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Updated: Sep 4, 2025

Examination of Proteins Bound to Nascent DNA in Mammalian Cells Using BrdU-ChIP-Slot-Western Technique
Published on: January 14, 2016
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.
Abstract:
Elevated DNA replication stress causes instability of the DNA replication fork and increased DNA mutations, which underlies tumorigenesis. The DNA replication stress regulator silencing-defective 2 (SDE2) is known to bind to TIMELESS (TIM), a protein of the fork protection complex, and enhances its stability, thereby supporting replisome activity at DNA replication forks. However, the DNA-binding activity of SDE2 is not well defined. Here, we structurally and functionally characterize a new conserved DNA-binding motif related to the SAP (SAF-A/B, Acinus, PIAS) domain in human SDE2 and establish its preference for ssDNA. Our NMR solution structure of the SDE2SAP domain reveals a helix-extended loop-helix core with the helices aligned parallel to each other, consistent with known canonical SAP folds. Notably, we have shown that the DNA interaction of this SAP domain extends beyond the core SAP domain and is augmented by two lysine residues in the C-terminal tail, which is uniquely positioned adjacent to the SAP motif and conserved in the pre-mRNA splicing factor SF3A3. Furthermore, we found that mutation in the SAP domain and extended C terminus not only disrupts ssDNA binding but also impairs TIM localization at replication forks, thus inhibiting efficient fork progression. Taken together, our results establish SDE2SAP as an essential element for SDE2 to exert its role in preserving replication fork integrity via fork protection complex regulation and highlight the structural diversity of the DNA-protein interactions achieved by a specialized DNA-binding motif.
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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