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Dive into the research topics where Sung Hyun Hong is active.

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Featured researches published by Sung Hyun Hong.


Molecules and Cells | 2011

Engineering of 2-Cys peroxiredoxin for enhanced stress-tolerance

Byung Chull An; Seung Sik Lee; Jae Taek Lee; Sung Hyun Hong; Seung Gon Wi; Byung Yeoup Chung

AbstracA typical 2-cysteine peroxiredoxin (2-Cys Prx)-like protein (PpPrx) that alternatively acts as a peroxidase or a molecular chaperone in Pseudomonas putida KT2440 was previously characterized. The dual functions of PpPrx are regulated by the existence of an additional Cys112 between the active Cys51 and Cys171 residues. In the present study, additional Cys residues (Cys31, Cys112, and Cys192) were added to PpPrx variants to improve their enzymatic function. The optimal position of the additional Cys residues for the dual functionality was assessed. The peroxidase activities of the S31C and Y192C mutants were increased 3- to 4-fold compared to the wild-type, while the chaperone activity was maintained at > 66% of PpPrx. To investigate whether optimization of the dual functions could enhance stress-tolerance in vivo, a complementation study was performed. The S31C and Y192C mutants showed a much greater tolerance than other variants under a complex condition of heat and oxidative stresses. The optimized dual functions of PpPrx could be adapted for use in bioengineering systems and industries, such as to develop organisms that are more resistant to extreme environments.


Annals of Botany | 2015

Site-directed mutagenesis substituting cysteine for serine in 2-Cys peroxiredoxin (2-Cys Prx A) of Arabidopsis thaliana effectively improves its peroxidase and chaperone functions

Eun Mi Lee; Seung Sik Lee; Bhumi Nath Tripathi; Hyun Suk Jung; Guang Ping Cao; Yuno Lee; Sudhir Singh; Sung Hyun Hong; Keun Woo Lee; Sang Yeol Lee; Jae-Young Cho; Byung Yeoup Chung

BACKGROUND AND AIMS The 2-Cys peroxiredoxin (Prx) A protein of Arabidopsis thaliana performs the dual functions of a peroxidase and a molecular chaperone depending on its conformation and the metabolic conditions. However, the precise mechanism responsible for the functional switching of 2-Cys Prx A is poorly known. This study examines various serine-to-cysteine substitutions on α-helix regions of 2-Cys Prx A in Arabidopsis mutants and the effects they have on the dual function of the protein. METHODS Various mutants of 2-Cys Prx A were generated by replacing serine (Ser) with cysteine (Cys) at different locations by site-directed mutagenesis. The mutants were then over-expressed in Escherichia coli. The purified protein was further analysed by size exclusion chromatography, polyacrylamide gel electrophoresis, circular dichroism spectroscopy and transmission electron microscopy (TEM) and image analysis. Peroxidase activity, molecular chaperone activity and hydrophobicity of the proteins were also determined. Molecular modelling analysis was performed in order to demonstrate the relationship between mutation positions and switching of 2-Cys Prx A activity. KEY RESULTS Replacement of Ser(150) with Cys(150) led to a marked increase in holdase chaperone and peroxidase activities of 2-Cys Prx A, which was associated with a change in the structure of an important domain of the protein. Molecular modelling demonstrated the relationship between mutation positions and the switching of 2-Cys Prx A activity. Examination of the α2 helix, dimer-dimer interface and C-term loop indicated that the peroxidase function is associated with a fully folded α2 helix and easy formation of a stable reduced decamer, while a more flexible C-term loop makes the chaperone function less likely. CONCLUSIONS Substitution of Cys for Ser at amino acid location 150 of the α-helix of 2-Cys Prx A regulates/enhances the dual enzymatic functions of the 2-Cys Prx A protein. If confirmed in planta, this leads to the potential for it to be used to maximize the functional utility of 2-Cys Prx A protein for improved metabolic functions and stress resistance in plants.


Molecules and Cells | 2016

Enhancement of the Chaperone Activity of Alkyl Hydroperoxide Reductase C from Pseudomonas aeruginosa PAO1 Resulting from a Point-Specific Mutation Confers Heat Tolerance in Escherichia coli

Jae Taek Lee; Seung Sik Lee; Suvendu Mondal; Bhumi Nath Tripathi; Siu Kim; Keun Woo Lee; Sung Hyun Hong; Hyoung-Woo Bai; Jae-Young Cho; Byung Yeoup Chung

