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Varela, P. F.

Publications and source records attributed to Varela, P. F..

2 recordsLinked to original sources

Structural basis for continuous DNA-end protection during ligation of double-strand breaks in yeast Non-Homologous End-Joining

Non-homologous end joining (NHEJ) repairs DNA double-strand breaks by synapsing and ligating DNA ends. In vertebrates, DNA-PKcs promotes end alignment and processing, yet several eukaryotes - including budding yeast - perform NHEJ without DNA-PKcs, and the underlying mechanism remains unclear. Here we report cryo-electron microscopy structures of reconstituted Saccharomyces cerevisiae NHEJ synaptic complexes assembled on DNA ends bearing either 4-bp terminal microhomologies or blunt termini. On the microhomology substrate with a single 5-P, we capture a ligation-competent short-range complex in which a single Dnl4 catalytic core is fully ordered and engaged at the 5'-adenylated nick. When two 5-P are present, we resolve two predominant, coexisting DNA-aligned protective states in which both Dnl4 DBD-NTD modules occupy the break region with reciprocal geometries, supporting an alternating engagement model for sequential sealing of the two strands while maintaining continuous end association. In contrast, blunt-ended substrates yield a non-aligned protective configuration in which two Dnl4 catalytic modules constrain the DNA ends [~]30 [A] apart in a ligation-incompatible arrangement, providing a structural explanation for slow blunt-end joining in yeast. Together, these structures define architectural and mechanistic principles of DNA-PKcs-independent NHEJ.

molecular biology↗

Disordered regions and folded modules in CAF-1 promote histone deposition in S. pombe

Genome and epigenome integrity in eukaryotes depends on the proper coupling of histone deposition with DNA synthesis. This process relies on the evolutionary conserved histone chaperone CAF-1 for which the links between structure and functions are still a puzzle. While studies of the S. cerevisiae CAF-1 complex enabled to propose a model for the histone deposition mechanism, we still lack a framework to demonstrate its generality and in particular, how its interaction with the polymerase accessory factor PCNA is operating. Here, we reconstituted a complete SpCAF-1 from fission yeast. We characterized its dynamic structure using NMR, SAXS and molecular modeling together with in vitro and in vivo functional studies on rationally designed interaction mutants. Importantly, we identify the unfolded nature of the acidic domain which folds up when binding to histones. We also show how the long KER helix mediates DNA binding and stimulates SpCAF-1 association with PCNA. Our study highlights how the organization of CAF-1 comprising both disordered regions and folded modules enables the dynamics of multiple interactions to promote synthesis-coupled histone deposition essential for its DNA replication, heterochromatin maintenance, and genome stability functions.

biochemistry↗