Landon Preston B, Lee Joon, Hwang Michael Taeyoung, Mo Alexander H, Zhang Chen, Neuberger Anthony, Meckes Brian, Gutierrez Jose J, Glinsky Gennadi, Lal Ratnesh
Department of Bioengineering, ‡Department of Mechanical and Aerospace Engineering, §Materials Science and Engineering, and ∥Department of Nanoengineering, University of California, San Diego , 9500 Gilman Drive, La Jolla, California 92093, United States.
Langmuir. 2014 Nov 25;30(46):14073-8. doi: 10.1021/la503711g. Epub 2014 Nov 11.
Current work in tuning DNA kinetics has focused on changing toehold lengths and DNA concentrations. However, kinetics can also be improved by enhancing the completion probability of the strand displacement process. Here, we execute this strategy by creating a toehold DNA motor device with the inclusion of a synthetic nucleotide, inosine, at selected sites. Furthermore, we found that the energetic bias can be tuned such that the device can stay in a stable partially displaced state. This work demonstrates the utility of energetic biases to change DNA strand displacement kinetics and introduces a complementary strategy to the existing designs.
目前在调整DNA动力学方面的工作主要集中在改变引发链长度和DNA浓度上。然而,通过提高链置换过程的完成概率也可以改善动力学。在此,我们通过创建一种引发链DNA马达装置来实施这一策略,该装置在选定位置包含一种合成核苷酸——次黄嘌呤。此外,我们发现可以调整能量偏差,使该装置能够保持在稳定的部分置换状态。这项工作证明了能量偏差在改变DNA链置换动力学方面的效用,并引入了一种与现有设计互补的策略。