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Dürauer, S.

Publications and source records attributed to Dürauer, S..

3 recordsLinked to original sources

Molecular basis of SPRTN activation by DNA and ubiquitin

The promiscuous metalloprotease SPRTN is the key enzyme for proteolytic repair of DNA-protein crosslinks (DPCs). To prevent uncontrolled SPRTN activity, its activation must be tightly regulated. Using NMR spectroscopy and in vitro reconstitution, we elucidate the molecular basis of SPRTNs activation by DNA and ubiquitin. We identify an autoinhibitory mechanism governed by intramolecular electrostatic interactions between a negatively charged linker helix and SPRTNs positively charged DNA-binding domains. DNA relieves this autoinhibition by competitively displacing the linker from the DNA-binding domains, thereby inducing a conformational shift to an open, catalytically active state. This open state enables ubiquitin binding to SPRTNs protease domain, further stabilizing the active conformation. Disruption of the interaction between the autoinhibitory linker and the DNA-binding domains locks SPRTN in a constitutively open state, resulting in enhanced protease activity. Collectively, our data reveal how DNA and ubiquitin cooperate to convert SPRTN from an autoinhibited conformation into its active state.

biochemistry↗

Allosteric activation of the SPRTN protease by ubiquitin maintains genome stability

The DNA-dependent protease SPRTN maintains genome stability by degrading toxic DNA-protein crosslinks (DPCs). To understand how SPRTNs promiscuous protease activity is confined to the cleavage of crosslinked proteins, we reconstitute the repair of DPCs including their modification with SUMO and ubiquitin chains, using recombinant human proteins. We discover that DPC ubiquitylation strongly activates SPRTN independently of SPRTNs known ubiquitin-binding domains. Using protein structure prediction, MD simulations and NMR spectroscopy we reveal that ubiquitin binds to an interface at the back of SPRTNs protease domain, promoting an active conformation. Replacing key interfacial residues prevents ubiquitin-dependent activation of SPRTN, which leads to genomic instability and cell cycle defects in cells expressing hypomorphic SPRTN variants that cause premature aging and liver cancer in Ruijs-Aalfs syndrome patients. Collectively, our results demonstrate that SPRTN activation is coupled to the modification of the crosslinked protein, explaining how specificity is achieved during DPC repair.

biochemistry↗

An auto-release mechanism for HMCES-DNA-protein crosslinks

The conserved protein HMCES crosslinks to abasic (AP) sites in ssDNA to prevent strand scission and the formation of toxic dsDNA breaks during replication. Here, we report a non-proteolytic release mechanism for HMCES-DNA-protein crosslinks (DPCs), which is regulated by DNA context. In ssDNA and at ssDNA-dsDNA junctions, HMCES-DPCs are stable, which efficiently protects AP sites against spontaneous incisions and cleavage by APE1 endonuclease. In contrast, HMCES-DPCs are quickly released in dsDNA, allowing APE1 to initiate downstream repair. Mechanistically, we show that release is governed by two components. First, a conserved glutamate residue within HMCES active site catalyses reversal of the crosslink. Second, affinity to the underlying DNA structure determines whether HMCES re-crosslinks or dissociates. Our study reveals that the protective role of HMCES-DPCs involves their controlled release upon bypass by replication forks, which restricts DPC formation to a necessary minimum.

biochemistry↗