Optimising DNA origami assembly by reducing off-target interactions

DNA折纸 脚手架 纳米技术 折叠(DSP实现) 序列(生物学) DNA 碱基对 原子力显微镜 互补性(分子生物学) 计算机科学 基础(拓扑) 支架蛋白 生物物理学 DNA纳米技术 光学镊子 计算生物学 序列比对 核酸 A-DNA 化学 材料科学 生物系统 蛋白质折叠
作者
Ben Shirt‐Ediss,Emanuela Torelli,Silvia Adriana Navarro,Hadeel Khamis,Ariel Kaplan,William Trewby,Juan Elezgaray,Nima Moradzadeh,Michael Haydell,Daniel Keppner,Michael Famulok,Kai Armstrong,Natalio Krasnogor
出处
期刊:Nature Communications [Nature Portfolio]
标识
DOI:10.1038/s41467-026-73387-4
摘要

DNA origami enables the programmable self-assembly of nucleic acids into precisely defined nanostructures, yet the influence of primary base sequence on folding reliability remains incompletely understood. In particular, off-target interactions between scaffold and staple strands may introduce kinetic traps and reduce assembly yield, even when the intended Watson-Crick complementarity is preserved. Here we show that scaffold sequence strongly affects DNA origami assembly through the prevalence of off-target binding reactions implicit in the chosen base sequence. We developed a multi-objective computational framework that scores candidate scaffold sequences according to four classes of off-target interactions and selects variants predicted to minimise these effects for a given origami design. Using this approach, we identified both favourable and unfavourable scaffold regions from biological and synthetic sequences and tested them experimentally across 2D and 3D DNA origami structures. Atomic force microscopy showed that scaffolds predicted to have fewer off-target interactions consistently folded with higher yield, whereas off-target-prone scaffolds largely failed despite having fully complementary staple sets. Single-molecule optical tweezers further revealed that scaffold variants with fewer predicted off-target interactions assemble into more mechanically uniform origami structures. These results establish off-target sequence effects as a major determinant of origami folding and we provide a software tool to select scaffold sequences that minimise off-target reactions for any DNA origami design.
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