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◆ Bioconjugate Chemistry2025-12-19· Chemistry

Amphiphilic Polymeric Micelle Spherical Nucleic Acids (SNAs) as Drug Delivery Vehicles

John P. Cavaliere, Connor M. Forsyth, Allen X. Guo, Janice Kang, Kathleen H. Ngo, Chad A. Mirkin

原始摘要(英文原文)· Original abstract
This work describes the synthesis and characterization of a new class of spherical nucleic acid (SNA) derived from amphiphilic polymeric micelles (APM-SNA) for the delivery of hydrophobic drugs. Core structures are assembled from amphiphilic copolymers comprising a hydrophobic block (made from hydroxypropyl methacrylate and methacrylates bearing n -butyl, benzyl, or n -hexyl side chains) and a hydrophilic polyethylene glycol block terminated with an azide group. Alkyne-modified oligonucleotides are conjugated to the polymer cores via click chemistry to form APM-SNAs. Cellular uptake of APM-SNAs is dependent on oligonucleotide density, increasing up to 10-fold at the highest densities. Moreover, higher-density APM-SNAs induce up to a six-fold increase in immune activation compared to linear DNA. Increasing the hydrophobicity and pi–pi stacking interactions of the polymer core with benzyl methacrylate enhances cellular uptake relative to APM-SNAs constructed with the least hydrophobic ( n- butyl methacrylate) monomers. Additionally, benzyl APM-SNAs show superior drug encapsulation efficiency (67 vs 41%) and extended-release profiles (half-life of 27.8 vs 7.4 h) for the STAT3 inhibitor WP1066 compared to n- butyl APM-SNAs. Oligonucleotide sequence influences the extent of cellular uptake in Caki-1 cells; T20-SNAs exhibit ∼40% greater uptake compared to CpG and G-quadruplex sequences after 24 h. These structure-dependent properties lead to a 40% improvement in WP1066 potency when delivered via T20 benzyl APM-SNAs, reducing the drug’s EC 50 from 6.18 to 3.54 μM. Collectively, these results demonstrate that increasing the hydrophobicity of the APM-SNA core and the interactions between the core and the drug enhance drug encapsulation efficiency, prolong release kinetics, and improve therapeutic efficacy.
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