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Jin-Woo Bok

Yonsei University · Neuroscience

About the Lab

Professor Jin-Woo Bok's research lab specializes in developmental biology, with a primary focus on the molecular mechanisms underlying vertebrate inner ear patterning and sensory organ formation. The lab investigates how signaling pathways—particularly those involving Sonic hedgehog (Shh), retinoic acid (RA), and Wnt—coordinate the establishment of the three primary axes (anterior-posterior, dorsal-ventral, and medial-lateral) in the developing inner ear. Using genetic and embryological approaches in model systems such as chicken and mouse, the lab explores the spatiotemporal regulation of transcription factors and signaling molecules that direct cell fate decisions in sensory and neuronal cell types. Additionally, the lab contributes to bioinformatics by developing tools like rMAPS2 to analyze RNA-protein interactions, supporting broader studies in post-transcriptional gene regulation.

inner ear developmentSonic hedgehogretinoic acidaxis patterningRNA binding proteins

Research Overview

Papers
109
Total Citations
2,763
Papers (5y)
18
Primary Field
Neuroscience

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
18total
2022
2023
2024
2025
2026
Citations per year (5y)
106total
20222023202420252026

Selected Papers

15
1
Review|144 citations·2007
Patterning and morphogenesis of the vertebrate inner ear
Jinwoong Bok, Weise Chang, Doris K. Wu
SJR Q3The International Journal of Developmental BiologyOA

The positional cues for formation of individual inner ear components are dependent on pre-established axial information conferred by inductive signals from tissues surrounding the developing inner ear. This review summarizes some of the known molecular pathways involved in establishing the three axes of the inner ear, anterior-posterior (AP), dorsal-ventral (DV) and medial-lateral (ML). Signals required to establish the AP axis of the inner ear are not known, but they do not appear to be derived

Molecular BiologyBiochemistry, Genetics and Molecular Biology
2
Article|115 citations·2007
Opposing gradients of Gli repressor and activators mediate Shh signaling along the dorsoventral axis of the inner ear
Jinwoong Bok, Diane K. Dolson, Patrick Hill, Ulrich Rüther, Douglas J. Epstein, Doris K. Wu
SJR Q1DevelopmentOA

Organization of the vertebrate inner ear is mainly dependent on localized signals from surrounding tissues. Previous studies demonstrated that sonic hedgehog (Shh) secreted from the floor plate and notochord is required for specification of ventral (auditory) and dorsal (vestibular) inner ear structures, yet it was not clear how this signaling activity is propagated. To elucidate the molecular mechanisms by which Shh regulates inner ear development, we examined embryos with various combinations

Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Article|112 citations·2005
Role of the hindbrain in dorsoventral but not anteroposterior axial specification of the inner ear
Jinwoong Bok, Marianne Bronner‐Fraser, Doris K. Wu
SJR Q1DevelopmentOA

An early and crucial event in vertebrate inner ear development is the acquisition of axial identities that in turn dictate the positions of all subsequent inner ear components. Here, we focus on the role of the hindbrain in establishment of inner ear axes and show that axial specification occurs well after otic placode formation in chicken. Anteroposterior (AP) rotation of the hindbrain prior to specification of this axis does not affect the normal AP orientation and morphogenesis of the inner e

Molecular BiologyBiochemistry, Genetics and Molecular Biology
4
Article|108 citations·2010
Transient retinoic acid signaling confers anterior-posterior polarity to the inner ear
Jinwoong Bok, Steven Raft, Kyoung‐Ah Kong, Soo Kyung Koo, Ursula C. Dräger, Doris K. Wu
SJR Q1Proceedings of the National Academy of SciencesOA

Vertebrate hearing and balance are based in complex asymmetries of inner ear structure. Here, we identify retinoic acid (RA) as an extrinsic signal that acts directly on the ear rudiment to affect its compartmentalization along the anterior-posterior axis. A rostrocaudal wave of RA activity, generated by tissues surrounding the nascent ear, induces distinct responses from anterior and posterior halves of the inner ear rudiment. Prolonged response to RA by posterior otic tissue correlates with Tb

Sensory SystemsNeuroscience
5
Article|101 citations·2013
Auditory ganglion source of Sonic hedgehog regulates timing of cell cycle exit and differentiation of mammalian cochlear hair cells
Jinwoong Bok, Colleen Zenczak, Chan Ho Hwang, Doris K. Wu
SJR Q1Proceedings of the National Academy of SciencesOA

