Nanomed Labs, Dipartimento di Fisica, Università di Genova, via Dodecaneso 33 Genova, 16146, Italy.
Sci Rep. 2012;2:791. doi: 10.1038/srep00791. Epub 2012 Nov 9.
Several strategies have been developed for the control of DNA translocation in nanopores and nanochannels. However, the possibility to reduce the molecule speed is still challenging for applications in the field of single molecule analysis, such as ultra-rapid sequencing. This paper demonstrates the possibility to alter the DNA translocation process through an elastomeric nanochannel device by dynamically changing its cross section. More in detail, nanochannel deformation is induced by a macroscopic mechanical compression of the polymeric device. This nanochannel squeezing allows slowing down the DNA molecule passage inside it. This simple and low cost method is based on the exploitation of the elastomeric nature of the device, can be coupled with different sensing techniques, is applicable in many research fields, such as DNA detection and manipulation, and is promising for further development in sequencing technology.
已经开发出了几种用于控制纳米孔和纳米通道中 DNA 转运的策略。然而,对于在单分子分析领域的应用,如超快速测序,降低分子速度的可能性仍然具有挑战性。本文通过动态改变其横截面,展示了通过弹性纳米通道装置改变 DNA 转运过程的可能性。更详细地说,纳米通道的变形是通过对聚合物装置的宏观机械压缩来诱导的。这种纳米通道挤压允许减慢 DNA 分子在其中的通过速度。这种简单且低成本的方法基于对器件弹性性质的利用,可以与不同的传感技术相结合,适用于许多研究领域,如 DNA 检测和操作,并且有望在测序技术中进一步发展。