Korea University · Biochemistry, Genetics and Molecular Biology
Professor Byung Cheon Lee's research lab focuses on redox biology and the molecular mechanisms underlying oxidative stress, aging, and cellular homeostasis. The lab investigates the roles of selenoproteins and methionine redox modifications in regulating immune responses, antioxidant defense, and longevity, with a particular emphasis on enzymes like methionine sulfoxide reductase B1 (MsrB1) and selenoproteins such as R and O. The research integrates molecular biology, redox signaling, and translational studies to explore how these mechanisms influence health, disease, and stress resilience in mammals and plants. Additionally, the lab examines the impact of dietary interventions, including selenium and protein restriction, on aging and metabolic regulation.
Figures are computed from collected data and may differ slightly.
Selenium is a vital trace element present as selenocysteine (Sec) in proteins that are, thus, known as selenoproteins. Humans have 25 selenoproteins, most of which are functionally characterized as oxidoreductases, where the Sec residue plays a catalytic role in redox regulation and antioxidant activity. Glutathione peroxidase plays a pivotal role in scavenging and inactivating hydrogen and lipid peroxides, whereas thioredoxin reductase reduces oxidized thioredoxins as well as non-disulfide subs
Dietary restriction (DR) without malnutrition is associated with longevity in various organisms. However, it has also been shown that reduced calorie intake is often ineffective in extending life span. Selecting optimal dietary regimens for DR studies is complicated, as the same regimen may lead to different outcomes depending on genotype and environmental factors. Recent studies suggested that interventions such as moderate protein restriction with or without adequate nutrition (e.g., particula
Oxidation of methionine, reviewed here, is an emerging but not well-established mechanism. Studies suggest that methionine oxidation is a form of oxidative damage of proteins, a modification that alters protein structure or function, a tool in redox signaling, and a mechanism that controls protein function. Understanding the functional impact of reversible oxidation of methionine will require identification of targets, substrates, and regulators of Micals and Msrs. Linking the biological process
Selenium (Se) is an essential micronutrient for humans and animals and can have beneficial effects on plants. A low concentration of Se can improve plant growth; however, high concentrations can be toxic for plants. In addition, Se can counteract stresses from toxic trace elements in plants. Hence, improved knowledge of the mechanisms involved may contribute to more effective management of Se for reducing trace element stress in plants. Here, the mechanisms of Se-mediated reduction of trace elem
The purpose of this study is to empirically examine the effect of gamification on tourist psychological outcome and knowledge gain in the context of cultural heritage sites, which are popular cruise tourism destinations. A comprehensive literature review revealed the critical role of gamification in facilitating psychological (enjoyment, flow experience, and loyalty) and behavioral outcomes (knowledge gain) at cultural heritage sites. Using a field experiment, this study employed a gamified app
Post-translational redox modification of methionine residues often triggers a change in protein function. Emerging evidence points to this reversible protein modification being an important regulatory mechanism under various physiological conditions. Reduction of oxidized methionine residues is catalyzed by methionine sulfoxide reductases (Msrs). Here, we show that one of these enzymes, a selenium-containing MsrB1, is highly expressed in immune-activated macrophages and contributes to shaping ce
Numerous secreted virulence factors have been proposed to account for the fulminating and destructive nature of Vibrio vulnificus infections. A mutant of V. vulnificus that exhibited less cytotoxicity to INT-407 human intestinal epithelial cells was screened from a library of mutants constructed by random transposon mutagenesis. A transposon-tagging method was used to identify and clone an open reading frame encoding an RTX toxin secretion ATP binding protein, RtxE, from V. vulnificus. The deduc
Methionine is an essential amino acid in mammals at the junction of methylation, protein synthesis, and sulfur pathways. However, this amino acid is highly susceptible to oxidation, resulting in a mixture of methionine-S-sulfoxide and methionine-R-sulfoxide. Whether methionine is quantitatively regenerated from these compounds is unknown. Here we report that SK-Hep1 hepatocytes grew on methionine-S-sulfoxide and consumed this compound by import and methionine-S-sulfoxide reductase (MsrA)-depende
The purpose of the present study is to examine the impact of social capital on destination marketing organisations' (DMOs) technology adoption, especially Web 2.0. In other words, among the variety of factors that might influence individuals' or organisations' technology adoption, this study suggests that the concept of social capital is an additional important factor that might influence DMOs' technology adoption. Social networks (size of network, tie strength, and bridging and bonding ties), t
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