Extended DNA-binding interfaces beyond the canonical SAP domain contribute to the function of replication stress

Alexandra S Weinheimer1, YiTing Paung2, Julie Rageul3

  • 1Department of Biochemistry and Cell Biology, State University of New York at Stony Brook, Stony Brook, New York, USA.

Insights

Silencing-defective 2 (SDE2) uses a novel DNA-binding motif to stabilize replication forks and prevent DNA mutations. This mechanism is crucial for maintaining genome stability and preventing cancer.

Area of Science:

  • Molecular Biology
  • Genetics
  • Biochemistry

Background:

  • DNA replication stress contributes to genomic instability and tumorigenesis.
  • The silencing-defective 2 (SDE2) protein interacts with TIMELESS (TIM) to stabilize replication forks.

Purpose of the Study:

  • To structurally and functionally characterize the DNA-binding activity of SDE2.
  • To elucidate the role of the SDE2 SAP domain in DNA binding and replication fork stability.

Main Methods:

  • NMR spectroscopy to determine the solution structure of the SDE2 SAP domain.
  • Site-directed mutagenesis to investigate the role of specific residues in DNA binding and protein function.
  • Immunofluorescence to assess TIMELESS (TIM) localization at replication forks.

Main Results:

  • A conserved DNA-binding motif related to the SAP domain in SDE2 prefers single-stranded DNA (ssDNA).
  • The SDE2 SAP domain's DNA interaction is augmented by C-terminal lysine residues.
  • Mutations disrupting ssDNA binding also impair TIM localization and fork progression.

Conclusions:

  • The SDE2 SAP domain is essential for SDE2's function in maintaining replication fork integrity.
  • SDE2-mediated regulation of the fork protection complex is critical for genome stability.
  • This study reveals structural diversity in DNA-protein interactions mediated by specialized motifs.

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