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Structural Dynamics Analysis of USP14 Activation by AKT-Mediated Phosphorylation

Title
Structural Dynamics Analysis of USP14 Activation by AKT-Mediated Phosphorylation
Author(s)
Dash, RajuTran, Non-NuocLee, Sung BaeLee, Byung-Hoon
Issued Date
2024-06
Citation
Cells, v.13, no.11
Type
Article
Author Keywords
phosphorylationblocking loopAKTubiquitin-proteasome systemmolecular dynamics simulationUSP14
Keywords
INHIBITORBINDINGFREE-ENERGY LANDSCAPESUBIQUITINATED PROTEINS ACTIVATEPROTEASOMERECOGNITION
ISSN
2073-4409
Abstract
Ubiquitin-specific protease 14 (USP14), one of the three major proteasome-associated deubiquitinating enzymes (DUBs), is known to be activated by the AKT-mediated phosphorylation at Ser432. Thereby, AKT can regulate global protein degradation by controlling the ubiquitin-proteasome system (UPS). However, the exact molecular mechanism of USP14 activation by AKT phosphorylation at the atomic level remains unknown. By performing the molecular dynamics (MD) simulation of the USP14 catalytic domain at three different states (inactive, active, and USP14-ubiquitin complex), we characterized the change in structural dynamics by phosphorylation. We observed that the Ser432 phosphorylation induced substantial conformational changes of USP14 in the blocking loop (BL) region to fold it from an open loop into a β-sheet, which is critical for USP14 activation. Furthermore, phosphorylation also increased the frequency of critical hydrogen bonding and salt bridge interactions between USP14 and ubiquitin, which is essential for DUB activity. Structural dynamics insights from this study pinpoint the important local conformational landscape of USP14 by the phosphorylation event, which would be critical for understanding USP14-mediated proteasome regulation and designing future therapeutics. © 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
URI
http://hdl.handle.net/20.500.11750/56656
DOI
10.3390/cells13110955
Publisher
MDPI
Related Researcher
  • 이성배 Lee, Sung Bae
  • Research Interests Cellular mechanism of neurodegenerative diseases; Neuronal maintenance and remodeling; 퇴행성 뇌질환의 세포기전; 신경계 유지 및 리모델링 연구
Files in This Item:
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Appears in Collections:
Department of New Biology Lab of Protein Homeostasis and Drug Discovery 1. Journal Articles
Department of Brain Sciences Laboratory of Neurodegenerative Diseases and Aging 1. Journal Articles

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