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Sin-Hyeo No

Yonsei University · 生化学・遺伝学・分子生物学

研究室紹介

Professor Sin-Hyeo No's research lab focuses on the molecular mechanisms underlying unconventional protein secretion, particularly the Golgi-independent trafficking of misfolded or stress-induced membrane proteins such as CFTR and viral envelope proteins like SARS-CoV-2 Spike. The lab investigates key regulators—including GRASP proteins, TMED family members, Sec16A, and ANO6—that govern these alternative secretory pathways under endoplasmic reticulum (ER) stress or cellular stress conditions. A central theme is understanding how cells reroute protein trafficking when conventional pathways are impaired, with implications for cystic fibrosis, ciliopathies, and viral pathogenesis. The lab also explores the role of membrane dynamics, phosphatidylserine externalization, and organelle crosstalk in disease-relevant trafficking and infection processes.

unconventional protein secretionER stressCFTR traffickingSARS-CoV-2 entryTMED proteins

Research Overview

Papers
23
Total Citations
770
Papers (5y)
12
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)
12total
2022
2023
2024
2025
2026
Citations per year (5y)
132total
20222023202420252026

Selected Papers

15
1
Article|320 citations·2011
Rescue of ΔF508-CFTR Trafficking via a GRASP-Dependent Unconventional Secretion Pathway
Heon Yung Gee, Shin Hye Noh, Bor Luen Tang, Kyung Hwan Kim, Min Goo Lee
SJR Q1CellOA
PhysiologyBiochemistry, Genetics and Molecular Biology
2
Article|90 citations·2016
Monomerization and ER Relocalization of GRASP Is a Requisite for Unconventional Secretion of CFTR
Jiyoon Kim, Shin Hye Noh, He Piao, Dong Hee Kim, Kuglae Kim, Jeong Seok Cha, Woo Young Chung, Hyun‐Soo Cho, Joo Young Kim, Min Goo Lee
SJR Q1TrafficOA

Induction of endoplasmic reticulum (ER)-to-Golgi blockade or ER stress induces Golgi reassembly stacking protein (GRASP)-mediated, Golgi-independent unconventional cell-surface trafficking of the folding-deficient ΔF508-cystic fibrosis transmembrane conductance regulator (CFTR). However, molecular mechanisms underlying this process remain elusive. Here, we show that phosphorylation-dependent dissociation of GRASP homotypic complexes and subsequent relocalization of GRASP to the ER play a critica

Pulmonary and Respiratory MedicineMedicine
3
Article|66 citations·2018
Specific autophagy and ESCRT components participate in the unconventional secretion of CFTR
Shin Hye Noh, Heon Yung Gee, Yonjung Kim, He Piao, Jiyoon Kim, Chung‐Min Kang, Gahyung Lee, Inhee Mook‐Jung, Yangsin Lee, Jin Won Cho, Min Goo Lee
SJR Q1AutophagyOA

channel function of CFTRΔF508. Taken together, these results suggest that components involved in early autophagosome formation and the ESCRT/MVB pathway play a key role in the stress-induced unconventional secretion of CFTR.

Pulmonary and Respiratory MedicineMedicine
4
Article|53 citations·2018
ZMYND10 stabilizes intermediate chain proteins in the cytoplasmic pre-assembly of dynein arms
Kyeong Jee Cho, Shin Hye Noh, Soo Min Han, Won‐Il Choi, Hye‐Youn Kim, Seyoung Yu, Joon Suk Lee, John Hoon Rim, Min Goo Lee, Friedhelm Hildebrandt, Heon Yung Gee
SJR Q1PLoS GeneticsOA

Zinc finger MYND-type-containing 10 (ZMYND10), a cytoplasmic protein expressed in ciliated cells, causes primary ciliary dyskinesia (PCD) when mutated; however, its function is poorly understood. Therefore, in this study, we examined the roles of ZMYND10 using Zmynd10-/-mice exhibiting typical PCD phenotypes, including hydrocephalus and laterality defects. In these mutants, morphology, the number of motile cilia, and the 9+2 axoneme structure were normal; however, inner and outer dynein arms (ID

GeneticsBiochemistry, Genetics and Molecular Biology
5
Article|46 citations·2017
Sec16A is critical for both conventional and unconventional secretion of CFTR
He Piao, Jiyoon Kim, Shin Hye Noh, Hee-Seok Kweon, Joo Young Kim, Min Goo Lee
SJR Q1Scientific ReportsOA

