Substrate conformational dynamics facilitate structure-specific recognition of gapped DNA by DNA polymerase

Author:

Craggs Timothy D1ORCID,Sustarsic Marko1,Plochowietz Anne1,Mosayebi Majid23,Kaju Hendrik2,Cuthbert Andrew1,Hohlbein Johannes45ORCID,Domicevica Laura6,Biggin Philip C6,Doye Jonathan P K2ORCID,Kapanidis Achillefs N1

Affiliation:

1. Biological Physics Research Group, Clarendon Laboratory, Department of Physics, University of Oxford, Oxford OX1 3PU, UK

2. Physical and Theoretical Chemistry Laboratory, Department of Chemistry, University of Oxford, South Parks Road, Oxford OX1 3QZ, UK

3. School of Physics, Institute for Research in Fundamental Sciences (IPM), Tehran 19538-33511, Iran

4. Laboratory of Biophysics, Wageningen University & Research, Wageningen 6708 WE, The Netherlands

5. Microspectroscopy Research Facility Wageningen, Wageningen University & Research, Wageningen 6708 WE, The Netherlands

6. Department of Biochemistry, University of Oxford, Oxford OX1 3QU, UK

Abstract

Abstract DNA-binding proteins utilise different recognition mechanisms to locate their DNA targets; some proteins recognise specific DNA sequences, while others interact with specific DNA structures. While sequence-specific DNA binding has been studied extensively, structure-specific recognition mechanisms remain unclear. Here, we study structure-specific DNA recognition by examining the structure and dynamics of DNA polymerase I Klenow Fragment (Pol) substrates both alone and in DNA–Pol complexes. Using a docking approach based on a network of 73 distances collected using single-molecule FRET, we determined a novel solution structure of the single-nucleotide-gapped DNA–Pol binary complex. The structure resembled existing crystal structures with regards to the downstream primer-template DNA substrate, and revealed a previously unobserved sharp bend (∼120°) in the DNA substrate; this pronounced bend was present in living cells. MD simulations and single-molecule assays also revealed that 4–5 nt of downstream gap-proximal DNA are unwound in the binary complex. Further, experiments and coarse-grained modelling showed the substrate alone frequently adopts bent conformations with 1–2 nt fraying around the gap, suggesting a mechanism wherein Pol recognises a pre-bent, partially-melted conformation of gapped DNA. We propose a general mechanism for substrate recognition by structure-specific enzymes driven by protein sensing of the conformational dynamics of their DNA substrates.

Funder

Lindemann Trust Fellowship

Wellcome Trust

German National Academic Foundation

Marie Curie Career Integration Grant

EPSRC

European Research Council

BBSRC

University of Oxford

Publisher

Oxford University Press (OUP)

Subject

Genetics

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