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Dong Min Shin

Yonsei University · 生化学・遺伝学・分子生物学

研究室紹介

Professor Dong Min Shin's research lab focuses on cellular signaling mechanisms, particularly calcium homeostasis and its role in immune responses and bone metabolism. The lab investigates how intracellular signaling pathways—especially those involving calcium, reactive oxygen species (ROS), and transcription factors like NFATc1—regulate autophagy, inflammation, and cell death in macrophages and other cell types. A key focus is understanding the molecular mechanisms of pathogenic bacteria like Mycobacterium tuberculosis in subverting host immune defenses through virulence factors such as the Eis protein. The lab also explores the role of scaffolding proteins like Homer in shaping calcium signaling dynamics in secretory and immune cells.

calcium signalingautophagymacrophage immunologyosteoclastogenesispathogen-host interaction

Research Overview

Papers
233
Total Citations
23,580
Papers (5y)
30
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)
30total
2021
2022
2023
2024
2025
Citations per year (5y)
276total
20212022202320242025

Selected Papers

15
1
Article|324 citations·2010
Mycobacterium tuberculosis Eis Regulates Autophagy, Inflammation, and Cell Death through Redox-dependent Signaling
Dong Min Shin, Bo‐Young Jeon, Hye‐Mi Lee, Hyo Sun Jin, Jae–Min Yuk, Chang‐Hwa Song, Sang Hee Lee, Zee-Won Lee, Sang-Nae Cho, Jin‐Man Kim, Richard L. Friedman, Eun‐Kyeong Jo
SJR Q1PLoS PathogensOA

The "enhanced intracellular survival" (eis) gene of Mycobacterium tuberculosis (Mtb) is involved in the intracellular survival of M. smegmatis. However, its exact effects on host cell function remain elusive. We herein report that Mtb Eis plays essential roles in modulating macrophage autophagy, inflammatory responses, and cell death via a reactive oxygen species (ROS)-dependent pathway. Macrophages infected with an Mtb eis-deletion mutant H37Rv (Mtb-Δeis) displayed markedly increased accumulati

EpidemiologyMedicine
2
Article|205 citations·2010
RANKL-mediated Reactive Oxygen Species Pathway That Induces Long Lasting Ca2+ Oscillations Essential for Osteoclastogenesis
Min Seuk Kim, Yu‐Mi Yang, Aran Son, Yu Tian, Syng-Ill Lee, Sang Won Kang, Shmuel Muallem, Dong Min Shin
SJR Q1Journal of Biological ChemistryOA

RANKL (receptor activator of NF-kappaB ligand) induces osteoclastogenesis by activating multiple signaling pathways in osteoclast precursor cells, chief among which is induction of long lasting oscillations in the intracellular concentration of Ca(2+) ([Ca(2+)](i)). The [Ca(2+)](i) oscillations activate calcineurin, which activates the transcription factor NFATc1. The pathway by which RANKL induces [Ca(2+)](i) oscillations and osteoclastogenesis is poorly understood. Here we report the discovery

Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Article|147 citations·1998
A Multidisciplinary Approach to Therapy for Unresectable Malignant Thymoma
Dong Min Shin, Garrett L. Walsh, Ritsuko Komaki, Joe B. Putnam, Jonathan C. Nesbitt, Jae Y. Ro, Hyung Ju C. Shin, Keun Hong Ki, Amanda Wimberly, Katherine M.W. Pisters, David S. Schrump, Mary Ann Gregurich
SJR Q1Annals of Internal Medicine

Aggressive multimodal treatment is highly effective and may cure locally advanced, unresectable malignant thymoma.

NeurologyMedicine
4
Review|98 citations·2020
The Role of Ca2+-NFATc1 Signaling and Its Modulation on Osteoclastogenesis
Jung Yun Kang, Namju Kang, Yu‐Mi Yang, Jeong Hee Hong, Dong Min Shin
SJR Q1International Journal of Molecular SciencesOA

The increasing of intracellular calcium concentration is a fundamental process for mediating osteoclastogenesis, which is involved in osteoclastic bone resorption. Cytosolic calcium binds to calmodulin and subsequently activates calcineurin, leading to NFATc1 activation, a master transcription factor required for osteoclast differentiation. Targeting the various activation processes in osteoclastogenesis provides various therapeutic strategies for bone loss. Diverse compounds that modulate calci

Molecular BiologyBiochemistry, Genetics and Molecular Biology
5
Article|92 citations·1994
Thymoma. A retrospective study of 87 cases
Hee Sue Park, Dong Min Shin, Jin S. Lee, Ritsuko Komaki, Alan Pollack, Joe B. Putnam, James D. Cox, Waun Ki Hong
SJR Q1CancerOA

Because thymoma is a chemosensitive tumor and frequently recurs in patients with Stage II or greater disease, chemotherapy carries a potential survival benefit and should be incorporated into the multimodality approach to prolong disease-free survival.

