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Sunbok Jang

Ewha Womans University · Biochemistry, Genetics and Molecular Biology

About the Lab

Professor Sunbok Jang's research lab specializes in structural and molecular biology, focusing on the mechanisms of DNA repair, genome maintenance, and signal transduction in eukaryotic and prokaryotic systems. The lab investigates key proteins involved in base excision repair (BER), such as APE1 and MUTYH, as well as regulators like UV-DDB, to understand how they recognize and process damaged DNA with high specificity. Additionally, the lab explores the structural and functional dynamics of membrane proteins, such as TM4SF5 and FAK, in cell migration and adhesion. Integrating structural biology, biochemistry, and computational modeling, the lab aims to uncover molecular mechanisms underlying genomic stability and cellular signaling.

DNA repairbase excision repairstructural biologygenomic stabilitysignal transduction

Research Overview

Papers
49
Total Citations
739
Papers (5y)
10
Primary Field
Biochemistry, Genetics and Molecular Biology

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
10total
2021
2022
2023
2025
2026
Citations per year (5y)
199total
20212022202320252026

Selected Papers

15
1
Article|113 citations·2023
Recent advances and prospects in organic molecule-based phototheranostic agents for enhanced cancer phototherapy
Yuanyuan Zhao, Heejeong Kim, Van-Nghia Nguyen, Sunbok Jang, Won Jun Jang, Juyoung Yoon
SJR Q1Coordination Chemistry Reviews
Biomedical EngineeringEngineering
2
Article|94 citations·1971
Two biotypes of Corynebacterium pseudotuberculosis
E. L. Biberstein, H. D. Knight, Sunbok Jang
SJR Q2Veterinary Record
EndocrinologyBiochemistry, Genetics and Molecular Biology
3
Article|92 citations·2019
Damage sensor role of UV-DDB during base excision repair
Sunbok Jang, Namrata Kumar, Emily C. Beckwitt, Muwen Kong, Elise Fouquerel, Vesna Rapić-Otrin, Rajendra Prasad, Simon C. Watkins, Cindy Khuu, Chandrima Majumdar, Sheila S. David, Samuel H. Wilson
SJR Q1Nature Structural & Molecular BiologyOA
Molecular BiologyBiochemistry, Genetics and Molecular Biology
4
Article|88 citations·2007
CFGP: a web-based, comparative fungal genomics platform
Jongsun Park, Jongsun Park, Ki‐Hong Jung, Sunbok Jang, Kang Yu, Jaeyoung Choi, Seong-Ho Kong, Jongsun Park, Seryun Kim, Heoung-yeol Kim, Seryun Kim, J. F. Kim
SJR Q1Nucleic Acids ResearchOA

Since the completion of the Saccharomyces cerevisiae genome sequencing project in 1996, the genomes of over 80 fungal species have been sequenced or are currently being sequenced. Resulting data provide opportunities for studying and comparing fungal biology and evolution at the genome level. To support such studies, the Comparative Fungal Genomics Platform (CFGP; http://cfgp.snu.ac.kr), a web-based multifunctional informatics workbench, was developed. The CFGP comprises three layers, including

Molecular BiologyBiochemistry, Genetics and Molecular Biology
5
Article|48 citations·2012
Tetraspan TM4SF5-dependent direct activation of FAK and metastatic potential of hepatocarcinoma cells
Oisun Jung, Suyong Choi, Sunbok Jang, Sin-Ae Lee, Ssang‐Taek Lim, Yoon-Ju Choi, Hye‐Jin Kim, Do‐Hee Kim, Taekyoung Kwak, Hyeonjung Kim, Minkyung Kang, Mi‐Sook Lee
SJR Q2Journal of Cell ScienceOA

Transmembrane 4 L six family member 5 (TM4SF5) plays an important role in cell migration, and focal adhesion kinase (FAK) activity is essential for homeostatic and pathological migration of adherent cells. However, it is unclear how TM4SF5 signaling mediates the activation of cellular migration machinery, and how FAK is activated during cell adhesion. Here, we showed that direct and adhesion-dependent binding of TM4SF5 to FAK causes a structural alteration that may release the inhibitory intramo

