The crystal structure of bacteriophage λ RexA provides novel insights into the DNA binding properties of Rex-like phage exclusion proteins

Author:

Adams Myfanwy C1,Schiltz Carl J1,Sun Jing1,Hosford Christopher J1,Johnson Virginia M1,Pan Hao1,Borbat Peter P23,Freed Jack H23,Thomason Lynn C4,Court Carolyn4,Court Donald L4,Chappie Joshua S1ORCID

Affiliation:

1. Department of Molecular Medicine, Cornell University , Ithaca , NY  14853 , USA

2. Department of Chemistry and Chemical Biology, Cornell University , Ithaca, NY  14853 , USA

3. National Biomedical Resource for Advanced Electron Spin Resonance Spectroscopy, Cornell University , Ithaca, NY  14853 , USA

4. Center for Cancer Research, National Cancer Institute , Frederick , MD 21702 , USA

Abstract

Abstract RexA and RexB function as an exclusion system that prevents bacteriophage T4rII mutants from growing on Escherichia coli λ phage lysogens. Recent data established that RexA is a non-specific DNA binding protein that can act independently of RexB to bias the λ bistable switch toward the lytic state, preventing conversion back to lysogeny. The molecular interactions underlying these activities are unknown, owing in part to a dearth of structural information. Here, we present the 2.05-Å crystal structure of the λ RexA dimer, which reveals a two-domain architecture with unexpected structural homology to the recombination-associated protein RdgC. Modelling suggests that our structure adopts a closed conformation and would require significant domain rearrangements to facilitate DNA binding. Mutagenesis coupled with electromobility shift assays, limited proteolysis, and double electron–electron spin resonance spectroscopy support a DNA-dependent conformational change. In vivo phenotypes of RexA mutants suggest that DNA binding is not a strict requirement for phage exclusion but may directly contribute to modulation of the bistable switch. We further demonstrate that RexA homologs from other temperate phages also dimerize and bind DNA in vitro. Collectively, these findings advance our mechanistic understanding of Rex functions and provide new evolutionary insights into different aspects of phage biology.

Funder

National Institutes of Health

National Cancer Institute

Department of Health and Human Services

National Science Foundation

Argonne National Laboratory

National Institute of Food and Agriculture

Publisher

Oxford University Press (OUP)

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