clinical applications.
Dongyan Liu, Bei Guo, Fei Qin et al.· Journal of Controlled Releas...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.