Ulsan National Institute of Science and Technology · Biochemistry, Genetics and Molecular Biology
Professor Myunggon Ko's research lab focuses on the epigenetic regulation of hematopoietic stem cells and immune cell development, with a central emphasis on the TET family of DNA demethylase enzymes. The lab investigates how TET2 and other TET proteins regulate DNA methylation dynamics in hematopoiesis, myeloid malignancies, and metabolic homeostasis, particularly in adipose tissue. Using genetic mouse models and molecular analyses, the lab explores the roles of TET enzymes in maintaining stem cell identity, preventing leukemogenesis, and modulating β-adrenergic signaling in obesity. The research also extends to understanding epigenetic crosstalk in T cell selection and glucocorticoid resistance through transcriptional regulators like SRG3 and Id3.
Figures are computed from collected data and may differ slightly.
The Ten-Eleven-Translocation 2 (TET2) gene encodes a member of TET family enzymes that alters the epigenetic status of DNA by oxidizing 5-methylcytosine to 5-hydroxymethylcytosine (5hmC). Somatic loss-of-function mutations of TET2 are frequently observed in patients with diverse myeloid malignancies, including myelodysplastic syndromes, myeloproliferative neoplasms, and chronic myelomonocytic leukemia. By analyzing mice with targeted disruption of the Tet2 catalytic domain, we show here that Tet
DNA methylation has pivotal regulatory roles in mammalian development, retrotransposon silencing, genomic imprinting, and X-chromosome inactivation. Cancer cells display highly dysregulated DNA methylation profiles characterized by global hypomethylation in conjunction with hypermethylation of promoter CpG islands that presumably lead to genome instability and aberrant expression of tumor suppressor genes or oncogenes. The recent discovery of ten-eleven-translocation (TET) family dioxygenases th
The TET-family enzymes TET1, TET2, and TET3 influence DNA methylation by modifying 5-methylcytosine. Somatic loss-of-function mutations in TET2 are frequently observed in myeloid neoplasms. In this issue of Blood, Li et al. demonstrate that ablation of Tet2 alters the homeostasis and function of hematopoietic stem cells (HSCs) and induces leukemia in mice, as also reported by other groups.
β-adrenergic receptor (β-AR) signaling plays predominant roles in modulating energy expenditure by triggering lipolysis and thermogenesis in adipose tissue, thereby conferring obesity resistance. Obesity is associated with diminished β3-adrenergic receptor (β3-AR) expression and decreased β-adrenergic responses, but the molecular mechanism coupling nutrient overload to catecholamine resistance remains poorly defined. Ten-eleven translocation (TET) proteins are dioxygenases that alter the methyla
Activation of T cell antigen receptor (TCR) signaling inhibits glucocorticoid (GC)-induced apoptosis of T cells. However, the detailed mechanism regarding how activated T cells are protected from GC-induced apoptosis is unclear. Previously, we have shown that the expression level of SRG3, a murine homolog of BAF155 in humans, correlated well with the GC sensitivity of T cells either in vitro or in vivo. Intriguingly, the expression of SRG3 decreased upon positive selection in the thymus. Here we
The E protein family transcription factors encoded by the E2A and HEB genes are known to play critical roles in the coordinate regulation of lymphocyte development. Previous studies have shown that T cell receptor (TCR) signals rapidly induce Id3, a dominant negative antagonist of E2A activity and allow thymocytes to survive selection events in the thymus. Here we show that SRG3 acts as a novel downstream target of E2A/HeLa E box-binding (HEB) complex and modulates glucocorticoid (GC) susceptibi
Abstract Identification of recurrent leukemia-associated mutations in genes encoding regulators of DNA methylation such as DNMT3A and TET2 have underscored the critical importance of DNA methylation in maintenance of normal physiology. To gain insight into how DNA methylation exerts the central role, we sought to determine the genome-wide pattern of DNA methylation in the normal precursors of leukemia cells: the hematopoietic stem cell (HSC), and investigate the factors that affect alterations i
Abstract Abstract 462 In myelodysplastic syndrome (MDS), mutations in genes affecting epigenetic regulation constitute a link between genomic and epigenetic instability. Previously, we and others described mutations in TET2, coding for a 2-oxyglutarate-dependent methylcytosine dioxygenase, which converts 5-methycytosine (5-mC) to 5-hydroxymethylcytosine (5-hmC). Subsequently, dysfunction of wild type TET2 was mechanistically linked to neomorphic IDH mutations which deplete 2-oxyglutarate and pro
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