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Jaegyun Shin

Sungkyunkwan University · 医学

研究室紹介

Professor Jaegyun Shin's research lab focuses on cellular signaling pathways, particularly those involving ubiquitin-binding proteins, mitophagy, and nuclear receptor regulation. The lab investigates molecular mechanisms underlying protein degradation, mitochondrial homeostasis, and inflammatory responses, with a strong emphasis on p62 and its role in selective autophagy and disease. Key research directions include the regulation of inflammasome activation, stress-induced proteins like SESN2, and transcriptional coactivators such as PELP1 in hormone signaling. The lab also explores viral pathogenesis, particularly how viral proteins like West Nile virus capsid manipulate host cell death pathways through p53 and HDM2 interactions.

ubiquitin-binding proteinsmitophagyinflammasome regulationnuclear receptor coactivatorsviral pathogenesis

Research Overview

Papers
35
Total Citations
2,540
Papers (5y)
7
Primary Field
医学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
7total
2016
2018
2019
2020
2023
Citations per year (5y)
363total
20162018201920202023

Selected Papers

15
1
Article|638 citations·2008
Loss of Autophagy Diminishes Pancreatic β Cell Mass and Function with Resultant Hyperglycemia
Hye Seung Jung, Kun Wook Chung, Jeong Won Kim, Jin Kim, Masaaki Komatsu, Keiji Tanaka, Yen Nguyen, Tong Mook Kang, Kun‐Ho Yoon, JW Kim, Yeon Taek Jeong, Myoung Sook Han
SJR Q1Cell MetabolismOA
SurgeryMedicine
2
Article|294 citations·1996
p62, a Phosphotyrosine-independent Ligand of the SH2 Domain of p56 , Belongs to a New Class of Ubiquitin-binding Proteins
Ratna K. Vadlamudi, Insil Joung, Jack L. Strominger, Jaekyoon Shin
SJR Q1Journal of Biological ChemistryOA

p62 is a novel cellular protein which was initially identified as a phosphotyrosine-independent ligand of the SH2 domain of p56(lck). In the yeast two-hybrid system, p62 specifically interacted with ubiquitin in vivo. Furthermore, p62 bound to ubiquitin-conjugated Sepharose beads in vitro and was efficiently competed by soluble ubiquitin. The interaction was independent of ATP hydrolysis, and its dissociation did not require a reducing agent. Thus, p62 binds to ubiquitin noncovalently. Further a

OncologyMedicine
3
Article|291 citations·2016
SESN2/sestrin2 suppresses sepsis by inducing mitophagy and inhibiting NLRP3 activation in macrophages
Min‐Ji Kim, Soo Han Bae, Jae‐Chan Ryu, Jae‐Chan Ryu, Younghee Kwon, Ji-Hwan Oh, Jeongho Kwon, Jong‐Seok Moon, Kyubo Kim, Atsushi Miyawaki, Min Goo Lee, Jaekyoon Shin
SJR Q1AutophagyOA

Proper regulation of mitophagy for mitochondrial homeostasis is important in various inflammatory diseases. However, the precise mechanisms by which mitophagy is activated to regulate inflammatory responses remain largely unknown. The NLRP3 (NLR family, pyrin domain containing 3) inflammasome serves as a platform that triggers the activation of CASP1 (caspase 1) and secretion of proinflammatory cytokines. Here, we demonstrate that SESN2 (sestrin 2), known as stress-inducible protein, suppresses

EpidemiologyMedicine
4
Article|199 citations·2001
Molecular Cloning and Characterization of PELP1, a Novel Human Coregulator of Estrogen Receptor α
Ratna K. Vadlamudi, Rui‐An Wang, Abhijit Mazumdar, Ayşegül A. Şahin, Rakesh Kumar, Yoon-sok Kim, Jaekyoon Shin
SJR Q1Journal of Biological ChemistryOA

