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Facile Preparation and Photoactivation of Prodrug-Dye Nanoassemblies
Published on: February 17, 2023
Reactive oxygen species-activatable self-amplifying Watson-Crick base pairing-inspired supramolecular nanoprodrug for
Xiaoyu Xu1, Zishan Zeng1, Xin Ding1
1School of Pharmaceutical Sciences, Sun Yat-sen University, Guangzhou, 510006, PR China.
Abstract:
Intratumoral upregulated reactive oxygen species (ROS) has been extensively exploited as exclusive stimulus to activate drug release for tumor-specific therapy. However, insufficient endogenous ROS and tumor heterogeneity severely restrict clinical translation of current ROS-responsive drug delivery systems. Herein, a tailored ROS-activatable self-amplifying supramolecular nanoprodrug was developed for reinforced ROS-responsiveness and highly selective antitumor therapy. A novel ROS-cleavable CA-based thioacetal linker CASOH was synthesized with ROS generator cinnamaldehyde (CA) incorporated into its molecular structure, to skillfully realize self-amplifying positive feedback loop of "ROS-activated CA release with CA-induced ROS regeneration". CASOH was modified with a cytosine analogue gemcitabine (GEM) to obtain ROS-activatable self-immolative prodrug CAG, which could be selectively activated in tumor cells and further achieve self-boosting "snowballing" activation via ROS compensation, while keep inactive in normal cells. Through Watson-Crick nucleobase pairing (G≡C)-like hydrogen bonds, CAG efficiently crosslinked with a matched guanine-rich acyclovir-modified hyaluronic acid conjugate HA-ACV, to self-assemble into pH/ROS dual-responsive supramolecular nanoprodrug HCAG. With high stability, beneficial tumor targeting capacity and pH/ROS-responsiveness, HCAG nanoformulation exhibited remarkable in vivo antitumor efficacy with minimal systemic toxicity. Based on unique tumor-specific self-amplifying prodrug activation and Watson-Crick base pairing-inspired supramolecular self-assembly, this study provides an inspirational strategy of exploiting novel ROS-responsive nanoplatform with reinforced responsiveness and specificity for future clinical translation.
Insights
This study introduces a novel self-amplifying nanoprodrug that enhances reactive oxygen species (ROS) generation for targeted cancer therapy. This innovative approach improves drug delivery specificity and efficacy, overcoming limitations of current ROS-responsive systems.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Reactive oxygen species (ROS) are crucial for tumor-specific drug activation, but insufficient endogenous ROS and tumor heterogeneity limit current therapies.
- Existing ROS-responsive drug delivery systems face challenges in clinical translation due to limited efficacy and specificity.
Purpose of the Study:
- To develop a ROS-activatable, self-amplifying supramolecular nanoprodrug for enhanced ROS-responsiveness and selective antitumor therapy.
- To create a nanoplatform that overcomes the limitations of insufficient endogenous ROS and tumor heterogeneity.
Main Methods:
- Synthesized a novel ROS-cleavable thioacetal linker (CASOH) incorporating cinnamaldehyde (CA) for a self-amplifying ROS feedback loop.
- Modified CASOH with gemcitabine (GEM) to create a ROS-activatable prodrug (CAG) for tumor-specific activation.
- Self-assembled CAG with a hyaluronic acid-acyclovir conjugate (HA-ACV) via Watson-Crick base pairing to form dual-responsive HCAG nanoparticles.
Main Results:
- The HCAG nanoprodrug demonstrated a self-boosting 'snowballing' activation mechanism via ROS compensation within tumor cells.
- HCAG nanoparticles exhibited high stability, tumor targeting capacity, and dual pH/ROS responsiveness.
- Remarkable in vivo antitumor efficacy with minimal systemic toxicity was observed for the HCAG nanoformulation.
Conclusions:
- The developed ROS-responsive nanoplatform provides reinforced responsiveness and specificity for targeted cancer therapy.
- This study offers an inspirational strategy for exploiting novel nanoplatforms with self-amplifying prodrug activation for clinical translation.
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