Immunology and AllergyMedicine
6
Article|39 citations·2014
β-Arm flexibility of HU fromStaphylococcus aureusdictates the DNA-binding and recognition mechanism
Do-Hee Kim, Hookang Im, Jun-Goo Jee, Sunbok Jang, H.J. Yoon, Ae‐Ran Kwon, Sung-Min Kang, Bong‐Jin Lee
Acta Crystallographica Section D Biological Crystallography

HU, one of the major nucleoid-associated proteins, interacts with the minor groove of DNA in a nonspecific manner to induce DNA bending or to stabilize bent DNA. In this study, crystal structures are reported for both free HU from Staphylococcus aureus Mu50 (SHU) and SHU bound to 21-mer dsDNA. The structures, in combination with electrophoretic mobility shift assays (EMSAs), isothermal titration calorimetry (ITC) measurements and molecular-dynamics (MD) simulations, elucidate the overall and res

Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|30 citations·2020
AP-endonuclease 1 sculpts DNA through an anchoring tyrosine residue on the DNA intercalating loop
Nicole M. Hoitsma, Amy M. Whitaker, Emily C. Beckwitt, Sunbok Jang, Pratul K. Agarwal, Bennett Van Houten, Bret Freudenthal
SJR Q1Nucleic Acids ResearchOA

Base excision repair (BER) maintains genomic stability through the repair of DNA damage. Within BER, AP-endonuclease 1 (APE1) is a multifunctional enzyme that processes DNA intermediates through its backbone cleavage activity. To accomplish these repair activities, APE1 must recognize and accommodate several diverse DNA substrates. This is hypothesized to occur through a DNA sculpting mechanism where structural adjustments of the DNA substrate are imposed by the protein; however, how APE1 unique

Molecular BiologyBiochemistry, Genetics and Molecular Biology
8
Article|30 citations·2016
Substrate Specificity of SAMHD1 Triphosphohydrolase Activity Is Controlled by Deoxyribonucleoside Triphosphates and Phosphorylation at Thr592
Sunbok Jang, Xiaohong Zhou, Jinwoo Ahn
SJR Q1Biochemistry

The sterile alpha motif (SAM) and histidine-aspartate (HD) domain containing protein 1 (SAMHD1) constitute a triphosphohydrolase that converts deoxyribonucleoside triphosphates (dNTPs) into deoxyribonucleosides and triphosphates. SAMHD1 exists in multiple states. The monomer and apo- or GTP-bound dimer are catalytically inactive. Binding of dNTP at allosteric site 2 (AS2), adjacent to GTP-binding allosteric site 1 (AS1), induces formation of the tetramer, the catalytically active form. We have d

Infectious DiseasesMedicine
9
Review|27 citations·2020
Expanding molecular roles of UV-DDB: Shining light on genome stability and cancer
Maria Beecher, Namrata Kumar, Sunbok Jang, Vesna Rapić-Otrin, Bennett Van Houten
SJR Q1DNA repairOA
Molecular BiologyBiochemistry, Genetics and Molecular Biology
10
Article|25 citations·2021
Single molecule analysis indicates stimulation of MUTYH by UV-DDB through enzyme turnover
Sunbok Jang, Matthew A. Schaich, Cindy Khuu, Brittani L Schnable, Chandrima Majumdar, Simon C Watkins, Sheila S. David, Bennett Van Houten
SJR Q1Nucleic Acids ResearchOA

The oxidative base damage, 8-oxo-7,8-dihydroguanine (8-oxoG) is a highly mutagenic lesion because replicative DNA polymerases insert adenine (A) opposite 8-oxoG. In mammalian cells, the removal of A incorporated across from 8-oxoG is mediated by the glycosylase MUTYH during base excision repair (BER). After A excision, MUTYH binds avidly to the abasic site and is thus product inhibited. We have previously reported that UV-DDB plays a non-canonical role in BER during the removal of 8-oxoG by 8-ox

Molecular BiologyBiochemistry, Genetics and Molecular Biology
11
Article|18 citations·2022
Cooperative interaction between AAG and UV-DDB in the removal of modified bases
Sunbok Jang, Namrata Kumar, Mathew A Schaich, Zhou Zhong, Barbara van Loon, Simon C Watkins, Bennett Van Houten
SJR Q1Nucleic Acids ResearchOA

