| Literature DB >> 34558175 |
Junseo Choi1,2, Zheng Jia1,2, Ramin Riahipour1,2, Collin J McKinney2,3, Charuni A Amarasekara2,4, Kumuditha M Weerakoon-Ratnayake2,4, Steven A Soper2,4,5,6, Sunggook Park1,2.
Abstract
Nanoscale electrophoresis allows for unique separations of single molecules, such as DNA/RNA nucleobases, and thus has the potential to be used as single molecular sensors for exonuclease sequencing. For this to be envisioned, label-free detection of the nucleotides to determine their electrophoretic mobility (i.e., time-of-flight, TOF) for highly accurate identification must be realized. Here, for the first time a novel nanosensor is shown that allows discriminating four 2-deoxyribonucleoside 5'-monophosphates, dNMPs, molecules in a label-free manner by nanoscale electrophoresis. This is made possible by positioning two sub-10 nm in-plane pores at both ends of a nanochannel column used for nanoscale electrophoresis and measuring the longitudinal transient current during translocation of the molecules. The dual nanopore TOF sensor with 0.5, 1, and 5 µm long nanochannel column lengths discriminates different dNMPs with a mean accuracy of 55, 66, and 94%, respectively. This nanosensor format can broadly be applicable to label-free detection and discrimination of other single molecules, vesicles, and particles by changing the dimensions of the nanochannel column and in-plane nanopores and integrating different pre- and postprocessing units to the nanosensor. This is simple to accomplish because the nanosensor is contained within a fluidic network made in plastic via replication.Entities:
Keywords: identification of mononucleotides; in-plane nanopore sensing; molecular time-of-flight; nanoimprint lithography; nanoscale electrophoresis; polymer nanofluidic biosensors
Mesh:
Substances:
Year: 2021 PMID: 34558175 PMCID: PMC8542607 DOI: 10.1002/smll.202102567
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 15.153