Spatiotemporally controlled generation of NTPs for single-molecule studies

Nat Chem Biol. 2022 Oct;18(10):1144-1151. doi: 10.1038/s41589-022-01100-9. Epub 2022 Sep 21.

Abstract

Many essential processes in the cell depend on proteins that use nucleoside triphosphates (NTPs). Methods that directly monitor the often-complex dynamics of these proteins at the single-molecule level have helped to uncover their mechanisms of action. However, the measurement throughput is typically limited for NTP-utilizing reactions, and the quantitative dissection of complex dynamics over multiple sequential turnovers remains challenging. Here we present a method for controlling NTP-driven reactions in single-molecule experiments via the local generation of NTPs (LAGOON) that markedly increases the measurement throughput and enables single-turnover observations. We demonstrate the effectiveness of LAGOON in single-molecule fluorescence and force spectroscopy assays by monitoring DNA unwinding, nucleosome sliding and RNA polymerase elongation. LAGOON can be readily integrated with many single-molecule techniques, and we anticipate that it will facilitate studies of a wide range of crucial NTP-driven processes.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • DNA / chemistry
  • DNA-Directed RNA Polymerases / chemistry
  • Nucleosides* / chemistry
  • Nucleosomes*
  • Nucleotides / metabolism

Substances

  • Nucleosides
  • Nucleosomes
  • Nucleotides
  • DNA
  • DNA-Directed RNA Polymerases