Real-time, single-molecule observation of biomolecular interactions inside nanophotonic zero mode waveguides

Nanotechnology. 2022 Jan 25;33(16). doi: 10.1088/1361-6528/ac467c.

Abstract

Living cells rely on numerous protein-protein, RNA-protein and DNA-protein interactions for processes such as gene expression, biomolecular assembly, protein and RNA degradation. Single-molecule microscopy and spectroscopy are ideal tools for real-time observation and quantification of nucleic acids-protein and protein-protein interactions. One of the major drawbacks of conventional single-molecule imaging methods is low throughput. Methods such as sequencing by synthesis utilizing nanofabrication and single-molecule spectroscopy have brought high throughput into the realm of single-molecule biology. The Pacific Biosciences RS2 sequencer utilizes sequencing by synthesis within nanophotonic zero mode waveguides. A number of years ago this instrument was unlocked by Pacific Biosciences for custom use by researchers allowing them to monitor biological interactions at the single-molecule level with high throughput. In this capability letter we demonstrate the use of the RS2 sequencer for real-time observation of DNA-to-RNA transcription and RNA-protein interactions. We use a relatively complex model-transcription of structured ribosomal RNA fromE. coliand interactions of ribosomal RNA with ribosomal proteins. We also show evidence of observation of transcriptional pausing without the application of an external force (as is required for single-molecule pausing studies using optical traps). Overall, in the unlocked, custom mode, the RS2 sequencer can be used to address a wide variety of biological assembly and interaction questions at the single-molecule level with high throughput. This instrument is available for use at the Center for Integrated Nanotechnologies Gateway located at Los Alamos National Laboratory.

Keywords: biomolecular interactions; biophysics; real-time DNA-to-RNA transcription.

MeSH terms

  • DNA / genetics
  • DNA / metabolism*
  • Escherichia coli / genetics
  • Escherichia coli / metabolism
  • Nanotechnology / methods*
  • RNA / genetics
  • RNA / metabolism*
  • RNA, Ribosomal / metabolism
  • Ribosomal Proteins / metabolism
  • Single Molecule Imaging
  • Transcription, Genetic

Substances

  • RNA, Ribosomal
  • Ribosomal Proteins
  • RNA
  • DNA