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Updated: Oct 2, 2026

Enhanced Genome Editing with Cas9 Ribonucleoprotein in Diverse Cells and Organisms
Published on: May 25, 2018
Sequentially Self-Assembled Supramolecular Nanocomplexes Enable Systemic Cas9 RNP Delivery and In Vivo Tumor Genome
Takumi Matsuo1,2, Yuto Honda1,2,3, Toshizumi Chino1,2
1Laboratory for Chemistry and Life Science, Institute of Integrated Research, Institute of Science Tokyo, 4259 Nagatsuta-cho, Midori-ku, Yokohama, Kanagawa226-8503, Japan.
Abstract:
In vivo genome editing utilizing Cas9/sgRNA ribonucleoproteins (RNPs) holds substantial therapeutic promise, yet rapid bloodstream clearance and degradation of RNPs have hindered its accumulation within the target site and effective gene editing. Herein, we report a supramolecular ternary complex platform where RNPs are co-assembled with tannic acid (TA) and phenylboronic acid (PBA)-conjugated polymers through sequential self-assembly. This ∼30 nm core-shell structure protects RNPs from enzymatic degradation and dissociates selectively at endosomal pH. Upon intravenous administration in subcutaneous tumor-bearing mice, the ternary complex exhibits prolonged blood circulation and preferential tumor accumulation, achieving 37.2% gene editing at tumor sites compared with only 1.5% for free RNPs. The platform successfully disrupts PLK1 in subcutaneous tumors, accompanied by significant tumor growth suppression. This is further applied to a KRASG13D-mutant tumor model, in which treatment delayed tumor growth. By integrating sequential supramolecular self-assembly with stimuli-responsive cargo release, this strategy presents a promising approach for systemic RNP delivery and tumor genome editing.
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