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Yong Tae Kwon

Seoul National University · 生化学・遺伝学・分子生物学

研究室紹介

Professor Yong Tae Kwon's research lab focuses on the molecular mechanisms of protein homeostasis, particularly the N-end rule pathway and its role in targeted protein degradation. The lab investigates E3 ubiquitin ligases, such as UBR1, UBR2, and UBR4, that recognize N-terminal degradation signals (N-degrons) and regulate protein turnover in development and disease. A key focus is the enzymatic arginylation of N-termini, mediated by ATE1, and its critical role in embryonic development and vascular morphogenesis. The lab also pioneers novel therapeutic strategies, such as AUTOTAC, a bifunctional platform for simultaneous degradation of disease-related proteins and activation of autophagy.

N-end rule pathwayprotein degradationubiquitin ligaseautophagytargeted protein degradation

Research Overview

Papers
191
Total Citations
20,948
Papers (5y)
51
Primary Field
生化学・遺伝学・分子生物学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
51total
2021
2022
2023
2024
2025
Citations per year (5y)
3,540total
20212022202320242025

Selected Papers

15
1
Review|787 citations·2017
The Ubiquitin Code in the Ubiquitin-Proteasome System and Autophagy
Yong Tae Kwon, Aaron Ciechanover
SJR Q1FWCI 26.5Trends in Biochemical Sciences
Molecular BiologyBiochemistry, Genetics and Molecular Biology
2
Article|362 citations·2005
A Family of Mammalian E3 Ubiquitin Ligases That Contain the UBR Box Motif and Recognize N-Degrons
Takafumi Tasaki, Lubbertus C. F. Mulder, Akihiro Iwamatsu, Min Jae Lee, Ilia V. Davydov, Alexander Varshavsky, Mark A. Muesing, Yong Tae Kwon
SJR Q2FWCI 6.3Molecular and Cellular BiologyOA

A subset of proteins targeted by the N-end rule pathway bear degradation signals called N-degrons, whose determinants include destabilizing N-terminal residues. Our previous work identified mouse UBR1 and UBR2 as E3 ubiquitin ligases that recognize N-degrons. Such E3s are called N-recognins. We report here that while double-mutant UBR1(-/-) UBR2(-/-) mice die as early embryos, the rescued UBR1(-/-) UBR2(-/-) fibroblasts still retain the N-end rule pathway, albeit of lower activity than that of w

Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Article|344 citations·2002
An Essential Role of N-Terminal Arginylation in Cardiovascular Development
Yong Tae Kwon, Anna Kashina, Ilia V. Davydov, Ronggui Hu, Jee Young An, Jai Wha Seo, Fangyong Du, Alexander Varshavsky
SJR Q1FWCI 4.1Science

The enzymatic conjugation of arginine to the N-termini of proteins is a part of the ubiquitin-dependent N-end rule pathway of protein degradation. In mammals, three N-terminal residues-aspartate, glutamate, and cysteine-are substrates for arginylation. The mouse ATE1 gene encodes a family of Arg-tRNA-protein transferases (R-transferases) that mediate N-terminal arginylation. We constructed ATE1-lacking mouse strains and found that ATE1-/- embryos die with defects in heart development and in angi

OncologyMedicine
4
Review|333 citations·2017
Protein Quality Control by Molecular Chaperones in Neurodegeneration
Aaron Ciechanover, Yong Tae Kwon
SJR Q2FWCI 23.6Frontiers in NeuroscienceOA

Protein homeostasis (proteostasis) requires the timely degradation of misfolded proteins and their aggregates by protein quality control (PQC), of which molecular chaperones are an essential component. Compared with other cell types, PQC in neurons is particularly challenging because they have a unique cellular structure with long extensions. Making it worse, neurons are postmitotic, i.e., cannot dilute toxic substances by division, and, thus, are highly sensitive to misfolded proteins, especial

EpidemiologyMedicine
5
Article|297 citations·2022
The AUTOTAC chemical biology platform for targeted protein degradation via the autophagy-lysosome system
Chang Hoon Ji, Hee Yeon Kim, Min Ju Lee, Ah Jung Heo, Daniel Youngjae Park, Sungsu Lim, Seulgi Shin, Srinivasrao Ganipisetti, Woo Seung Yang, Chang An Jung, Kun Young Kim, Eun Hye Jeong
SJR Q1FWCI 23.6Nature CommunicationsOA

Targeted protein degradation allows targeting undruggable proteins for therapeutic applications as well as eliminating proteins of interest for research purposes. While several degraders that harness the proteasome or the lysosome have been developed, a technology that simultaneously degrades targets and accelerates cellular autophagic flux is still missing. In this study, we develop a general chemical tool and platform technology termed AUTOphagy-TArgeting Chimera (AUTOTAC), which employs bifun

Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|277 citations·2015
Amino-terminal arginylation targets endoplasmic reticulum chaperone BiP for autophagy through p62 binding
Hyunjoo Cha‐Molstad, Ki Sa Sung, Joonsung Hwang, Kyoung‐A Kim, Ji Eun Yu, Young Dong Yoo, Jun Min Jang, Dong Han, Michael Molstad, Jung Gi Kim, Yoon Jee Lee, Adriana Zakrzewska
SJR Q1FWCI 15.7Nature Cell BiologyOA
EpidemiologyMedicine
7
Article|180 citations·1998
The mouse and human genes encoding the recognition component of the N-end rule pathway
Yong Tae Kwon, Yuval Reiss, Victor A. Fried, Avram Hershko, Jeong Kyo Yoon, David K. Gonda, Pitchai Sangan, Neal G. Copeland, Nancy A. Jenkins, Alexander Varshavsky
SJR Q1FWCI 4.9Proceedings of the National Academy of SciencesOA

The N-end rule relates the in vivo half-life of a protein to the identity of its N-terminal residue. The N-end rule pathway is one proteolytic pathway of the ubiquitin system. The recognition component of this pathway, called N-recognin or E3, binds to a destabilizing N-terminal residue of a substrate protein and participates in the formation of a substrate-linked multiubiquitin chain. We report the cloning of the mouse and human Ubr1 cDNAs and genes that encode a mammalian N-recognin called E3a

Molecular BiologyBiochemistry, Genetics and Molecular Biology
8
Article|168 citations·2019
The N-Degron Pathway Mediates ER-phagy
Chang Hoon Ji, Hee Yeon Kim, Ah Jung Heo, Su Hyun Lee, Min Ju Lee, Su Kim, Ganipisetti Srinivasrao, Su Ran Mun, Hyunjoo Cha‐Molstad, Aaron Ciechanover, Cheol Yong Choi, Hee Gu Lee
SJR Q1FWCI 10.5Molecular CellOA
EpidemiologyMedicine
9
Article|162 citations·2001
Construction and Analysis of Mouse Strains Lacking the Ubiquitin Ligase UBR1 (E3α) of the N-End Rule Pathway
Yong Tae Kwon, Zanxian Xia, Ilia V. Davydov, Stewart H. Lecker, Alexander Varshavsky
SJR Q2FWCI 2.7Molecular and Cellular BiologyOA

The N-end rule relates the in vivo half-life of a protein to the identity of its N-terminal residue. In the yeast Saccharomyces cerevisiae, the UBR1-encoded ubiquitin ligase (E3) of the N-end rule pathway mediates the targeting of substrate proteins in part through binding to their destabilizing N-terminal residues. The functions of the yeast N-end rule pathway include fidelity of chromosome segregation and the regulation of peptide import. Our previous work described the cloning of cDNA and a g

Molecular BiologyBiochemistry, Genetics and Molecular Biology
10
Article|150 citations·2003
Female Lethality and Apoptosis of Spermatocytes in Mice Lacking the UBR2 Ubiquitin Ligase of the N-End Rule Pathway
Yong Tae Kwon, Zanxian Xia, Jee Young An, Takafumi Tasaki, Ilia V. Davydov, Jai Wha Seo, Jun Sheng, Youming Xie, Alexander Varshavsky
SJR Q2FWCI 3.2Molecular and Cellular BiologyOA

Substrates of the ubiquitin-dependent N-end rule pathway include proteins with destabilizing N-terminal residues. UBR1(-/-) mice, which lacked the pathway's ubiquitin ligase E3alpha, were viable and retained the N-end rule pathway. The present work describes the identification and analysis of mouse UBR2, a homolog of UBR1. We demonstrate that the substrate-binding properties of UBR2 are highly similar to those of UBR1, identifying UBR2 as the second E3 of the mammalian N-end rule pathway. UBR2(-

Molecular BiologyBiochemistry, Genetics and Molecular Biology
11
Article|146 citations·1999
Alternative Splicing Results in Differential Expression, Activity, and Localization of the Two Forms of Arginyl-tRNA-Protein Transferase, a Component of the N-End Rule Pathway
Yong Tae Kwon, Anna Kashina, Alexander Varshavsky
SJR Q2FWCI 1.9Molecular and Cellular BiologyOA

