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Korchak, E. J.

Publications and source records attributed to Korchak, E. J..

5 recordsLinked to original sources

Mechanisms of USP7/MAGEL2 Complex Assembly and Its Mutational Disruption in Neurodevelopmental Diseases

The WASH complex regulates endosomal trafficking and is linked to several neurodevelopmental diseases, including Prader-Willi syndrome, Schaaf-Yang syndrome, and Hao-Fountain syndrome. Its function is tightly controlled by ubiquitination, maintained by the multi-subunit MUST complex containing both a ubiquitin ligase (MAGEL2/TRIM27) and a deubiquitinase (USP7). However, the mechanism underlying the MUST complex assembly remains poorly understood. In this study, we investigate the assembly of USP7 and MAGEL2 components of the MUST complex using NMR spectroscopy, isothermal titration calorimetry, X-ray crystallography, and cellular assays. We show that the USP7/MAGEL2 interaction is bipartite and multivalent. Two distinct domains of USP7, TRAF and UBL1-2, recognize two unstructured but evolutionarily conserved regions of MAGEL2, one of which contains multiple TRAF-binding sites. Furthermore, we determine the high-resolution crystal structure of the TRAF/MAGEL2 complex and identify Hao-Fountain syndrome-linked mutations in USP7 that disrupt USP7/MAGEL2 complex formation in vitro and in cells. These findings provide mechanistic insight into the pathogenic basis of Hao-Fountain syndrome and related Schaaf-Yang and Prader-Willi syndromes.

biochemistry↗

A RAD18 SAP domain PIP motif enables PCNA mono-ubiquitination and USP1-BRCA1 synthetic lethality

The proliferating cell nuclear antigen (PCNA) sliding clamp is mono-ubiquitinated by RAD6-RAD18 in response to DNA damage, initiating the DNA damage tolerance pathway of translesion synthesis. The molecular basis by which RAD18 engages PCNA has, however, remained incompletely defined. Mono-ubiquitinated PCNA is subsequently poly-ubiquitinated with K48-linked chains that target PCNA for degradation. Ubiquitin-specific protease 1 (USP1) reverses PCNA mono- and poly-ubiquitination; accordingly, inhibiting USP1 causes the accumulation of mono-ubiquitinated PCNA at replication forks and a reduction in total PCNA levels. USP1 inhibitors promote the accumulation of ssDNA gaps (ssGAPs) in newly replicated DNA and are synthetic lethality in BRCA1-deficient cells. Here, we combine computational and structural approaches to identify and characterize a PCNA-interacting peptide (PIP) motif in RAD18. This PIP motif is required for RAD18-dependent DNA damage-induced PCNA ubiquitination and PCNA turnover. Mutation of the RAD18-PCNA interface reduces ssGAP accumulation and USP1 inhibitor sensitivity in BRCA1-deficient cells. Furthermore, cells adapted to prolonged USP1 inhibition exhibit reduced RAD18 levels, suggesting that deregulation of RAD18 contributes to a biologically relevant drug resistance mechanism. This resistance could be overcome by inhibiting the Ataxia telangiectasia and Rad3-related (ATR) kinase. Together, these findings define a molecular interface required for RAD18-dependent PCNA mono-ubiquitination and identify it as a key determinant of USP1-BRCA1 synthetic lethality.

biochemistry↗

Functional Spectrum of USP7 Pathogenic Variants in Hao-Fountain Syndrome: Insights into the Enzyme's Activity, Stability, and Allosteric Modulation

Hao-Fountain syndrome is a rare neurodevelopmental disorder caused by mutations in the de-ubiquitinating enzyme USP7 (Ubiquitin Specific Protease 7). Due to the novelty of the disease and its poorly understood molecular mechanisms, treatments for the syndrome are currently lacking. This study examines the effects of 11 patient-derived variants located within the catalytic domain of USP7, focusing on their impact on the enzymes activity, thermodynamic stability, and substrate recognition. Our findings reveal a spectrum of functional consequences, ranging from complete inactivation to hyperactivation of USP7. Notably, we identify a specific subset of pathogenic variants whose catalytic activity can be significantly boosted using a novel allosteric activator. These results provide the first insight into USP7 malfunction in Hao-Fountain syndrome-linked variants and pave the way for improved prognostic approaches and targeted treatments in the future.

biochemistry↗

Small-molecule allosteric activator of ubiquitin-specific protease 7 (USP7)

Ubiquitin-specific protease 7 (USP7) is a deubiquitylase essential for cell homeostasis, DNA repair, and regulation of both tumor suppressors and oncogenes. Inactivating USP7 mutations have been associated with Hao-Fountain Syndrome (HAFOUS), a rare neurodevelopmental disorder. Although a range of USP7 inhibitors have been developed over the last decade, in the context of HAFOUS as well as oncogene regulation, USP7 activators may represent a more relevant approach. To address this challenge, we report the discovery and characterization of a small-molecule activator of USP7 called MS-8. We showed that MS-8 activates USP7 by engaging the allosteric C-terminal binding pocket of USP7, thus mimicking the allosteric autoactivation by the USP7 C-terminal tail. We observed that MS-8 engages and activates mutant USP7 in a cellular context, impacting downstream proteins. Taken together, our study provides validation of the USP7 activator that paves the way towards novel activation-driven USP7 pharmacology.

biochemistry↗

DNA polymerase η is regulated by mutually exclusive mono-ubiquitination and mono-NEDDylation

DNA polymerase eta (Pol {eta}) is a Y-family translesion polymerase responsible for synthesizing new DNA across UV-damaged templates. It is recruited to replication forks following mono-ubiquitination of the PCNA DNA clamp. This interaction is mediated by PCNA-interacting protein (PIP) motifs within Pol {eta}, as well as by its C-terminal ubiquitin-binding zinc finger (UBZ) domain. Previous work has suggested that Pol {eta} itself is mono-ubiquitinated at four C-terminal lysine residues, which is dependent on prior ubiquitin-binding by its UBZ domain. Here, we show that Pol {eta} can be modified at the same lysine residues by the ubiquitin-like protein, NEDD8. Like ubiquitination, this modification is driven by non-covalent interactions between NEDD8 and the UBZ domain. While only a small proportion of Pol {eta} is mono-NEDDylated under normal conditions, these levels rapidly increase by inhibiting the COP9 signalosome, suggesting that mono-NEDDylation is maintained under strong negative regulation. Finally, we provide data to support that mono-ubiquitination is important for Pol {eta} foci formation and suggest that NEDDylation disrupts this process. These results reveal a new mechanism of Pol {eta} regulation by ubiquitin-like proteins.

biochemistry↗