Young-woon Kong
Seoul National University · Biochemistry, Genetics and Molecular Biology
About the Lab
Professor Young-woon Kong's research lab focuses on the molecular mechanisms underlying developmental signaling pathways, particularly Notch and TNF receptor superfamily signaling, in mammalian organogenesis and immune system regulation. The lab investigates the roles of E3 ubiquitin ligases such as Mib1 and Mib2 in Notch pathway activation and their critical functions in kidney, lymphoid organ, and mammary gland development. Using genetically engineered mouse models and cell biological approaches, the lab explores how these pathways control cell fate decisions, tissue patterning, and homeostasis. Their work also extends to signaling in T cell development and apoptosis, highlighting the interplay between cytoskeletal dynamics and immune cell selection.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15The TNF-family molecule osteoprotegerin ligand (OPGL; also known as TRANCE, RANKL or ODF) has been identified as the osteoclast differentiation factor and a regulator of T cell-dendritic cell interactions in the immune system. Surprisingly, the same molecule was identified as a crucial factor in early lymphocyte development and lymph node organogenesis. We will discuss the role of OPGL in bone remodelling and the immune system.
Our data provide the first evidence that Mib1 is essential for Jagged as well as Deltalike ligand-mediated Notch signaling in mammalian development, while Neur1, Neur2, and Mib2 are dispensable.
The heterogeneous cellular composition of the mammalian renal collecting duct enables regulation of fluid, electrolytes, and acid-base homeostasis, but the molecular mechanism of its development has yet to be elucidated. The Notch signaling pathway is involved in cell fate determination and has been implicated in proximal-distal patterning in the mammalian kidney. To investigate the role of Notch signaling in renal collecting duct development, we generated mice in which Mind bomb-1 (Mib1), an E3
The zebrafish gene, mind bomb (mib), encodes a protein that positively regulates of the Delta-mediated Notch signaling. It interacts with the intracellular domain of Delta to promote its ubiquitination and endocytosis. In our search for the mouse homologue of zebrafish mind bomb, we cloned two homologues in the mouse genome: a mouse orthologue (mouse mib1) and a paralogue, named mind bomb-2 (mib2), which is evolutionarily conserved from Drosophila to human. Both Mib1 and Mib2 have an E3 ubiquiti
Receptor activator of NF-kappaB ligand (RANKL) is a key regulator for mammary gland development during pregnancy. RANKL-deficient mice display impaired development of lobulo-alveolar mammary structures. Similar mammary gland defects have been reported in mice lacking Id2. Here we report that RANKL induces the proliferation of mammary epithelial cells via Id2. RANKL triggers marked nuclear translocation of Id2 in mammary epithelial cells. In vivo studies further demonstrated the defective nuclear
The protooncogene Vav functions as a GDP/GTP exchange factor (GEF) for Rho-like small GTPases involved in cytoskeletal reorganization and cytokine production in T cells. Gene-targeted mice lacking Vav have a severe defect in positive and negative selection of T cell antigen receptor transgenic thymocytes in vivo, and vav-/- thymocytes are completely resistant to peptide-specific and anti-CD3/anti-CD28-mediated apoptosis. Vav acts upstream of mitochondrial pore opening and caspase activation. Bio
Whether regulatory T cells could suppress the immune responses to an unrelated Ag and could induce tolerance to that Ag was investigated. In female B6 (I-Ab) mice tolerized to MHC class II I-Abm12 (bm12) alloantigen by cyclophosphamide-induced system, regulatory T cells specific for bm12 Ag were induced. These regulatory T cells suppressed in vivo immune responses to an unrelated Ag (male Ag) that was co-expressed with bm12 Ag on the same graft. However, the immune responses to male Ag suppresse
Although terminal differentiation of intestinal epithelium is essential for the efficient digestion and absorption of nutrients, little is known about the molecular mechanisms underlying this process. Recent studies have shown that Elf3 (E74-like factor 3), a member of the ETS transcription factor family, has an essential role in the terminal differentiation of absorptive enterocytes and mucus-secreting goblet cells. Here, we demonstrated that Crif1 (CR6-interacting factor 1) functions as transc
Research Areas
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