UV-DDB is a DNA damage recognition protein recently discovered to participate in the removal of 8-oxo-7,8-dihydro-2'-deoxyguanosine (8-oxoG) by stimulating multiple steps of base excision repair (BER). In this study, we examined whether UV-DDB has a wider role in BER besides oxidized bases and found it has specificity for two known DNA substrates of alkyladenine glycosylase (AAG)/N-methylpurine DNA glycosylase (MPG): 1, N6-ethenoadenine (ϵA) and hypoxanthine. Gel mobility shift assays show that

Materials ChemistryMaterials Science
12
Review|14 citations·2025
DNA repair and disease: insights from the human DNA glycosylase NEIL family
Young Sun Hwang, Sujin Kang, Jieun Kang, Jeong‐Woo Choi, Seung-Jin Kim, Sunbok Jang
SJR Q1Experimental & Molecular MedicineOA

The base excision repair pathway protects DNA from base damage via oxidation, deamination, alkylation and methylation. DNA glycosylases are key enzymes that recognize damaged bases in a lesion-specific manner and initiate the base excision repair process. Among these, the endonuclease VIII-like 1-3 (NEIL1-3) family, which is found in mammalian genomes, is a homolog of bacterial DNA glycosylases known as Fpg/Nei. NEIL enzymes have similar structures and substrates but with slight differences. Whe

Molecular BiologyBiochemistry, Genetics and Molecular Biology
13
Article|12 citations·2023
UV-DDB stimulates the activity of SMUG1 during base excision repair of 5-hydroxymethyl-2'-deoxyuridine moieties
Sunbok Jang, Sripriya Raja, Vera Roginskaya, Matthew A. Schaich, Simon C Watkins, Bennett Van Houten
SJR Q1Nucleic Acids ResearchOA

UV-damaged DNA-binding protein (UV-DDB) is a heterodimeric protein, consisting of DDB1 and DDB2 subunits, that works to recognize DNA lesions induced by UV damage during global genome nucleotide excision repair (GG-NER). Our laboratory previously discovered a non-canonical role for UV-DDB in the processing of 8-oxoG, by stimulating 8-oxoG glycosylase, OGG1, activity 3-fold, MUTYH activity 4-5-fold, and APE1 (apurinic/apyrimidinic endonuclease 1) activity 8-fold. 5-hydroxymethyl-deoxyuridine (5-h

Molecular BiologyBiochemistry, Genetics and Molecular Biology
14
Article|7 citations·2009
Crystal Structure of Hypothetical Protein HP0062 (O24902_HELPY) from Helicobacter pylori at 1.65 A Resolution
Sunbok Jang, Ae‐Ran Kwon, Woohyun Son, Soo Jin Park, B.-J. Lee
SJR Q2The Journal of Biochemistry

The HP0062 gene encodes a small acidic protein of 86 amino acids with a theoretical pI of 4.6. The crystal structure of hypothetical protein HP0062 from Helicobacter pylori has been determined at 1.65 A by molecular-replacement method. The crystallographic asymmetric unit contains dimer, in which HP0062 monomer folds into a helix-hairpin-helix structure. The two protomers are primarily held together by extensive hydrophobic interactions in an antiparallel arrangement, forming a four helix bundle

SurgeryMedicine
15
Review|6 citations·2025
Cancer prognosis using base excision repair genes
Jeongeun Kim, Sujin Kang, Nayoon Jo, Seung-Jin Kim, Sunbok Jang
SJR Q1Molecules and CellsOA

The base excision repair (BER) pathway is a critical mechanism in genomic stability. This review investigates the role of the BER pathway in advanced cancer therapies considering the pivotal role of genetic factors in cancer patient responses and prognosis. BER factors significantly influence genetic instability and cancer prognosis, as well as the effectiveness of chemotherapy and radiation therapy. In various cancers such as breast, colon, lung, and bladder, BER factors have shown potential as

Molecular BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyOrganic ChemistrySurgeryMaterials ChemistryInfectious DiseasesSmall Animals

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