The N-end rule relates the in vivo half-life of a protein to the identity of its N-terminal residue. The underlying ubiquitin-dependent proteolytic system, called the N-end rule pathway, is organized hierarchically: N-terminal aspartate and glutamate (and also cysteine in metazoans) are secondary destabilizing residues, in that they function through their conjugation, by arginyl-tRNA-protein transferase (R-transferase), to arginine, a primary destabilizing residue. We isolated cDNA encoding the

Molecular BiologyBiochemistry, Genetics and Molecular Biology
12
Article|107 citations·2000
Altered Activity, Social Behavior, and Spatial Memory in Mice Lacking the NTAN1p Amidase and the Asparagine Branch of the N-End Rule Pathway
Yong Tae Kwon, Seth A. Balogh, Ilia V. Davydov, Anna Kashina, Jeong Kyo Yoon, Youming Xie, Arti Gaur, Lynn A. Hyde, Victor H. Denenberg, Alexander Varshavsky
SJR Q2FWCI 2.3Molecular and Cellular BiologyOA

The N-end rule relates the in vivo half-life of a protein to the identity of its N-terminal residue. N-terminal asparagine and glutamine are tertiary destabilizing residues, in that they are enzymatically deamidated to yield secondary destabilizing residues aspartate and glutamate, which are conjugated to arginine, a primary destabilizing residue. N-terminal arginine of a substrate protein is bound by the Ubr1-encoded E3alpha, the E3 component of the ubiquitin-proteasome-dependent N-end rule pat

Molecular BiologyBiochemistry, Genetics and Molecular Biology
13
Article|97 citations·2021
p62-Induced Cancer-Associated Fibroblast Activation via the Nrf2-ATF6 Pathway Promotes Lung Tumorigenesis
Ji In Kang, Dong Hyun Kim, Ki Woon Sung, Sang Mi Shim, Hyunjoo Cha‐Molstad, Nak‐Kyun Soung, Kyung Ho Lee, Joonsung Hwang, Hee Gu Lee, Yong Tae Kwon, Bo Yeon Kim
SJR Q1FWCI 13.1CancersOA

Cancer-associated fibroblasts (CAFs) are important in tumor progression. The autophagy adaptor protein, p62/SQSTM1/Sequestosome-1, is up-regulated in tumors, but down-regulated in CAFs in the early stages of lung adenocarcinoma. We investigated whether p62-induced autophagy might control CAF activation. Under CAF-inducing conditions, like hypoxia or cancer cell co-cultures, p62 ablation or autophagy inhibition with hydroxychloroquine (HCQ) impaired CAF activation and reduced transforming growth

EpidemiologyMedicine
14
Article|71 citations·2022
Chemical modulation of SQSTM1/p62-mediated xenophagy that targets a broad range of pathogenic bacteria
Yoon Jee Lee, Jin Kyung Kim, Chan Hoon Jung, Young Jae Kim, Eui Jung Jung, Su Hyun Lee, Ha Rim Choi, Yeon Sung Son, Sang Mi Shim, Sang Min Jeon, Jin Ho Choe, Sang‐Hee Lee
SJR Q1FWCI 9.8AutophagyOA

The N-degron pathway is a proteolytic system in which the N-terminal degrons (N-degrons) of proteins, such as arginine (Nt-Arg), induce the degradation of proteins and subcellular organelles via the ubiquitin-proteasome system (UPS) or macroautophagy/autophagy-lysosome system (hereafter autophagy). Here, we developed the chemical mimics of the N-degron Nt-Arg as a pharmaceutical means to induce targeted degradation of intracellular bacteria via autophagy, such as <i>Salmonella enterica</i> serov

EpidemiologyMedicine
15
Article|60 citations·2021
The N-terminal cysteine is a dual sensor of oxygen and oxidative stress
Ah Jung Heo, Su Kim, Chang Hoon Ji, Dohyun Han, Su Jin Lee, Su Hyun Lee, Min Ju Lee, Ji Su Lee, Aaron Ciechanover, Bo Yeon Kim, Yong Tae Kwon
SJR Q1FWCI 3.1Proceedings of the National Academy of SciencesOA

Cellular homeostasis requires the sensing of and adaptation to intracellular oxygen (O<sub>2</sub>) and reactive oxygen species (ROS). The Arg/N-degron pathway targets proteins that bear destabilizing N-terminal residues for degradation by the proteasome or via autophagy. Under normoxic conditions, the N-terminal Cys (Nt-Cys) residues of specific substrates can be oxidized by dioxygenases such as plant cysteine oxidases and cysteamine (2-aminoethanethiol) dioxygenases and arginylated by ATE1 R-t

Molecular BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyEpidemiologyOncologyImmunologyCell BiologyGenetics

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