NeurologyMedicine
6
Article|91 citations·2004
German cockroach extract activates protease-activated receptor 2 in human airway epithelial cells
Jeong Hee Hong, Syng-Ill Lee, Kyu-Earn Kim, Tai‐Soon Yong, Jeong Taeg Seo, Myung Hyun Sohn, Dong Min Shin
SJR Q1Journal of Allergy and Clinical ImmunologyOA
Immunology and AllergyMedicine
7
Article|90 citations·2000
The Mammalian Sec6/8 Complex Interacts with Ca2+ Signaling Complexes and Regulates Their Activity
Dong Min Shin, Xiao-Song Zhao, Weizhong Zeng, Marina G. Mozhayeva, Shmuel Muallem
SJR Q1The Journal of Cell BiologyOA

The localization of various Ca(2+) transport and signaling proteins in secretory cells is highly restricted, resulting in polarized agonist-stimulated Ca(2+) waves. In the present work, we examined the possible roles of the Sec6/8 complex or the exocyst in polarized Ca(2+) signaling in pancreatic acinar cells. Immunolocalization by confocal microscopy showed that the Sec6/8 complex is excluded from tight junctions and secretory granules in these cells. The Sec6/8 complex was found in at least tw

Cell BiologyBiochemistry, Genetics and Molecular Biology
8
Article|90 citations·2003
Homer 2 tunes G protein–coupled receptors stimulus intensity by regulating RGS proteins and PLCβ GAP activities
Dong Min Shin, Marlin H. Dehoff, Xiang Luo, Shin Hyeok Kang, Jiangchen Tu, Surendra Kumar Nayak, Elliott M. Ross, Paul F. Worley, Shmuel Muallem
SJR Q1The Journal of Cell BiologyOA

Homers are scaffolding proteins that bind G protein-coupled receptors (GPCRs), inositol 1,4,5-triphosphate (IP3) receptors (IP3Rs), ryanodine receptors, and TRP channels. However, their role in Ca2+ signaling in vivo is not known. Characterization of Ca2+ signaling in pancreatic acinar cells from Homer2-/- and Homer3-/- mice showed that Homer 3 has no discernible role in Ca2+ signaling in these cells. In contrast, we found that Homer 2 tunes intensity of Ca2+ signaling by GPCRs to regulate the f

Molecular BiologyBiochemistry, Genetics and Molecular Biology
9
Article|62 citations·2001
Polarized Expression of G Protein-coupled Receptors and an All-or-None Discharge of Ca2+ Pools at Initiation Sites of [Ca2+] Waves in Polarized Exocrine Cells
Dong Min Shin, Xiang Luo, Thomas M. Wilkie, Laurence J. Miller, Ammon B. Peck, Michael G. Humphreys‐Beher, Shmuel Muallem
SJR Q1Journal of Biological ChemistryOA

In the present work we examined localization and behavior of G protein-coupled receptors (GPCR) in polarized exocrine cells to address the questions of how luminal to basal Ca(2+) waves can be generated in a receptor-specific manner and whether quantal Ca(2+) release reflects partial release from a continuous pool or an all-or-none release from a compartmentalized pool. Immunolocalization revealed that expression of GPCRs in polarized cells is not uniform, with high levels of GPCR expression at

Molecular BiologyBiochemistry, Genetics and Molecular Biology
10
Article|53 citations·2019
Ca2+ Influx Channel Inhibitor SARAF Protects Mice From Acute Pancreatitis
Aran Son, Malini Ahuja, Daniella M. Schwartz, Árpád Varga, William D. Swaim, Namju Kang, József Maléth, Dong Min Shin, Shmuel Muallem
SJR Q1GastroenterologyOA
SurgeryMedicine
11
Article|48 citations·2006
Critical Role of Phospholipase Cγ1 in the Generation of H2O2-evoked [Ca2+] Oscillations in Cultured Rat Cortical Astrocytes
Jeong Hee Hong, Seok Jun Moon, Hae Mi Byun, Min Seuk Kim, Hae Jo, Yun Soo Bae, Syng-Ill Lee, Martin D. Bootman, H. Llewelyn Roderick, Dong Min Shin, Jeong Taeg Seo
SJR Q1Journal of Biological ChemistryOA

