Kyung Ku Jang
Yonsei University · Biochemistry, Genetics and Molecular Biology
About the Lab
Professor Kyung Ku Jang's research lab focuses on the molecular mechanisms of bacterial pathogenesis, particularly in Vibrio species such as *Vibrio vulnificus* and *Vibrio harveyi*. The lab investigates virulence factors, quorum sensing regulation, and host-pathogen interactions, with an emphasis on identifying novel therapeutic targets through structural biology, transcriptomics, and host cell signaling studies. Key research directions include the role of bacterial toxins in inducing cell death and inflammation, the regulation of virulence gene expression under host-derived stress conditions, and the development of quorum sensing inhibitors for alternative antimicrobial strategies. The lab employs a multidisciplinary approach integrating microbiology, biochemistry, cell biology, and host-pathogen interaction models, including human intestinal organoids.
Research Overview
Research Output Trend
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Selected Papers
15ABSTRACT Pathogenic Vibrio species cause diseases in diverse marine animals reared in aquaculture. Since their pathogenesis, persistence, and survival in marine environments are regulated by quorum sensing (QS), QS interference has attracted attention as a means to control these bacteria in aquatic settings. A few QS inhibitors of Vibrio species have been reported, but detailed molecular mechanisms are lacking. Here, we identified a novel, potent, and selective Vibrio QS inhibitor, named QStatin
The marine bacterium <i>Vibrio vulnificus</i> causes food-borne diseases, which may lead to life-threatening septicemia in some individuals. Therefore, identifying virulence factors in <i>V. vulnificus</i> is of high priority. We performed a transcriptome analysis on <i>V. vulnificus</i> after infection of human intestinal HT29-methotrexate cells and found induction of <i>plpA</i>, encoding a putative phospholipase, <i>Vv</i>PlpA. Bioinformatics, biochemical, and genetic analyses demonstrated th
VvhA, a virulent factor of Vibrio (V.) vulnificus, induces acute cell death in a destructive manner. Autophagy plays an important role in cell death, but the functional role of VvhA in autophagy-related cell death has not been elucidated yet. We found that rVvhA significantly increased LC3 puncta formation and autophagic flux in promoting the cell death of human intestinal epithelial Caco-2 cells. The cell death induced by rVvhA was independent of lysosomal permeabilizaton and caspase activation
Gastrointestinal effects associated with Coronavirus Disease 2019 (COVID-19) are highly variable for reasons that are not understood. In this study, we used intestinal organoid-derived cultures differentiated from primary human specimens as a model to examine interindividual variability. Infection of intestinal organoids derived from different donors with Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) resulted in orders of magnitude differences in virus replication in small intesti
For successful infection of their hosts, pathogenic bacteria recognize host-derived signals that induce the expression of virulence factors in a spatiotemporal manner. The fulminating food-borne pathogen <i>Vibrio vulnificus</i> produces a cytolysin/hemolysin protein encoded by the <i>vvhBA</i> operon, which is a virulence factor preferentially expressed upon exposure to murine blood and macrophages. The Fe-S cluster containing transcriptional regulator IscR activates the <i>vvhBA</i> operon in
An inflammatory response is a hallmark of necrosis evoked by bacterial pathogens. Vibrio vulnificus, VvpE, is an elastase that is responsible for tissue necrosis and inflammation; however, the molecular mechanism by which it regulates host cell death has not been characterized. In the present study, we investigate the cellular mechanism of VvpE with regard to host cell death and the inflammatory response of human intestinal epithelial (INT-407) cells. The recombinant protein (r)VvpE (50 pg/ml) c
Binding to mucin is the initial step for enteropathogens to establish pathogenesis. An open reading frame, gbpA, of Vibrio vulnificus was identified and characterized in this study. Compared with wild type, the gbpA mutant was impaired in binding to mucin-agar and the mucin-secreting HT29-methotrexate cells, and the impaired mucin binding was restored by the purified GbpA provided exogenously. The gbpA mutant had attenuated virulence and ability of intestinal colonization in a mouse model, indic
Mucin is an important physical barrier against enteric pathogens. VvpE is an elastase encoded by Gram-negative bacterium Vibrio vulnificus; however, the functional role of VvpE in intestinal mucin (Muc) production is yet to be elucidated. The recombinant protein (r) VvpE significantly reduced the level of Muc2 in human mucus-secreting HT29-MTX cells. The repression of Muc2 induced by rVvpE was highly susceptible to the knockdown of intelectin-1b (ITLN) and sequestration of cholesterol by methyl-
Increasing antibiotic resistance has led to the development of new strategies to combat bacterial infection. Anti-virulence strategies that impair virulence of bacterial pathogens are one of the novel approaches with less selective pressure for developing resistance than traditional strategies that impede viability. In this study, a small molecule CM14 [N-(4-oxo-4H-thieno[3,4-c]chromen-3-yl)-3-phenylprop-2-ynamide] that inhibits the activity of HlyU, a transcriptional regulator essential for the
An inflammatory form of phagocyte death evoked by the Gram-negative bacterium <i>Vibrio (V.) vulnificus</i> (WT) is one of hallmarks to promote their colonization, but the virulence factor and infectious mechanism involved in this process remain largely unknown. Here, we identified extracellular metalloprotease VvpM as a new virulence factor and investigated the molecular mechanism of VvpM which acts during the regulation of the inflammatory form of macrophage death and bacterial colonization. M
Research Areas
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