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Amann, S. J.

Publications and source records attributed to Amann, S. J..

3 recordsLinked to original sources

Structural basis of NSD2 degradation via targeted recruitment of SCF-FBXO22

Targeted protein degradation (TPD) through the ubiquitin-proteasome system is driven by compound-mediated polyubiquitination of a protein-of-interest by an E3 ubiquitin (Ub) ligase. To date, relatively few E3s have been successfully utilized for TPD and the governing principles of functional ternary complex formation between the E3, degrader, and protein target remain elusive. FBXO22 has recently been harnessed by several groups to target different proteins for degradation. FBXO22 recruitment has been enabled through degraders that covalently modify its cysteine residues. Here, we reveal that the aldehyde derivative of UNC10088 promotes cooperative binding of FBXO22 to NSD2, a histone methyltransferase and oncogenic protein, leading to a cryo-EM structure of the full SKP1-CUL1-F-box (SCF)-FBXO22 complex with NSD2. This structure revealed a conformational change in the FBXO22 loop surrounding C326, further exposing the cysteine for covalent recruitment. Additional medicinal chemistry efforts led to the discovery of benzaldehyde-based non-prodrug degraders that similarly engage C326 of FBXO22 and potently degrade NSD2. Furthermore, unlike many degraders, our molecules recruit NSD2 to a different surface of FBXO22 than the known FBXO22 substrate BACH1, allowing for concurrent complex formation and degradation of both the neosubstrate and endogenous substrates. Overall, we demonstrate the biochemical and structural basis for NSD2 degradation, revealing key principles for efficient and selective TPD by SCFFBXO22.

biochemistry↗

Structural basis for the ubiquitin chain recognition of the human 26S proteasome

Proteasomal degradation is a fundamental process for all eukaryotic life. A protein destined for degradation is first tagged with a polyubiquitin chain, which is selected by the proteasome. Different ubiquitin chain topologies serve as distinct signals, with K48-linked chains acting as the canonical degradation signal and K11/K48-branched chains providing even more potent targeting, particularly during cell cycle regulation. However, the structural basis for how the proteasome distinguishes between these different chain architectures has remained unclear. Here, we present high-resolution cryo-EM structures of the human 26S proteasome bound to both a K48-linked tetraubiquitin chain and a K11/K48-branched chain. Our structures reveal distinct binding modes for these two types of chain linkage. K48 chains wrap around the Ubiquitin interaction motif of the receptor RPN10 in an unexpected spiral conformation, while K11 branches engage the proteasome through previously uncharacterised interfaces in a cleft formed between RPN2 and RPN10. Through structure-guided mutagenesis and cellular studies, we demonstrate that these binding modes are essential for efficient substrate degradation and cell cycle progression. These findings establish how the proteasome achieves selective substrate recognition through chain topology-specific interactions.

biochemistry↗

PITHD1: An Endogenous Inhibitor of the 26S Proteasome During Cellular Dormancy

Cellular dormancy represents a state of regulated growth arrest essential for diverse biological processes, from reproduction to cancer progression. While mechanisms controlling protein synthesis in dormant cells have been identified, how cells regulate protein degradation during dormancy remains unclear. Using zebrafish oocytes, eggs and embryos as a model system, we discovered PITHD1 as an endogenous inhibitor of the 26S proteasome. Our high-resolution cryoEM structure reveals that PITHD1 simultaneously blocks three crucial functional sites on the 19S regulatory particle which are required for ubiquitin recognition, processing, and substrate translocation. This triple-lock mechanism effectively prevents protein degradation in dormant cells. Given PITHD1s evolutionary conservation across species, this mechanism likely represents a general strategy for reversible proteasome regulation during cellular dormancy. Our findings establish a new paradigm for controlling proteostasis in quiescent states.

biochemistry↗