Ubiquitin receptor–mediated, ubiquitin-independent targeted protein degradation via 26 S proteasomes

The 26 S 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 26 S proteasomes without altering their structural or functional integrity. Protea-Tac with cognate antibodies degraded various target proteins, including c-Fos, BRD4, Flag TDP43, HA tau, and GFP ODC. We mechanistically demonstrated that this platform is (i) modular, allowing facile target switching, (ii) Ub independent, and (iii) highly target specific. Furthermore, Protea-Tac exhibited potent in vivo antitumor efficacy, posttranslationally inducing c-Fos degradation and substantially delaying tumor progression through both viral and nonviral delivery systems. These findings identify Protea-Tac as a distinct TPD platform capable of directly degrading intracellular proteins via engineered 26 S proteasomes.

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Publication Details

Journal
Science Advances
Published
2026-09-18
DOI
https://doi.org/10.1126/sciadv.aeh0227
Primary Topic
Protein Degradation and Inhibitors
Type
article
Field-Weighted Citation Impact
0.00

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article

Ubiquitin receptor–mediated, ubiquitin-independent targeted protein degradation via 26 S proteasomes

Insuk Byun, Dawon Jeong, Dohyun Han, Min Jae Lee et al.
Science Advances
Protein Degradation and Inhibitors
article

Ubiquitin receptor–mediated, ubiquitin-independent targeted protein degradation via 26 S proteasomes

Insuk Byun, Dawon Jeong, Dohyun Han, Min Jae Lee, Chang‐Han Lee, Jiseong Kim, Jae-Hwan Nam, Eunseo Kim, Jisoo Yang, Yejin Jang, Seh Hoon Park, Soo-Yeon Lee
article en

Abstract

The 26 S 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 26 S proteasomes without altering their structural or functional integrity. Protea-Tac with cognate antibodies degraded various target proteins, including c-Fos, BRD4, Flag TDP43, HA tau, and GFP ODC. We mechanistically demonstrated that this platform is (i) modular, allowing facile target switching, (ii) Ub independent, and (iii) highly target specific. Furthermore, Protea-Tac exhibited potent in vivo antitumor efficacy, posttranslationally inducing c-Fos degradation and substantially delaying tumor progression through both viral and nonviral delivery systems. These findings identify Protea-Tac as a distinct TPD platform capable of directly degrading intracellular proteins via engineered 26 S proteasomes.

Science AdvancesVol. 12(38)
Seoul National University (KR), Seoul National University Hospital (KR), Korea National Institute of Health (KR), Convergence Research Center for Diagnosis Treatment and Care System of Dementia (KR), Korea Disease Control and Prevention Agency (KR), Catholic University of Korea (KR)
National Research Foundation of Korea, Samsung
Openalex Percentile: Top 18%
Protein Degradation and Inhibitors
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