CFTR is a transmembrane protein that reaches the cell surface via the conventional Golgi mediated secretion pathway. Interestingly, ER-to-Golgi blockade or ER stress induces alternative GRASP-mediated, Golgi-bypassing unconventional trafficking of wild-type CFTR and the disease-causing ΔF508-CFTR, which has folding and trafficking defects. Here, we show that Sec16A, the key regulator of conventional ER-to-Golgi transport, plays a critical role in the ER exit of protein cargos during unconvention

Cell BiologyBiochemistry, Genetics and Molecular Biology
6
Article|36 citations·2022
Amelioration of SARS-CoV-2 infection by ANO6 phospholipid scramblase inhibition
Ju‐Ri Sim, Dong Hoon Shin, Pil‐Gu Park, Sohyeon Park, Joon‐Yong Bae, Youngchae Lee, Dha-Yei Kang, Ye Jin Kim, Sowon Aum, Shin Hye Noh, Su Jin Hwang, Hye‐Ran Cha
SJR Q1Cell ReportsOA

elevation and ANO6-dependent phosphatidylserine externalization in ACE2/TMPRSS2-positive mammalian cells. A high-throughput screening of drug-like chemical libraries identifies three different structural classes of chemicals showing ANO6 inhibitory effects. Among them, A6-001 displays the highest potency and ANO6 selectivity and it inhibits the single-round infection of SARS2-PsV in ACE2/TMPRSS2-positive HEK 293T cells. More importantly, A6-001 strongly inhibits authentic SARS-CoV-2-induced phos

Infectious DiseasesMedicine
7
Article|35 citations·2022
TMED3 Complex Mediates ER Stress‐Associated Secretion of CFTR, Pendrin, and SARS‐CoV‐2 Spike
Hak Park, Soo Kyung Seo, Ju‐Ri Sim, Su Jin Hwang, Ye Jin Kim, Dong Hoon Shin, Dong Geon Jang, Shin Hye Noh, Pil‐Gu Park, Si Hwan Ko, Mi Hwa Shin, Jae Young Choi
SJR Q1Advanced ScienceOA

Under ER stress conditions, the ER form of transmembrane proteins can reach the plasma membrane via a Golgi-independent unconventional protein secretion (UPS) pathway. However, the targeting mechanisms of membrane proteins for UPS are unknown. Here, this study reports that TMED proteins play a critical role in the ER stress-associated UPS of transmembrane proteins. The gene silencing results reveal that TMED2, TMED3, TMED9 and TMED10 are involved in the UPS of transmembrane proteins, such as CFT

Cell BiologyBiochemistry, Genetics and Molecular Biology
8
Article|33 citations·2016
Functional characterization of ABCB4 mutations found in progressive familial intrahepatic cholestasis type 3
Hyojin Park, Tae Hee Kim, So Won Kim, Shin Hye Noh, Kyeong Jee Cho, Choe Choi, Eun Young Kwon, Yang Ji Choi, Heon Yung Gee, Ji Ha Choi
SJR Q1Scientific ReportsOA

Multidrug resistance 3 (MDR3), encoded by the ATP-binding cassette, subfamily B, member 4 gene (ABCB4), localizes to the canalicular membrane of hepatocytes and translocates phosphatidylcholine from the inner leaflet to the outer leaflet of the canalicular membrane. Progressive familial intrahepatic cholestasis type 3 (PFIC3) is a rare hepatic disease caused by genetic mutations of ABCB4. In this study, we characterized 8 ABCB4 mutations found in PFIC3 patients, using in vitro molecular assays.

OncologyMedicine
9
Review|26 citations·2022
Autophagy-Related Pathways in Vesicular Unconventional Protein Secretion
Shin Hye Noh, Ye Jin Kim, Min Goo Lee
SJR Q1Frontiers in Cell and Developmental BiologyOA

Cellular proteins directed to the plasma membrane or released into the extracellular space can undergo a number of different pathways. Whereas the molecular mechanisms that underlie conventional ER-to-Golgi trafficking are well established, those associated with the unconventional protein secretion (UPS) pathways remain largely elusive. A pathway with an emerging role in UPS is autophagy. Although originally known as a degradative process for maintaining intracellular homeostasis, recent studies

EpidemiologyMedicine
10
Article|25 citations·2020
Grasp55−/− mice display impaired fat absorption and resistance to high-fat diet-induced obesity
Jiyoon Kim, Hyeyon Kim, Shin Hye Noh, Dong Geon Jang, Shi-Young Park, Dongkook Min, Hyunki Kim, Hee-Seok Kweon, Hoguen Kim, Sowon Aum, Sookyung Seo, Cheol Soo Choi
SJR Q1Nature CommunicationsOA

