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DNA-Scaffolded Disulfide Redox Network for Programming Drug-Delivery Kinetics
Authors:Wei Ji  Xiaodan Li  Dr Mingshu Xiao  Yueyang Sun  Dr Wei Lai  Prof Hongbo Zhang  Prof Hao Pei  Prof Li Li
Institution:1. Department Shanghai Key Laboratory of Green Chemistry and Chemical Processes School of Chemistry and Molecular Engineering, East China Normal University, 500 Dongchuan Road, Shanghai, 200241 P. R. China

These authors contributed equally to this work.;2. Department Shanghai Key Laboratory of Green Chemistry and Chemical Processes School of Chemistry and Molecular Engineering, East China Normal University, 500 Dongchuan Road, Shanghai, 200241 P. R. China;3. Pharmaceutical Sciences Laboratory and Turku Bioscience Centre, Åbo Akademic University, 20520 Turku, Finland

Abstract:In response to specific stimuli, dynamic covalent materials enable the generation of new structures by reversibly forming/breaking chemical bonds, thus showing great potential for application in controlled drug release. However, using dynamic covalent chemistry to program drug-delivery kinetics remains challenging. Herein, an in situ polymerization-generated DNA-scaffolded disulfide redox network (DdiSRN) is reported in which nucleic acids are used as a scaffold for dynamic disulfide bonds. The constructed DdiSRN allows selective release of loading cargos inside cancer cells in response to redox stimuli. Moreover, the density of disulfide bonds in network can be tuned by precise control over their position and number on DNA scaffolds. As a result, drug-delivery kinetics can be programmed with a half-life, t1/2, decreasing from 8.3 to 4.4 h, thus facilitating keeping an adequate drug concentration within the therapeutic window. Both in vitro and in vivo studies confirm that co-delivery of DOX and siRNA in combination with fast drug release inside cells using this DdiSRN enhances the therapeutic effect on multidrug-resistant cancer. This nontrivial therapeutic platform enabling kinetic control provides a good paradigm for precision cancer medicine.
Keywords:covalent chemistry  disulfide bonds  disulfide redox network  DNA scaffolds  drug delivery
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