LIMES Chemical Biology Unit, Universität Bonn, Gerhard-Domagk-Straße 1, 53121, Bonn, Germany.
Center of Advanced European Studies and Research, Ludwig-Erhard-Allee 2, 53175, Bonn, Germany.
Angew Chem Int Ed Engl. 2020 Jul 20;59(30):12455-12459. doi: 10.1002/anie.202003991. Epub 2020 Jul 1.
The ability to precisely measure and monitor temperature at high resolution at the nanoscale is an important task for better understanding the thermodynamic properties of functional entities at the nanoscale in complex systems, or at the level of a single cell. However, the development of high-resolution and robust thermal nanosensors is challenging. The design, assembly, and characterization of a group of thermal-responsive deoxyribonucleic acid (DNA) joints, consisting of two interlocked double-stranded DNA (dsDNA) rings, is described. The DNA nanojoints reversibly switch between the static and mobile state at different temperatures without a special annealing process. The temperature response range of the DNA nanojoint can be easily tuned by changing the length or the sequence of the hybridized region in its structure, and because of its interlocked structure the temperature response range of the DNA nanojoint is largely unaffected by its own concentration; this contrasts with systems that consist of separated components.
在复杂体系中或单细胞水平上,精确测量和高分辨率监测纳米尺度温度的能力对于更好地理解功能实体的热力学性质是一项重要任务。然而,开发高分辨率和稳健的热纳米传感器具有挑战性。本文设计、组装和表征了一组热响应的脱氧核糖核酸(DNA)连接体,由两个互锁的双链 DNA(dsDNA)环组成。在没有特殊退火过程的情况下,DNA 纳米连接体可以在不同温度下在静态和动态之间可逆切换。通过改变其结构中杂交区域的长度或序列,可以轻松调整 DNA 纳米连接体的温度响应范围,并且由于其互锁结构,DNA 纳米连接体的温度响应范围受其自身浓度的影响较小;这与由分离组件组成的系统形成对比。