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Chu, S. S. H.

Publications and source records attributed to Chu, S. S. H..

2 recordsLinked to original sources

The trimeric Shu complex in C. elegans is an ATPase that remodels RAD51 filaments in the homologous recombination-associated DNA damage response.

Homologous recombination (HR) is critical to error-free lesion bypass in the DNA damage response. This error-free lesion tolerance pathway is initiated by the RAD51 recombinase, which forms nucleoprotein filaments on single-stranded DNA (ssDNA) to facilitate template-directed repair using homologous sister chromatids. RAD51 filaments are tightly regulated by RAD51 mediator proteins. Among these, the Shu complexes facilitate HR-directed DNA damage tolerance and are evolutionarily conserved from yeast to humans. The Caenorhabditis elegans Shu complex is a heterotrimer consisting of three protein subunits: RFS1, RIP1, and SWS1. However, the biochemical properties of this trimeric complex remain unclear. Here, we report the biochemical characterization of the C. elegans Shu complex and interactions with DNA, ATP, and Rad51 filaments. We first revealed that the Shu trimer preferentially binds DNA with an exposed 5' end, particularly favoring a fork-shaped double-stranded DNA (dsDNA). Then, we found that the trimer binds to ATP and exhibits DNA-dependent ATPase activity. Through site-specific mutagenesis, we identified the catalytic residues in the RFS1 domain and validated the ATPase activity. Using fluorescence-based assays, we further demonstrated that the Shu trimer remodels RAD51 filaments in an ATP-hydrolysis-dependent manner and stabilizes the filaments in an ATP-binding-dependent manner. These findings provide key mechanistic insights into how the C. elegans Shu complex regulates RAD51 filaments, priming them for downstream HR-mediated DNA repair processes.

biochemistry↗

Shu complex is an ATPase that regulates Rad51 filaments in homologous recombination-directed DNA damage response.

Rad51 filaments are Rad51-coated single-stranded DNA and essential intermediates in homologous recombination (HR) and the HR-associated DNA damage response. The yeast Shu complex (Shu) is a conserved regulator of HR, working through its modulation of Rad51 filaments. However, the biochemical properties of Shu remain unclear, which hinders molecular insight into Shus role in HR and the DNA damage response. In this work, we biochemically characterized Shu and analyzed its molecular actions on single-stranded DNA and Rad51 filaments. First, we revealed that Shu preferentially binds DNA with ssDNA components and ssDNA/double-stranded DNA junctions. Then, we identified and validated, through site-specific mutagenesis, that Shu is an ATPase and hydrolyzes ATP in a DNA-dependent manner. Furthermore, we showed that Shu interacts with ssDNA and Rad51 filaments at the 5 end preferentially, altering the conformations of ssDNA and the filaments. The alterations depend on the ATP hydrolysis of Shu, suggesting that the ATPase activity of Shu is important in regulating its functions in HR. The preference of Shu for acting on the 5 end of Rad51 filaments aligns with the observation that Shu promotes lesion bypass at the lagging strand of a replication fork. Our work on Shu, a prototype modulator of Rad51 filaments in eukaryotes, provides a general molecular mechanism for Rad51-mediated error-free DNA lesion bypass.

biochemistry↗