Reactive oxygen species, such as the superoxide anion, H2O2, and the hydroxyl radical, have been considered as cytotoxic by-products of cellular metabolism. However, recent studies have provided evidence that H2O2 serves as a signaling molecule modulating various physiological functions. Here we investigated the effect of H2O2 on the regulation of intracellular Ca2+ signaling in rat cortical astrocytes. H2O2 triggered the generation of oscillations of intracellular Ca2+ concentration ([Ca2+]i) i

Cellular and Molecular NeuroscienceNeuroscience
12
Article|46 citations·2016
Lysosomal Ca2+ Signaling is Essential for Osteoclastogenesis and Bone Remodeling
Munkhsoyol Erkhembaatar, Dong Ryun Gu, Seoung Hoon Lee, Yu‐Mi Yang, Soonhong Park, Shmuel Muallem, Dong Min Shin, Min Seuk Kim
SJR Q1Journal of Bone and Mineral ResearchOA

ABSTRACT Lysosomal Ca2+ emerges as a critical component of receptor-evoked Ca2+ signaling and plays a crucial role in many lysosomal and physiological functions. Lysosomal Ca2+ release is mediated by the transient receptor potential (TRP) family member TRPML1, mutations that cause the lysosomal storage disease mucolipidosis type 4. Lysosomes play a key role in osteoclast function. However, nothing is known about the role of lysosomal Ca2+ signaling in osteoclastogenesis and bone metabolism. In t

PhysiologyBiochemistry, Genetics and Molecular Biology
13
Article|45 citations·2015
Fusion of lysosomes with secretory organelles leads to uncontrolled exocytosis in the lysosomal storage disease mucolipidosis type IV
Soonhong Park, Malini Ahuja, Min Seuk Kim, G. Cristina Brailoiu, Archana Jha, Mei Zeng, Maryna Baydyuk, Ling‐Gang Wu, Christopher A. Wassif, Forbes D. Porter, Patricia M. Zerfas, Michael Eckhaus
SJR Q1EMBO ReportsOA

Mutations in TRPML1 cause the lysosomal storage disease mucolipidosis type IV (MLIV). The role of TRPML1 in cell function and how the mutations cause the disease are not well understood. Most studies focus on the role of TRPML1 in constitutive membrane trafficking to and from the lysosomes. However, this cannot explain impaired neuromuscular and secretory cells' functions that mediate regulated exocytosis. Here, we analyzed several forms of regulated exocytosis in a mouse model of MLIV and, oppo

PhysiologyBiochemistry, Genetics and Molecular Biology
14
Article|35 citations·2009
Alteration of RANKL-Induced Osteoclastogenesis in Primary Cultured Osteoclasts From SERCA2+/− Mice
Yu‐Mi Yang, Min Seuk Kim, Aran Son, Jeong Hee Hong, Kyung‐Ho Kim, Jeong Taeg Seo, Syng-Ill Lee, Dong Min Shin
SJR Q1Journal of Bone and Mineral ResearchOA

RANKL is essential for the terminal differentiation of monocytes/macrophages into osteoclasts. RANKL induces long-lasting oscillations in the intracellular concentration of Ca(2+) ([Ca(2+)](i)) only after 24 h of stimulation. These Ca(2+) oscillations play a switch-on role in NFATc1 expression and osteoclast differentiation. Which Ca(2+) transporting pathway is induced by RANKL to evoke the Ca(2+) oscillations and its specific role in RANKL-mediated osteoclast differentiation is not known. This

Molecular BiologyBiochemistry, Genetics and Molecular Biology
15
Article|26 citations·2014
Homer2 Protein Regulates Plasma Membrane Ca2+-ATPase-mediated Ca2+ Signaling in Mouse Parotid Gland Acinar Cells
Yu‐Mi Yang, Jun‐Ho Lee, Hae Jo, Soonhong Park, Inik Chang, Shmuel Muallem, Dong Min Shin
SJR Q1Journal of Biological ChemistryOA

Homer proteins are scaffold molecules with a domain structure consisting of an N-terminal Ena/VASP homology 1 protein-binding domain and a C-terminal leucine zipper/coiled-coil domain. The Ena/VASP homology 1 domain recognizes proline-rich motifs and binds multiple Ca(2+)-signaling proteins, including G protein-coupled receptors, inositol 1,4,5-triphosphate receptors, ryanodine receptors, and transient receptor potential channels. However, their role in Ca(2+) signaling in nonexcitable cells is

Molecular BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologySensory SystemsSurgeryPhysiologyCancer ResearchCellular and Molecular Neuroscience

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