Nuclear hormone receptors (NRs) are transcription factors whose activity is regulated by ligands and by coactivators or corepressors. We report the characterization of a new NR coregulator: proline-, glutamic acid-, leucine-rich protein 1 (PELP1), a novel human protein that comprises 1,282 amino acids and is localized on chromosome 17. The primary structure of PELP1 consists of several motifs present in most transcriptional regulators including nine NR-interacting boxes (LXXLL motifs), a zinc fi

GeneticsBiochemistry, Genetics and Molecular Biology
5
Review|146 citations·1998
P62 and the sequestosome, a novel mechanism for protein metabolism
Jaekyoon Shin
SJR Q1Archives of Pharmacal Research
Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|138 citations·2012
Assurance of mitochondrial integrity and mammalian longevity by the p62–Keap1–Nrf2–Nqo1 cascade
Jeongho Kwon, Eunhye Park Han, Chi‐Bao Bui, Woo-Chul Shin, Jun Ho Lee, Sejeong Lee, Young‐Bong Choi, Ann–Hwee Lee, Kyong‐Hoon Lee, Chankyu Park, Martin S. Obin, Sung Kyu Park
SJR Q1EMBO ReportsOA
Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|108 citations·2007
West Nile virus capsid protein induces p53-mediated apoptosis via the sequestration of HDM2 to the nucleolus
Mi-Ran Yang, Sung Ryul Lee, Wonkyung Oh, Eun‐Woo Lee, Jung‐Yong Yeh, Jin‐Ju Nah, Yi-Seok Joo, Jaekyoon Shin, Han‐Woong Lee, Suhkneung Pyo, Jaewhan Song
SJR Q1Cellular MicrobiologyOA

The capsid protein of the West Nile virus (WNV) functions as an apoptotic agonist via the induction of mitochondrial dysfunction and the activation of caspases-9 and -3. Here, we have determined that the WNV capsid (WNVCp) is capable of binding to and sequestering HDM2 into the nucleolus. WNVCp was shown to interfere with the formation of the HDM2 and p53 complex, thereby causing the stabilization of p53 and the subsequent induction of its target apoptotic protein, Bax. Whereas WNVCp was capable

OncologyMedicine
8
Article|75 citations·1993
Translocation of TCRα Chains into the Lumen of the Endoplasmic Reticulum and Their Degradation
Jaekyoon Shin, Songjae Lee, Jack L. Strominger
SJR Q1Science

After synthesis, the alpha chain of the T cell antigen receptor (TCR alpha) can form a complex with other TCR chains and move to the cell surface, or TCR alpha can undergo degradation in the endoplasmic reticulum (ER) if it remains unassembled. The mechanism of translocation and degradation in the ER is unclear. It was found that the putative transmembrane region of TCR alpha (alpha tm) was incompetent on its own to act as a transmembrane region. Molecules that contained alpha tm were translocat

ImmunologyImmunology and Microbiology
9
Article|71 citations·1998
Genomic structure and promoter analysis of the p62 gene encoding a non‐proteasomal multiubiquitin chain binding protein
Ratna K. Vadlamudi, Jaekyoon Shin
SJR Q1FEBS LettersOA

p62 is a novel immediate early response gene encoding a ubiquitin chain binding protein. To investigate the mechanism of p62 gene expression, we isolated and characterized the 20 kb long human p62 gene. The p62 gene contains seven introns and eight exons. The splice sites conformed to the GT/AG rule, except introns 6 and 7 which used the unusual GC dinucleotides. The p62 promoter is TATA-less, and 357 nucleotides of the 5'-flanking region contain basic machineries for transcription. A reporter g

Cancer ResearchBiochemistry, Genetics and Molecular Biology
10
Article|70 citations·2004
The Transcriptional Corepressor, PELP1, Recruits HDAC2 and Masks Histones Using Two Separate Domains
Young Bong Choi, Jin Kyoung Ko, Jaekyoon Shin
SJR Q1Journal of Biological ChemistryOA

