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Biology subjects

Zavodszky, E.

Publications and source records attributed to Zavodszky, E..

2 recordsLinked to original sources

Architecture of the UBR4 complex, a giant E4 ligase central to eukaryotic protein quality control

Eukaryotic cells have evolved sophisticated quality control mechanisms to eliminate aggregation-prone proteins that compromise cellular health. Central to this defense is the ubiquitin-proteasome system, where UBR4 acts as essential E4 ubiquitin ligase, amplifying degradation marks on defective proteins. Our cryo-EM analysis of UBR4 in complex with its cofactors KCMF1 and CALM1 reveals a massive 1.3 MDa ring structure, featuring a central substrate-binding arena and flexibly attached catalytic units. Structural data illustrate how UBR4 binds substrate and extends K48-specific ubiquitin chains. Importantly, efficient substrate targeting depends on both pre-ubiquitination and specific N-degrons, with KCMF1 acting as key substrate filter. Furthermore, we show that the architecture of the E4 megacomplex is conserved across eukaryotes but with species specific adaptations, allowing UBR4 to perform its precisely tuned quality-control function in diverse cellular environments.

biochemistry↗

Convergence of orphan quality control pathways at a ubiquitin chain-elongating ligase

Unassembled and partially assembled subunits of multi-protein complexes have emerged as major quality control clients, particularly under conditions of imbalanced gene expression such as stress, aging, and aneuploidy. The factors and mechanisms that eliminate such orphan subunits to maintain protein homeostasis are incompletely defined. Here, we show that the UBR4-KCMF1 ubiquitin ligase complex is required for efficient degradation of multiple unrelated orphan subunits from the chaperonin, proteasome cap, proteasome core, and a protein targeting complex. Epistasis analysis in cells and reconstitution studies in vitro show that the UBR4-KCMF1 complex acts downstream of a priming ubiquitin ligase that first mono-ubiquitinates orphans. UBR4 recognizes both the orphan and its mono-ubiquitin and builds a K48-linked poly-ubiquitin degradation signal. The discovery of a convergence point for multiple quality control pathways may explain why aneuploid cells are especially sensitive to loss of UBR4 or KCMF1 and identifies a potential vulnerability across many cancers.

cell biology↗