Neural precursor cells of the central nervous system undergo successive temporal waves of terminal division, each of which is soon followed by the onset of cell differentiation. The organ of Corti in the mammalian cochlea develops differently, such that precursors at the apex are the first to exit from the cell cycle but the last to begin differentiating as mechanosensory hair cells. Using a tissue-specific knockout approach in mice, we show that this unique temporal pattern of sensory cell deve

Sensory SystemsNeuroscience
6
Article|95 citations·2020
rMAPS2: an update of the RNA map analysis and plotting server for alternative splicing regulation
Jae Yeon Hwang, Sungbo Jung, Tae Lim Kook, Eric C. Rouchka, Jinwoong Bok, Juw Won Park
SJR Q1Nucleic Acids ResearchOA

The rMAPS2 (RNA Map Analysis and Plotting Server 2) web server, freely available at http://rmaps.cecsresearch.org/, has provided the high-throughput sequencing data research community with curated tools for the identification of RNA binding protein sites. rMAPS2 analyzes differential alternative splicing or CLIP peak data obtained from high-throughput sequencing data analysis tools like MISO, rMATS, Piranha, PIPE-CLIP and PARalyzer, and then, graphically displays enriched RNA-binding protein tar

Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|93 citations·2014
Intestinal cell kinase, a protein associated with endocrine-cerebro-osteodysplasia syndrome, is a key regulator of cilia length and Hedgehog signaling
Hee-Jung Moon, Jieun Song, Jeong-Oh Shin, Hankyu Lee, Hong-Kyung Kim, Jonathan T. Eggenschwiller, Jinwoong Bok, Hyuk Wan Ko
SJR Q1Proceedings of the National Academy of SciencesOA

Endocrine-cerebro-osteodysplasia (ECO) syndrome is a recessive genetic disorder associated with multiple congenital defects in endocrine, cerebral, and skeletal systems that is caused by a missense mutation in the mitogen-activated protein kinase-like intestinal cell kinase (ICK) gene. In algae and invertebrates, ICK homologs are involved in flagellar formation and ciliogenesis, respectively. However, it is not clear whether this role of ICK is conserved in mammals and how a lack of functional I

GeneticsBiochemistry, Genetics and Molecular Biology
8
Article|78 citations·2007
CaMKII and CaMKIV mediate distinct prosurvival signaling pathways in response to depolarization in neurons
Jinwoong Bok, Qiong Wang, Jie Huang, Steven H. Green
SJR Q2Molecular and Cellular NeuroscienceOA
Cellular and Molecular NeuroscienceNeuroscience
9
Article|50 citations·2003
An Extranuclear Locus of cAMP-Dependent Protein Kinase Action Is Necessary and Sufficient for Promotion of Spiral Ganglion Neuronal Survival by cAMP
Jinwoong Bok, Xiang‐ming Zha, Yang‐Sun Cho, Steven H. Green
SJR Q1Journal of NeuroscienceOA

We showed previously that cAMP is a survival-promoting stimulus for cultured postnatal rat spiral ganglion neurons (SGNs) and that depolarization promotes SGN survival in part via recruitment of cAMP signaling. We here investigate the subcellular locus of cAMP prosurvival signaling. Transfection of GPKI, a green fluorescent protein (GFP)-tagged cAMP-dependent protein kinase (PKA) inhibitor, inhibits the ability of the permeant cAMP analog cpt-cAMP [8-(4-chlorophenylthio)-cAMP] to promote surviva

Molecular BiologyBiochemistry, Genetics and Molecular Biology
10
Article|46 citations·2012
Developmental Gene Expression Profiling along the Tonotopic Axis of the Mouse Cochlea
Eun Jin Son, Ling Wu, Heejei Yoon, Sunhee Kim, Jae Young Choi, Jinwoong Bok
SJR Q1PLoS ONEOA

The mammalian cochlear duct is tonotopically organized such that the basal cochlea is tuned to high frequency sounds and the apical cochlea to low frequency sounds. In an effort to understand how this tonotopic organization is established, we searched for genes that are differentially expressed along the tonotopic axis during neonatal development. Cochlear tissues dissected from P0 and P8 mice were divided into three equal pieces, representing the base, middle and apex, and gene expression profi