PELP1 (proline-, glutamic acid-, and leucine-rich protein 1) has been recognized as a coactivator of estrogen receptor (ER)-recruiting p300/CREB-binding protein histone acetyltransferase to the target chromosome. The present study shows that PELP1 does indeed coactivate ER-mediated transcription but also serves as a corepressor of other nuclear hormone receptors (NR)- and non-NR sequence-specific transcription factors tested, including GR, Nur77, AP1, NF-κB, and TCF/SRF. PELP1 expression also re

Molecular BiologyBiochemistry, Genetics and Molecular Biology
11
Article|64 citations·2001
p62 forms a ternary complex with PKCζ and PAR‐4 and antagonizes PAR‐4‐induced PKCζ inhibition
Suhwan Chang, Jung Hoe Kim, Jaekyoon Shin
SJR Q1FEBS LettersOA

It has been reported that prostate apoptosis response-4 (PAR-4) binds to and inhibits protein kinase Czeta (PKCzeta) which phosphorylates IkappaB kinase beta (IKKbeta) for nuclear factor kappaB (NFkappaB) activation, while p62 binds to and recruits PKCzeta to the NFkappaB signaling complex. Thus, a mechanism to coordinate the two binding proteins for the regulation of PKCzeta is expected to exist. The present data show that p62 and PAR-4 do not compete for PKCzeta binding but directly interact e

Cancer ResearchBiochemistry, Genetics and Molecular Biology
12
Article|59 citations·2009
Increased signaling through p62 in the marrow microenvironment increases myeloma cell growth and osteoclast formation
Yuko Hiruma, Tadashi Honjo, Diane F. Jelinek, Jolene J. Windle, Jaekyoon Shin, G. David Roodman, Noriyoshi Kurihara
SJR Q1BloodOA

Adhesive interactions between multiple myeloma (MM) cells and marrow stromal cells activate multiple signaling pathways including nuclear factor kappaB (NF-kappaB), p38 mitogen-activated protein kinase (MAPK), and Jun N-terminal kinase (JNK) in stromal cells, which promote tumor growth and bone destruction. Sequestosome-1 (p62), an adapter protein that has no intrinsic enzymatic activity, serves as a platform to facilitate formation of signaling complexes for these pathways. Therefore, we determ

OncologyMedicine
13
Article|44 citations·1985
Radioiodination of a photoactivatable heterobifunctional reagent
Inhae Ji, Jaekyoon Shin, Tae H. Ji
SJR Q3Analytical Biochemistry
Pharmaceutical SciencePharmacology, Toxicology and Pharmaceutics
14
Article|35 citations·2009
SOCS-6 Negatively Regulates T Cell Activation through Targeting p56 to Proteasomal Degradation
Young Bong Choi, Myoungsun Son, Mijin Park, Jaekyoon Shin, Yungdae Yun
SJR Q1Journal of Biological ChemistryOA

The T cell-specific tyrosine kinase, p56(lck), plays crucial roles in T cell receptor (TCR)-mediated T cell activation. Here, we report that SOCS-6 (suppressor of cytokine signaling-6) is a negative regulator of p56(lck). SOCS-6 was identified as a protein binding to the kinase domain of p56(lck) through yeast two-hybrid screening. SOCS-6 bound specifically to p56(lck) (F505), which mimics the active form of p56(lck), but not to wild type p56(lck). In Jurkat T cells, SOCS-6 binding to p56(lck) w

OncologyMedicine
15
Article|33 citations·2015
ENC1 Modulates the Aggregation and Neurotoxicity of Mutant Huntingtin Through p62 Under ER Stress
Huikyong Lee, Hye-Hyun Ahn, Won‐Jae Lee, Yumin Oh, Hyunwoo Choi, Sang Mi Shim, Jaekyoon Shin, Yong‐Keun Jung
SJR Q1Molecular Neurobiology
EpidemiologyMedicine

Research Areas

OncologyMolecular BiologyImmunologyEpidemiologyCancer ResearchCellular and Molecular Neuroscience

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