Selnihhin Denis, Andersen Ebbe Sloth
Center for DNA Nanotechnology, Interdisciplinary Nanoscience Center, Department of Molecular Biology & Genetics, Aarhus University, 8000, Aarhus, Denmark.
Methods Mol Biol. 2015;1244:23-44. doi: 10.1007/978-1-4939-1878-2_2.
The DNA origami method enables the creation of complex nanoscale objects that can be used to organize molecular components and to function as reconfigurable mechanical devices. Of relevance to synthetic biology, DNA origami structures can be delivered to cells where they can perform complicated sense-and-act tasks, and can be used as scaffolds to organize enzymes for enhanced synthesis. The design of DNA origami structures is a complicated matter and is most efficiently done using dedicated software packages. This chapter describes a procedure for designing DNA origami structures using a combination of state-of-the-art software tools. First, we introduce the basic method for calculating crossover positions between DNA helices and the standard crossover patterns for flat, square, and honeycomb DNA origami lattices. Second, we provide a step-by-step tutorial for the design of a simple DNA origami biosensor device, from schematic idea to blueprint creation and to 3D modeling and animation, and explain how careful modeling can facilitate later experimentation in the laboratory.
DNA折纸方法能够创建复杂的纳米级物体,这些物体可用于组织分子成分,并用作可重构的机械设备。与合成生物学相关的是,DNA折纸结构可以递送至细胞,在细胞中它们能够执行复杂的传感和作用任务,并且可以用作支架来组织酶以增强合成。DNA折纸结构的设计是一件复杂的事情,使用专用软件包来完成最为高效。本章描述了一种使用一系列先进软件工具来设计DNA折纸结构的程序。首先,我们介绍计算DNA螺旋之间交叉位置的基本方法以及用于平面、方形和蜂窝状DNA折纸晶格的标准交叉模式。其次,我们提供了一个简单DNA折纸生物传感器装置设计的分步教程,从示意图构思到蓝图创建,再到三维建模和动画制作,并解释了精心建模如何能够促进后续实验室实验。