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Aug 2026

Self-sustaining ROS-responsive hydrogel enabled delivery of PROTAC/Ce6 nanoparticles via PDT-Epigenetic protein degradation to amplify pyroptosis for enhanced cancer immunotherapy.

Cancer immunotherapy exhibits limited efficacy in immunologically "cold" tumors due to insufficient T-cell infiltration and immunosuppressive tumor microenvironment. The efficacy of photodynamic therapy (PDT) is restricted by inadequate tumor-specific aggregation of photosensitizers and therapeutic resistance regulated by epigenetics. Herein, we engineered a light-driven, ROS-responsive hydrogel (PACL@Gel) for loading peptide-lipid scaffold nanoparticles encapsulating proteolysis targeting chimera (PROTAC) molecule and photosensitizer to enhance cancer immunotherapy. The system utilizes both endogenous and photodynamically amplified ROS to drive controlled hydrogel degradation and nanoparticle release, establishing a self-sustaining ROS feedback loop to overcome the limitations of insufficient endogenous ROS. The released PACL nanoparticles synergistically combine PDT with epigenetic BRD4 protein degradation to robustly amplify Caspase-3/GSDME dependent pyroptosis. Pyroptotic tumor cells would trigger immunogenic cell death, releasing inflammatory mediators and damage-associated molecular patterns that promote dendritic cells maturation and T-cell activation and infiltration to effectively remodel the immunosuppressive tumor niche and promote antitumor immunity. Experimental results validated that under laser irradiation, PACL@Gel demonstrated potent local tumor suppression and distant abscopal effect, prevented postoperative recurrence and established long-term immune memory. Collectively, this integrated PROTAC-PDT hydrogel platform effectively reprograms the immunosuppressive tumor microenvironment, providing a robust and actionable approach to enhance PDT therapy in immunologically cold tumors combined with epigenetic strategies.

Li-Ming Gong, Jing Feng, Li-Qing Chen et al. · 0 citations
Review Open access Sep 2026

Research Advances on Organelle-Targeted Drug Delivery Systems for the Treatment of Brain Tumors and Central Nervous System Inflammation

Central nervous system (CNS) inflammation and brain tumor treatment are constrained by the heterogeneity of the blood–brain barrier (BBB) and blood–brain tumor barrier (BBTB), as well as by the sequential barriers to drug delivery across lesions, target cells and subcellular organelles. Simply increasing brain exposure does not ensure that drugs reach their actual sites of action. This review systematically examines the pathological roles and therapeutic rationales of mitochondrial, lysosomal, nuclear, endoplasmic reticulum and Golgi apparatus dysfunction in neuroinflammation and glioblastoma within a two-stage delivery framework encompassing barrier crossing, lesion accumulation, cellular uptake and subcellular organelle localization. It also summarizes key design considerations for liposomes, polymeric nanoparticles, biomimetic membrane-based carriers, exosome-like carriers and focused ultrasound-assisted delivery strategies. Furthermore, translational bottlenecks are discussed, including BBB/BBTB heterogeneity, endosomal/lysosomal escape, organelle off-targeting, long-term safety and the extrapolation of preclinical models. Finally, personalized delivery designs guided by cascade targeting, dynamic visualization-based validation and disease stratification are proposed to support precise treatment of CNS inflammation and brain tumors.

Man-Ru Zhang, Bo-Han Chen, Tie-Zheng Li et al. · 0 citations

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