Human Rev1 relies on insert-2 to promote selective binding and accurate replication of stabilized G-quadruplex motifs

Author:

Ketkar Amit1,Smith Lane1,Johnson Callie2,Richey Alyssa2,Berry Makayla1,Hartman Jessica H3,Maddukuri Leena1,Reed Megan R1,Gunderson Julie E C4,Leung Justin W C5ORCID,Eoff Robert L1ORCID

Affiliation:

1. Department of Biochemistry and Molecular Biology, University of Arkansas for Medical Sciences, Little Rock, AR 72205, USA

2. Arkansas School for Mathematics, Sciences, and the Arts, Hot Springs, AR 71901, USA

3. Department of Biochemistry and Molecular Biology, Medical University of South Carolina, Charleston, SC 29425, USA

4. Department of Physics, Hendrix College, Conway, AR 72032, USA

5. Department of Radiation Oncology, University of Arkansas for Medical Sciences, Little Rock, AR 72205, USA

Abstract

Abstract We previously reported that human Rev1 (hRev1) bound to a parallel-stranded G-quadruplex (G4) from the c-MYC promoter with high affinity. We have extended those results to include other G4 motifs, finding that hRev1 exhibited stronger affinity for parallel-stranded G4 than either anti-parallel or hybrid folds. Amino acids in the αE helix of insert-2 were identified as being important for G4 binding. Mutating E466 and Y470 to alanine selectively perturbed G4 binding affinity. The E466K mutant restored wild-type G4 binding properties. Using a forward mutagenesis assay, we discovered that loss of hRev1 increased G4 mutation frequency >200-fold compared to the control sequence. Base substitutions and deletions occurred around and within the G4 motif. Pyridostatin (PDS) exacerbated this effect, as the mutation frequency increased >700-fold over control and deletions upstream of the G4 site more than doubled. Mutagenic replication of G4 DNA (±PDS) was partially rescued by wild-type and E466K hRev1. The E466A or Y470A mutants failed to suppress the PDS-induced increase in G4 mutation frequency. These findings have implications for the role of insert-2, a motif conserved in vertebrates but not yeast or plants, in Rev1-mediated suppression of mutagenesis during G4 replication.

Funder

National Science Foundation

Arkansas Breast Cancer Research

UAMS College of Medicine

UAMS Translational Research Institute

NIH

Publisher

Oxford University Press (OUP)

Subject

Genetics

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