Alkyl hydroperoxide reductase subunit C from Pseudomonas aeruginosa PAO1 (PaAhpC) is a member of the 2-Cys peroxiredoxin family. Here, we examined the peroxidase and molecular chaperone functions of PaAhpC using a site-directed mutagenesis approach by substitution of Ser and Thr residues with Cys at positions 78 and 105 located between two catalytic cysteines. Substitution of Ser with Cys at position 78 enhanced the chaperone activity of the mutant (S78C-PaAhpC) by approximately 9-fold compared with that of the wild-type protein (WT-PaAhpC). This increased activity may have been associated with the proportionate increase in the high-molecular-weight (HMW) fraction and enhanced hydrophobicity of S78C-PaAhpC. Homology modeling revealed that mutation of Ser78 to Cys78 resulted in a more compact decameric structure than that observed in WT-PaAhpC and decreased the atomic distance between the two neighboring sulfur atoms of Cys78 in the dimer-dimer interface of S78C-PaAhpC, which could be responsible for the enhanced hydrophobic interaction at the dimer-dimer interface. Furthermore, complementation assays showed that S78C-PaAhpC exhibited greatly improved the heat tolerance, resulting in enhanced survival under thermal stress. Thus, addition of Cys at position 78 in PaAhpC modulated the functional shifting of this protein from a peroxidase to a chaperone.


Scientific Reports | 2018

Functional switching of ascorbate peroxidase 2 of rice (OsAPX2) between peroxidase and molecular chaperone

Sung Hyun Hong; Bhumi Nath Tripathi; Moon-Soo Chung; Chuloh Cho; Sungbeom Lee; Jin-Hong Kim; Hyoung-Woo Bai; Hyeun-Jong Bae; Jae-Young Cho; Byung Yeoup Chung; Seung Sik Lee

Ascorbate peroxidase (APX) is a class I haem-containing peroxidase, which catalyses the conversion of H2O2 to H2O and O2 using ascorbate as the specific electron donor. APX plays a central role in the elimination of intracellular reactive oxygen species (ROS) and protects plants from the oxidative damage that can occur as a result of biotic and abiotic stresses. At present, the only known function of APX is as a peroxidase. However, in this study, we demonstrate that Oryza sativa APX2 also operates as a molecular chaperone in rice. The different functions of OsAPX2 correlate strongly with its structural conformation. The high-molecular-weight (HMW) complexes had chaperone activity, whereas the low-molecular-weight (LMW) forms displayed predominantly APX activity. The APX activity was effectively inhibited by sodium azide, which is an inhibitor of haem-containing enzymes, but this did not affect the protein’s activity as a chaperone. Additionally, the OsAPX2 conformational changes could be regulated by salt and heat stresses and these stimulated OsAPX2 dissociation and association, respectively. Our results provide new insight into the roles of APXs.


Radiation Physics and Chemistry | 2014

Improved enzymatic hydrolysis of wheat straw by combined use of gamma ray and dilute acid for bioethanol production

Sung Hyun Hong; Jae Taek Lee; Sungbeom Lee; Seung Gon Wi; Eun Ju Cho; Sudhir Singh; Seung Sik Lee; Byung Yeoup Chung


Radiation Physics and Chemistry | 2012

Improvement of chaperone activity of 2-Cys peroxiredoxin using electron beam

Sung Hyun Hong; Byung Chull An; Seung Sik Lee; Jae Taek Lee; Jae-Hyun Cho; Hyun Suk Jung; Byung Yeoup Chung


Radiation Physics and Chemistry | 2012

Gamma irradiation improves the antioxidant activity of Aloe vera (Aloe barbadensis miller) extracts

Eun Mi Lee; Hyoung-Woo Bai; Seung Sik Lee; Sung Hyun Hong; Jae-Young Cho; Byung Yeoup Chung


Radiation Physics and Chemistry | 2012

Gamma rays as an effective tool for removing undesirable color without adverse changes in biological activities of red beet extracts

Seung Sik Lee; Eun Mi Lee; Sung Hyun Hong; Hyoung-Woo Bai; In Chul Lee; Byung Yeoup Chung


Plant Growth Regulation | 2015

Liquid chromatography-tandem mass spectrometry-assisted identification of two salinity-inducible ascorbate peroxidases in a salt-sensitive rice cultivar ( Oryza sativa L. cv. ‘IR-29’)

Sungbeom Lee; Moon-Soo Chung; Ji Eun Kim; Gun Woong Lee; Yeon Sim Jeong; Min Hee Lee; Sung Hyun Hong; Seung Sik Lee; Jin-Hong Kim; Byung Yeoup Chung


international conference on biomedical engineering and biotechnology | 2012

Drastic Enhancement of Maysin and Maysin Derivatives Contents in the Centipedegrass Extracts by Different Stresses

Hyoung-Woo Bai; Eun Mi Lee; Seung Sik Lee; Sung Hyun Hong; Min Hee Lee; Byung Yeoup Chung

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Seung Sik Lee

Gyeongsang National University

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Jae-Young Cho

Chonbuk National University

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Keun Woo Lee

Gyeongsang National University

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