Sensory SystemsNeuroscience
11
Article|45 citations·2009
Clinical and molecular characterizations of novelPOU3F4mutations reveal that DFN3 is due to null function of POU3F4 protein
Hee Keun Lee, Mee Hyun Song, Myengmo Kang, Jung Tae Lee, Kyoung‐Ah Kong, Sujin Choi, Kyu Yup Lee, Hanka Venselaar, Gert Vriend, Won‐Sang Lee, Hong-Joon Park, Taeg Kyu Kwon
SJR Q2Physiological GenomicsOA

X-linked deafness type 3 (DFN3), the most prevalent X-linked form of hereditary deafness, is caused by mutations in the POU3F4 locus, which encodes a member of the POU family of transcription factors. Despite numerous reports on clinical evaluations and genetic analyses describing novel POU3F4 mutations, little is known about how such mutations affect normal functions of the POU3F4 protein and cause inner ear malformations and deafness. Here we describe three novel mutations of the POU3F4 gene a

Sensory SystemsNeuroscience
12
Article|41 citations·2022
Therapeutic effect of NLRP3 inhibition on hearing loss induced by systemic inflammation in a CAPS-associated mouse model
Ji-Hyun Ma, Eunju Lee, Sung-Hyun Yoon, Hyehyun Min, Jae Hwan Oh, Inhwa Hwang, Yejin Sung, Ju Hee Ryu, Jinwoong Bok, Je‐Wook Yu
SJR Q1EBioMedicineOA

BACKGROUND: Cryopyrin-associated periodic syndrome (CAPS) is an inherited autoinflammatory disease caused by a gain-of-function mutation in NLRP3. Although CAPS patients frequently suffer from sensorineural hearing loss, it remains unclear whether CAPS-associated mutation in NLRP3 is associated with the progression of hearing loss. METHODS: We generated a mice with conditional expression of CAPS-associated NLRP3 mutant (D301N) in cochlea-resident CX3CR1 macrophages and examined the susceptibilit

Molecular BiologyBiochemistry, Genetics and Molecular Biology
13
Article|37 citations·2010
Clinical evaluation of DFN3 patients with deletions in the POU3F4 locus and detection of carrier female using MLPA
MH Song, Hye‐Kyung Lee, Jae Young Choi, Su Yeon Kim, Jinwoong Bok, U‐K Kim
SJR Q2Clinical GeneticsOA

X-linked deafness type 3 (DFN3), the most prevalent X-linked form of hereditary deafness, is caused by mutations of the POU3F4 locus in the Xq21 region. We evaluated two Korean families showing typical characteristics of DFN3, such as congenital hearing loss and pathognomonic inner ear anomalies. Genetic analysis of these families did not reveal any mutations in the POU3F4 coding sequence. Instead, one family carried a genomic deletion upstream of POU3F4 gene, where the regulatory element is pre

Sensory SystemsNeuroscience
14
Article|35 citations·2020
Dysregulation of sonic hedgehog signaling causes hearing loss in ciliopathy mouse models
Kyeong-Hye Moon, Ji-Hyun Ma, Hyehyun Min, Hei Yeun Koo, Hongkyung Kim, Hyuk Wan Ko, Jinwoong Bok
SJR Q1eLifeOA

Defective primary cilia cause a range of diseases known as ciliopathies, including hearing loss. The etiology of hearing loss in ciliopathies, however, remains unclear. We analyzed cochleae from three ciliopathy mouse models exhibiting different ciliogenesis defects: Intraflagellar transport 88 ( Ift88 ), Tbc1d32 (a.k.a. bromi ), and Cilk1 (a.k.a. Ick ) mutants. These mutants showed multiple developmental defects including shortened cochlear duct and abnormal apical patterning of the organ of Co

GeneticsBiochemistry, Genetics and Molecular Biology
15
Article|33 citations·2010
Pou3f4 deficiency causes defects in otic fibrocytes and stria vascularis by different mechanisms
Mee Hyun Song, Soo‐Young Choi, Ling Wu, Se-Kyoung Oh, Hee Keun Lee, Dong‐Jin Lee, Dae Bo Shim, Jae Young Choi, Un‐Kyung Kim, Jinwoong Bok
SJR Q2Biochemical and Biophysical Research CommunicationsOA
Sensory SystemsNeuroscience

Research Areas

Sensory SystemsMolecular BiologyGeneticsNeurologyCellular and Molecular NeuroscienceParasitology

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