Regulation of T7 gp2.5 binding dynamics by its C-terminal tail, template conformation and sequence

Author:

Xu Longfu1ORCID,Cabanas-Danés Jordi1ORCID,Halma Matthew T J1ORCID,Heller Iddo1,Stratmann Sarah A2,van Oijen Antoine M3,Lee Seung-Joo4,Peterman Erwin J G1,Wuite Gijs J L1

Affiliation:

1. Department of Physics and Astronomy, Vrije Universiteit Amsterdam , De Boelelaan 1081, 1081 HV, Amsterdam , The Netherlands

2. Zernike Institute for Advanced Materials, University of Groningen , Groningen 9747 AG, The Netherlands

3. Molecular Horizons and School of Chemistry and Molecular Bioscience, University of Wollongong, and Illawarra Health and Medical Research Institute , Wollongong , NSW 2522, Australia

4. Department of Biological Chemistry and Molecular Pharmacology, Harvard Medical School , Boston , MA , USA

Abstract

Abstract Bacteriophage T7 single-stranded DNA-binding protein (gp2.5) binds to and protects transiently exposed regions of single-stranded DNA (ssDNA) while dynamically interacting with other proteins of the replication complex. We directly visualize fluorescently labelled T7 gp2.5 binding to ssDNA at the single-molecule level. Upon binding, T7 gp2.5 reduces the contour length of ssDNA by stacking nucleotides in a force-dependent manner, suggesting T7 gp2.5 suppresses the formation of secondary structure. Next, we investigate the binding dynamics of T7 gp2.5 and a deletion mutant lacking 21 C-terminal residues (gp2.5-Δ21C) under various template tensions. Our results show that the base sequence of the DNA molecule, ssDNA conformation induced by template tension, and the acidic terminal domain from T7 gp2.5 significantly impact on the DNA binding parameters of T7 gp2.5. Moreover, we uncover a unique template-catalyzed recycling behaviour of T7 gp2.5, resulting in an apparent cooperative binding to ssDNA, facilitating efficient spatial redistribution of T7 gp2.5 during the synthesis of successive Okazaki fragments. Overall, our findings reveal an efficient binding mechanism that prevents the formation of secondary structures by enabling T7 gp2.5 to rapidly rebind to nearby exposed ssDNA regions, during lagging strand DNA synthesis.

Funder

Stichting voor Fundamenteel Onderzoek der Materie

China Scholarship Council

European Union H2020 Marie-Sklowdowska Curie International Training Network AntiHelix

Vrije Universiteit Amsterdam

Publisher

Oxford University Press (OUP)

Subject

Genetics

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