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Bostelmann-Arp, L.

Publications and source records attributed to Bostelmann-Arp, L..

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Ubp3 mediates dynamic deubiquitination of mitochondria upon induction of mitophagy

Ensuring quality and maintenance of mitochondria within eukaryotic cells is important for cellular fitness. One critical pathway that needs to be tightly controlled to achieve this is mitophagy, which is negatively regulated by the deubiquitinase Ubp3 in Saccharomyces cerevisiae. Here we show that beyond this established role of Ubp3, it is critical to mediate substantial temporal changes of the mitochondrial ubiquitin landscape during mitophagy. Isolated mitochondria displayed extensive ubiquitination under steady-state conditions, whereas rapamycin-mediated induction of mitophagy/autophagy led to a progressive elimination of mitochondrial ubiquitination. A systematic screening analysis revealed that Ubp3 and Ubp4 are crucial regulators of rapamycin-induced mitochondrial deubiquitination. Deletion of Bre5, a cofactor of Ubp3, or of the UBI4 gene, encoding Ubi4 required for mitophagy, did not impair deubiquitination of mitochondria during mitophagy, indicating that Ubp3 has additional functions. We further showed that Ubi4 acts epistatic to Ubp3 for regulating mitophagy, supporting that mitophagy does not simply depend on the extent of mitochondrial ubiquitination, but rather on specific ubiquitinated substrates. Consistent with the role of Ubp3 in vivo, purified Ubp3 or its catalytic domain alone were sufficient to efficiently deubiquitinate isolated mitochondria in vitro in a Bre5-independent manner. Together, these findings highlight Ubp3 as a prominent rheostat of mitochondrial ubiquitin remodelling, revealing mitochondrial ubiquitin storage and its dynamic release as another layer of stress regulation by ubiquitin-dependent quality control pathways.

cell biology↗

In vitro characterization of the baker's yeast deubiquitinase Ubp3

Ubp3 is one of about 20 deubiquitinases (DUBs) in S. cerevisiae. The current view generally assumes that Ubp3 requires its interaction partner Bre5, which is proposed to function as a positive regulator. Accordingly, the Ubp3/Bre5 complex has been implicated in a broad range of cellular processes for example trafficking between ER and Golgi, stress granule formation and selective autophagy. However, the molecular basis of this proposed Bre5-dependent activity remains unclear. To address this at a molecular level, Ubp3, Bre5, and related constructs were heterologously expressed in E. coli, purified to homogeneity, and characterized in vitro. Both proteins contain folded domains as well as extensive intrinsically disordered regions (IDRs). Despite this structural complexity, the Ubp3/Bre5 complex could be isolated following either co-expression in vivo or after in vitro assembly. Unexpectedly, complex formation with Bre5 was not required for the catalytic activity of full length Ubp3. Furthermore, even the isolated catalytic domain of Ubp3 was fully active against two distinct substrates in the absence of Bre5, demonstrating that its deubiquitinating activity is intrinsically independent of Bre5. These findings indicate that the catalytic domain alone is sufficient for substrate cleavage, whereas the extensive IDRs of Ubp3 and its cofactor Bre5 might contribute to substrate recognition or specificity. Overall, this study challenges the prevailing model of Bre5-dependent activation of Ubp3 and provides new insights into the molecular organization of the Ubp3/Bre5 system. More broadly, it highlights the importance of intrinsically disordered regions in regulating deubiquitinase function and cellular signaling networks.

biochemistry↗