Topologically Engineered DNA Origami: Responsive Locking of DNA Quadrilateral for Biosensing Application
Abstract
Abstract DNA nanotechnology offers unique opportunities for creating various accurate and responsive nanostructures. Nevertheless, large-scale conformational changes with high geometric precision and efficiency remain major challenges. Herein we report a topologically engineered DNA origami that undergoes a dramatic transformation from a flexible, shape-indeterminate polygon into a fixed sharply angled rhombus. The DNA quadrilateral nanostructure is first built from a six-helix bundle backbone incorporating three hinge regions to confer mechanical flexibility. Sticky ends at opposing corners are designed as programmable docking domains. A facile catalytic hairpin assembly (CHA) circuit triggered by target miRNA generates duplex lockers that bridge these docking domains, collapsing the DNA quadrilateral into a locked conformation of sharply angled rhombus. Such geometry brings adjacent Cy3−Cy5 couples within the Förster distance. Fluorescence spectra are thus analyzed, which provide a quantitative readout of target miRNA information. A generalizable strategy is established for linking molecular recognition to large-scale DNA nanostructural reconfiguration.
// Source
Authors: Qiuyan Huang, Kun Wang, Xingye Zheng, Hua Chai, Peng Miao
Institutions: University of Chinese Academy of Sciences, Sorbonne Université, Centre National de la Recherche Scientifique, University of Science and Technology of China, Université Paris Sciences et Lettres, Chinese Academy of Engineering, École Normale Supérieure - PSL, École Normale Supérieure