Core Role of Hydrophobic Core of Polymeric Nanomicelle in Endosomal Escape of siRNA

Chunhui Li(Beijing Institute of Technology), Junhui Zhou(Tianjin University), Yidi Wu(Peking University), Yanliang Dong(Tianjin University), Lili Du(Peking University), Tongren Yang(Beijing Institute of Technology), Yongheng Wang(Chinese Academy of Sciences), Shuai Guo(Beijing Institute of Technology), Mengjie Zhang(Beijing Institute of Technology), Abid Hussain(Beijing Institute of Technology), Haihua Xiao(Chinese Academy of Sciences), Yuhua Weng(Beijing Institute of Technology), Yong Huang(Beijing Institute of Technology), Yong Huang(Beijing Institute of Technology), Xiaoxia Wang(Peking University), Zicai Liang(Peking University), Huiqing Cao(Peking University), Yongxiang Zhao(Chinese Academy of Sciences), Xing‐Jie Liang(Tianjin University), Anjie Dong(Beijing Institute of Technology), Yuanyu Huang(Beijing Institute of Technology), Yuanyu Huang(Beijing Institute of Technology)
Nano Letters
February 17, 2021
Cited by 100

Abstract

Efficient endosomal escape is the most essential but challenging issue for siRNA drug development. Herein, a series of quaternary ammonium-based amphiphilic triblock polymers harnessing an elaborately tailored pH-sensitive hydrophobic core were synthesized and screened. Upon incubating in an endosomal pH environment (pH 6.5–6.8), mPEG45-P(DPA50-co-DMAEMA56)-PT53 (PDDT, the optimized polymer) nanomicelles (PDDT-Ms) and PDDT-Ms/siRNA polyplexes rapidly disassembled, leading to promoted cytosolic release of internalized siRNA and enhanced silencing activity evident from comprehensive analysis of the colocalization and gene silencing using a lysosomotropic agent (chloroquine) and an endosomal trafficking inhibitor (bafilomycin A1). In addition, PDDT-Ms/siPLK1 dramatically repressed tumor growth in both HepG2-xenograft and highly malignant patient-derived xenograft models. PDDT-Ms-armed siPD-L1 efficiently blocked the interaction of PD-L1 and PD-1 and restored immunological surveillance in CT-26-xenograft murine model. PDDT-Ms/siRNA exhibited ideal safety profiles in these assays. This study provides guidelines for rational design and optimization of block polymers for efficient endosomal escape of internalized siRNA and cancer therapy.


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