The Golgi apparatus plays a central role in the intracellular transport of macromolecules. However, molecular mechanisms of Golgi-mediated lipid transport remain poorly understood. Here, we show that genetic inactivation of the Golgi-resident protein GRASP55 in mice reduces whole-body fat mass via impaired intestinal fat absorption and evokes resistance to high-fat diet induced body weight gain. Mechanistic analyses reveal that GRASP55 participates in the Golgi-mediated lipid droplet (LD) target

PhysiologyMedicine
11
Article|16 citations·2025
Tubular ER structures shaped by ER-phagy receptors engage in stress-induced Golgi bypass
Min Seok Song, Hun Ju Sim, Sung Ho Eun, Min Kyo Jung, Su Jin Hwang, Min Hee Ham, Kihyuck Kwak, Hea Ji Lee, Jin Young Kim, Dong Geon Jang, Hee‐Chun Chung, Dong Hoon Shin
SJR Q1Developmental Cell
Pulmonary and Respiratory MedicineMedicine
12
Article|9 citations·2024
Synergistic toxicity with copper contributes to NAT2-associated isoniazid toxicity
Jihoon G. Yoon, Dong Geon Jang, Sung-Gyu Cho, Chaeyoung Lee, Shin Hye Noh, Soo Kyung Seo, Jung Woo Yu, Hyeon Woo Chung, KyeoRe Han, Soon Sung Kwon, Dai Hoon Han, Jaeseong Oh
SJR Q1Experimental & Molecular MedicineOA

Abstract Anti-tuberculosis (AT) medications, including isoniazid (INH), can cause drug-induced liver injury (DILI), but the underlying mechanism remains unclear. In this study, we aimed to identify genetic factors that may increase the susceptibility of individuals to AT-DILI and to examine genetic interactions that may lead to isoniazid (INH)-induced hepatotoxicity. We performed a targeted sequencing analysis of 380 pharmacogenes in a discovery cohort of 112 patients (35 AT-DILI patients and 77

Clinical BiochemistryBiochemistry, Genetics and Molecular Biology
13
Article|5 citations·2014
Shank2 mutant mice display a hypersecretory response to cholera toxin
Eun Suk Jung, Joonhee Park, Heon Yung Gee, Jinsei Jung, Shin Hye Noh, Jung Soo Lee, Wito Richter, W. Namkung, Min Goo Lee
SJR Q1The Journal of PhysiologyOA

Key points Among the three Shank proteins in human (Shank1–3), Shank2 is abundantly expressed in epithelial cells. However, the in vivo physiological role of Shank2 in epithelial transport remains elusive. The functional activity and expression of cystic fibrosis transmembrane conductance regulator (CFTR) and fluid secretion in the gastrointestinal epithelia were examined in the intestines of Shank2 +/+ and Shank2 −/− mice using an integrated molecular and physiological approach. Shank2 deletion

Pulmonary and Respiratory MedicineMedicine
14
Article|5 citations·2022
Multicenter Surveillance of Cystic Fibrosis in Korean Children
Hyung Young Kim, Soo‐Jong Hong, Kangmo Ahn, Dong In Suh, Shin Hye Noh, Soo Yeon Kim, Jinho Yu, Jung Min Ko, Min Goo Lee, Kyung Won Kim
SJR Q1Allergy Asthma and Immunology ResearchOA

CF is extremely rare in Korean children and is caused by different mutations from those commonly observed in Caucasians. Early diagnosis and treatment availability may improve outcomes. CFTR modulators may be effective for Asian patients with rare <i>CFTR</i> mutations, c.1322T>C (p.Leu441Pro).

Pulmonary and Respiratory MedicineMedicine
15
Article|2 citations·2025
Digenic impairments of haploinsufficient genes in patients with craniosynostosis
Jung Woo Yu, Jihoon G. Yoon, Chaerim Han, Shin Hye Noh, Dong Min Shin, Yu‐Mi Yang, Yong Oock Kim, Kyu‐Won Shim, Min Goo Lee
SJR Q1JCI InsightOA

Craniosynostosis (CRS) is characterized by the development of abnormal cranial suture ossification and premature fusion. Despite the identification of several associated genetic disorders, the genetic determinants of CRS remain poorly understood. In this study, we conducted integrative analyses on 225 exomes, comprising 121 CRS probands and 104 parental exomes (52 trios). These analyses encompassed de novo and pathogenic variants, and digenic combinations within haploinsufficient genes harboring

GeneticsBiochemistry, Genetics and Molecular Biology

Research Areas

Pulmonary and Respiratory MedicineCell BiologyPhysiologyGeneticsInfectious DiseasesOncology

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