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Biology subjects

Byun, I.

Publications and source records attributed to Byun, I..

3 recordsLinked to original sources

Ubiquitin Receptor-Induced Proximity is Sufficient for Ubiquitin-Independent Targeted Protein Degradation via the 26S Proteasome

The 26S proteasome engages with ubiquitinated substrates primarily through its constituent ubiquitin (Ub) receptors, which initiates a cascade of proteolytic processes. Leveraging this recognition mechanism, we developed a targeted protein degradation (TPD) strategy that recruits substrates directly to the proteasome, thereby bypassing the ubiquitination step. Our proteasome-targeting chimera, Protea-Tac, is a heterobifunctional protein degrader composed of a Ub receptor and an intracellular antibody. This chimera integrates into 26S proteasomes without altering their functional integrity. Localization of target proteins, including c-Fos, BRD4, Flag-TDP43, HA-tau, and GFP-ODC, to the proteasome via Protea-Tac with cognate antibodies resulted in their induced degradation. We demonstrated that this platform is 1) modular, allowing facile switching between targets; 2) Ub-independent; and 3) highly target-specific. Protea-Tac exhibited in vivo anti-tumor efficacy, degrading c-Fos and substantially delaying tumor growth. Overall, these findings identify Protea-Tac as a distinct TPD modality capable of directly degrading intracellular proteins via engineered 26S proteasomes. TeaserProtea-Tac is a heterobifunctional protein degrader that enables Ub-independent TPD, exhibits high specificity and modularity, and demonstrates in vivo applicability.

biochemistry↗

USP15: the fourth Proteasome-associated DUB

The human genome encodes approximately 100 deubiquitinating enzymes (DUBs), but only three are considered proteasome-associated DUBs (pDUBs): PSMD14/Rpn11, USP14, and UCHL5. Among these, only PSMD14 is an integral 19S subunit, whereas USP14 and UCHL5 bind transiently to specific proteasomal subunits. Given the dynamic nature of proteasome composition, we searched for additional pDUBs. USP15 was found to be associated with 26S proteasomes purified from cultured cells. In proteasome preparations from erythrocytes, USP15 was identified as the most abundant transient pDUB. It was even feasible to separate proteasomes containing USP15 from those containing USP14. Although USP15 utilizes an internal ubiquitin-like (UBL) domain for positioning itself at the proteasome, it did not compete with the UBL-containing USP14. USP15 facilitated substrate selection at the proteasome by efficiently disassembling short polyubiquitin (polyUb) chains, while sparing K48-linked tetra-ubiquitin conjugates from deubiquitination. This feature may aid the proteasome in differentiating between substrates to be rescued from those committed to proteolysis. Identification of a fourth pDUB encourages the continued search for additional proteasome-interacting proteins that modulate its substrate specificity in a context-specific manner.

biochemistry↗

ECPAS/Ecm29-Mediated 26S Proteasome Disassembly Is an Adaptive Response to Glucose Starvation

The 26S proteasome consists of loosely associated 20S catalytic and 19S regulatory complexes. Approximately half of the proteasomes in eukaryotic cells exist as free 20S complexes; however, our mechanistic and physiological understanding of what determines the ratio of 26S to 20S species remains incomplete. Here, we show that glucose starvation in mammalian cells results in the uncoupling of 26S holoenzymes into intact 20S and 19S subcomplexes. Subcomplex affinity-purification and quantitative mass spectrometry revealed that Ecm29 proteasome adaptor and scaffold (ECPAS) is a crucial mediator of this structural remodeling. The loss of ECPAS abrogated 26S dissociation, leading to decreased degradation of 20S proteasome substrates such as puromycylated polypeptides and lysine-less cyclin B. In silico modeling analysis suggested that the conformational changes of ECPAS may commence the disassembly process. ECPAS was also essential for proper endoplasmic reticulum stress response and cell survival during glucose starvation. In addition, we evaluated the role of ECPAS in vivo using the mouse xenograft model and observed that glucose-deprived tumor tissues had significantly elevated 20S proteasome levels. Collectively, our results indicate that the 20S-19S disassembly mediated by ECPAS is a novel mechanism adapting global proteolysis to physiological needs and an effective cellular strategy against proteotoxic stress.

biochemistry↗