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Autophagic dysfunction-induced deterioration of the retinal microenvironment drives the progression of wet age-related macular degeneration (wAMD). The efficacy of single-target anti-VEGF antibodies in treating wAMD has long been suboptimal due to the intricate interplay between autophagy dysfunction, oxidative stress, and angiogenesis. Here, we introduce an intravitreal hydrogel depot, named Rab&Rapa-M@G, consisting of rapamycin-loaded microemulsion (Rapa-M, an mTOR inhibitor), ranibizumab (anti-VEGF antibody), and a thermosensitive hydrogel matrix. A single intravitreal injection of Rab&Rapa-M@G can sustainably deliver Rapa-M and ranibizumab to the retinal pigment epithelium for at least 14 days. This formulation significantly improves retinal autophagic flux homeostasis and reduces oxidative stress injury in wAMD mice by modulating the AMPK/mTOR/HIF-1α/VEGF and AMPK/ROS/HO-1/VEGF pathways. Consequently, it synergistically disrupts the "autophagic dysfunction-oxidative stress-angiogenesis" loop, leading to a remarkable reduction in choroidal neovascularization area and retinal damage compared to ranibizumab alone. Notably, the sequential administration of ranibizumab and Rab&Rapa-M@G further enhances the overall anti-wAMD efficacy, achieved through sequential delivery of Rab and Rapa, allowing for a more precise grasp of the treatment window. In conclusion, this hydrogel depot design, with its sequential and sustained delivery of mTOR inhibitors and anti-VEGF antibodies, offers a promising strategy for multi-target synergistic therapy in wAMD.
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http://dx.doi.org/10.1016/j.jconrel.2024.11.011 | DOI Listing |
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September 2025
State Key Laboratory of Chemo/Bio-Sensing and Chemometrics, School of Biomedical Sciences, Hunan University, Changsha, Hunan, 410082, China.
Chemotherapy is often hindered by systemic toxicity and poor selectivity. To address these issues, we develop an enzyme-responsive metallopeptide hydrogel (HY-Pd) that integrates enzyme-instructed self-assembly (EISA) and bioorthogonal catalysis for selective tumor-targeted prodrug activation. Upon exposure to alkaline phosphatase (ALP), which is overexpressed in osteosarcoma cells (Saos-2), HY-Pd selectively accumulates and self-assembles into catalytic nanofibers.
View Article and Find Full Text PDFAdoptive Cell Therapy (ACT) has achieved curative responses in hematological malignancies, yet its translation to solid tumors remains limited by manufacturing bottlenecks, systemic toxicities, and poor T-cell infiltration and persistence within the immunosuppressive tumor microenvironment (TME). Here, we report the development and mechanism of ACTIVATE (Adoptive Cell Therapy and Immunostimulatory Vehicle for Anti-Tumor Efficacy), which leverages an injectable hydrogel depot technology that forms a transient inflammatory niche for localized co-delivery of adoptive T cells and native cytokines. By tuning cytokine identity, ACTIVATE enables precise modulation of T-cell expansion, effector function, and interaction with endogenous immune networks.
View Article and Find Full Text PDFNanocarriers hold transformative potential for treating anterior segment eye diseases, yet corneal epithelium impermeability necessitates intraocular injection. Given the discomfort and infection risk, an injectable hydrogel-based depot offers a promising strategy for sustained nanocarrier delivery in intraocular therapy. However, because the aqueous humor is a large, fluid-filled environment, achieving spatially confined gelation remains a key challenge as injected materials rapidly diffuse.
View Article and Find Full Text PDFGels
July 2025
National Engineering Laboratory for AIDS Vaccine, School of Life Sciences, Jilin University, Changchun 130012, China.
Recombinant protein hydrogels have emerged as transformative biomaterials that overcome the bioinertness and unpredictable degradation of traditional synthetic systems by leveraging genetically engineered backbones, such as elastin-like polypeptides, SF, and resilin-like polypeptides, to replicate extracellular matrix (ECM) dynamics and enable programmable functionality. Constructed through a hierarchical crosslinking strategy, these hydrogels integrate reversible physical interactions with covalent crosslinking approaches, collectively endowing the system with mechanical strength, environmental responsiveness, and controlled degradation behavior. Critically, molecular engineering strategies serve as the cornerstone for functional precision: domain-directed self-assembly exploits coiled-coil or β-sheet motifs to orchestrate hierarchical organization, while modular fusion of bioactive motifs through genetic encoding or site-specific conjugation enables dynamic control over cellular interactions and therapeutic release.
View Article and Find Full Text PDFACS Biomater Sci Eng
September 2025
Department of Mechanical Engineering, Vanderbilt University, 2201 West End Avenue, Nashville, Tennessee 37235, United States.
Currently, on-demand treatment of pain (both chronic and acute) is primarily achieved using opioids that are delivered systemically. Unfortunately, these drugs are highly addictive; over 5 people per hour die from opioid abuse in the US alone. A safer, nonsystemic mechanism for pain relief is therefore needed.
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