Literature DB >> 33491732

Modelling single-molecule kinetics of helicase translocation using high-resolution nanopore tweezers (SPRNT).

Jonathan M Craig1, Andrew H Laszlo1, Ian C Nova1, Jens H Gundlach1.   

Abstract

Single-molecule picometer resolution nanopore tweezers (SPRNT) is a technique for monitoring the motion of individual enzymes along a nucleic acid template at unprecedented spatiotemporal resolution. We review the development of SPRNT and the application of single-molecule kinetics theory to SPRNT data to develop a detailed model of helicase motion along a single-stranded DNA substrate. In this review, we present three examples of questions SPRNT can answer in the context of the Superfamily 2 helicase Hel308. With Hel308, SPRNT's spatiotemporal resolution enables resolution of two distinct enzymatic substates, one which is dependent upon ATP concentration and one which is ATP independent. By analyzing dwell-time distributions and helicase back-stepping, we show, in detail, how SPRNT can be used to determine the nature of these observed steps. We use dwell-time distributions to discern between three different possible models of helicase backstepping. We conclude by using SPRNT's ability to discern an enzyme's nucleotide-specific location along a DNA strand to understand the nature of sequence-specific enzyme kinetics and show that the sequence within the helicase itself affects both step dwell-time and backstepping probability while translocating on single-stranded DNA.
© 2021 The Author(s). Published by Portland Press Limited on behalf of the Biochemical Society.

Entities:  

Keywords:  Helicases; enzymology; kinetics; nanopores; single-molecule

Mesh:

Substances:

Year:  2021        PMID: 33491732      PMCID: PMC8722770          DOI: 10.1042/EBC20200027

Source DB:  PubMed          Journal:  Essays Biochem        ISSN: 0071-1365            Impact factor:   8.000


  76 in total

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5.  DNA binding and unwinding by Hel308 helicase requires dual functions of a winged helix domain.

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Review 9.  DNA unwinding and protein displacement by superfamily 1 and superfamily 2 helicases.

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  4 in total

1.  Nanopore tweezers measurements of RecQ conformational changes reveal the energy landscape of helicase motion.

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2.  Sequence-dependent mechanochemical coupling of helicase translocation and unwinding at single-nucleotide resolution.

Authors:  Andrew H Laszlo; Jonathan M Craig; Momčilo Gavrilov; Ramreddy Tippana; Ian C Nova; Jesse R Huang; Hwanhee C Kim; Sarah J Abell; Mallory deCampos-Stairiker; Jonathan W Mount; Jasmine L Bowman; Katherine S Baker; Hugh Higinbotham; Dmitriy Bobrovnikov; Taekjip Ha; Jens H Gundlach
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Journal:  bioRxiv       Date:  2022-10-08
  4 in total

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