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Sepic, S.

Publications and source records attributed to Sepic, S..

2 recordsLinked to original sources

Multimodal substrate recruitment enables CTLH-MKLN1 E3 ligase to target N-, C-, and internal degrons

The GID/CTLH family of E3 ubiquitin ligases employs several substrate receptor subunits that recruit distinct degrons, but the substrate recognition mechanism of the CTLHMKLN1 assembly has largely remained elusive. Here, we reconstitute CTLHMKLN1-dependent ubiquitylation of three biochemically distinct substrates - MKLN1 itself, ZMYND19, and FAM72A-recruited UNG2, and determine cryo-EM structures of each substrate bound to MKLN1. The structures reveal how MKLN1's discoidin and Kelch {beta}-propeller domains engage substrates through multivalent contacts. MKLN1 recruits itself through discoidin - Kelch interactions between MKLN1 dimers, forming an assembly that competes with other substrates. ZMYND19 and FAM72A each bind to MKLN1 through loops engaging the discoidin trench domain while their C-terminal Arg residues engage the MKLN1 Kelch central channel, identifying MKLN1 as an Arg/C-degron receptor. The acetylated N-terminus of UNG2 is positioned within a Y-shaped tunnel of FAM72A, defining an adaptor-mediated Ac/N-degron recognition mechanism. Thus, our data reveal how combinatorial deployment of MKLN1 discoidin and Kelch domains enable a single receptor subunit to recognize a diverse substrate repertoire, adding to a complex picture of degron recognition across the GID/CTLH family.

biochemistry↗

Charged Molecular Glue Discovery Enabled by Targeted Degron Display

Small molecules that induce protein interactions hold tremendous potential as new medicines, as probes for molecular pathways, and as tools for agriculture. Explosive growth of targeted protein degradation (TPD) drug development has spurred renewed interest in proximity-inducing molecules and especially Molecular Glue Degraders (MGDs). These compounds catalyze destruction of disease-causing proteins by reshaping protein surfaces and promoting cooperative binding between ubiquitylating enzymes and target proteins. MGD discovery for pre-defined targets is a major challenge in contemporary drug discovery. The field is limited by a lack of approaches that can exploit charged ligand-binding pockets, thus excluding a major fraction of ubiquitin ligases (E3s) that evolved to recognize exceedingly common acidic and basic degrons. Here we solve these important chemical challenges through "chemocentric" MGD discovery of ZZ1, a BET-family protein degrader and a prodrug of a negatively charged glue (c-Glue). ZZ1 activation unmasks a sulfinic acid moiety that binds the modular GID/CTLH ubiquitin ligase complex via a basic pocket in its YPEL5 subunit. YPEL5 is a CRBN structural homolog and an essential non-Cullin ubiquitin ligase cofactor expressed in cancers of the bone marrow. These findings demonstrate a previously unrecognized capacity of YPEL5 to recruit GID/CTLH substrates, and they provide a powerful strategy to discover c-Glues that induce proximity to ubiquitin ligases with similarly desirable properties.

biochemistry↗