Department of Computational Intelligence and Systems Science, Interdisciplinary Graduate School of Science and Engineering, Tokyo Institute of Technology, 4259, Nagatsuta-cho, Midori-ku, Yokohama, Japan.
Nucleic Acids Res. 2010 Jul;38(13):4539-46. doi: 10.1093/nar/gkq250. Epub 2010 Apr 12.
In this work, we report the development and experimental validation of a coupled statistical thermodynamic model allowing prediction of the structural transitions executed by a novel DNA nanodevice, for quantitative operational design. The efficiency of target structure formation by this nanodevice, implemented with a bistable DNA molecule designed to transform between three distinct structures, is modeled by coupling the isolated equilibrium models for the individual structures. A peculiar behavior is predicted for this nanodevice, which forms the target structure within a limited temperature range by sensing thermal variations. The predicted thermal response is then validated via fluorescence measurements to quantitatively assess whether the nanodevice performs as designed. Agreement between predictions and experiment was substantial, with a 0.95 correlation for overall curve shape over a wide temperature range, from 30 C to 90 C. The obtained accuracy, which is comparable to that of conventional melting behavior prediction for DNA duplexes in isolation, ensures the applicability of the coupled model for illustrating general DNA reaction systems involving competitive duplex formation. Finally, tuning of the nanodevice using the current model towards design of a thermal band pass filter to control chemical circuits, as a novel function of DNA nanodevices is proposed.
在这项工作中,我们报告了一个耦合统计热力学模型的开发和实验验证,该模型允许预测一种新型 DNA 纳米器件执行的结构转变,用于定量操作设计。通过将单个结构的孤立平衡模型耦合起来,对这种纳米器件进行建模,该纳米器件由设计为在三个不同结构之间转换的双稳态 DNA 分子实现,以预测其目标结构的形成效率。预测该纳米器件具有一种特殊的行为,它通过感知热变化在有限的温度范围内形成目标结构。然后通过荧光测量来验证预测的热响应,以定量评估纳米器件是否按设计执行。预测与实验之间的一致性非常高,在 30°C 至 90°C 的较宽温度范围内,整体曲线形状的相关性为 0.95。所获得的准确性可与孤立 DNA 双链体的常规熔解行为预测相媲美,确保了耦合模型在说明涉及竞争性双链体形成的一般 DNA 反应系统方面的适用性。最后,提出了使用当前模型对纳米器件进行调谐,以设计用于控制化学电路的热带通滤波器,作为 DNA 纳米器件的一种新功能。