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Ruis, K.

Publications and source records attributed to Ruis, K..

2 recordsLinked to original sources

NBS1 binds directly to TOPBP1 via disparate interactions between the NBS1 BRCT1 domain and the TOPBP1 BRCT1 and BRCT2 domains

The TOPBP1 and NBS1 proteins are key components of DNA repair and DNA-based signaling systems. TOPBP1 is a multi-BRCT domain containing protein that plays important roles in checkpoint signaling, DNA replication, and DNA repair. Likewise, NBS1, which is a component of the MRE11-RAD50-NBS1 (MRN) complex, functions in both checkpoint signaling and DNA repair. NBS1 also contains BRCT domains, and previous works have shown that TOPBP1 and NBS1 interact with one another. In this work we examine the interaction between TOPBP1 and NBS1 in detail. We report that NBS1 uses its BRCT1 domain to interact with TOPBP1s BRCT1 domain and, separately, with TOPBP1s BRCT2 domain. Thus, NBS1 can make two distinct contacts with TOPBP1. We report that recombinant TOPBP1 and NBS1 proteins bind one another in a purified system, showing that the interaction is direct and does not require post-translational modifications. Surprisingly, we also report that intact BRCT domains are not required for these interactions, as truncated versions of the domains are sufficient to confer binding. For TOPBP1, we find that small 24-29 amino acid sequences within BRCT1 or BRCT2 allow binding to NBS1, in a transferrable manner. These data expand our knowledge of how the crucial DNA damage response proteins TOPBP1 and NBS1 interact with one another and set the stage for functional analysis of the two disparate binding sites for NBS1 on TOPBP1.

cell biology↗

Multi-site phosphorylation of the TOPBP1 ATR Activation Domain propels ATR signaling during the response to DNA breaks

TOPBP1 is a BRCT domain-containing scaffold protein that plays important roles in a diverse array of cellular processes, including DNA damage signaling, DNA repair, DNA replication, and mRNA transcription. For DNA damage signaling, TOPBP1 activates the crucial damage response kinase ATR and this occurs during replication stress as well as during a DNA double-strand break response. ATR signaling allows cells to survive genotoxic issues and represents a formidable barrier to transformation to a tumorigenic state. Despite its importance to genome stability, the biochemical mechanism for how TOPBP1 activates ATR is not fully understood. TOPBP1 uses a discrete domain, termed the ATR activation domain, to stimulate ATR kinase. Recent work has shown that the AAD must be in a multimeric state to activate ATR. Other work has shown that phosphorylation of the AAD on serine 1131 (in Xenopus) is important for its function, and some have suggested that this is linked to the formation of TOPBP1 condensates during a DNA damage response. In this study we examine AAD phosphorylation in detail and we report three important new findings. One, S1131 phosphorylation promotes ATR activation in a manner independent of condensate formation and is instead linked to promoting multimerization of the AAD. Two, we identify a novel sight of AAD phosphorylation, on T1098, and show that is required for ATR activation. Three, we identify additional, candidate phosphorylation sites, some of which fit the consensus for casein kinase 2, and we show that casein kinase 2 activity is required for the AAD to perform its function. These studies show that multi-site phosphorylation of the AAD is an important component of the mechanism by which TOPBP1 activates ATR.

cell biology↗