Baek-Rin Sung
Yonsei University
研究室紹介
Professor Baek-Rin Sung's research lab focuses on emerging infectious diseases, with a strong emphasis on vaccine development and host-pathogen interactions. The lab investigates novel vaccine platforms such as virus-like particles (VLPs) and live-attenuated influenza vaccines to elicit broad and durable immunity against rapidly evolving pathogens like influenza and Burkholderia pseudomallei. A key area of expertise is the molecular characterization of virulence factors, including superoxide dismutases in high-risk pathogens, and the development of advanced imaging tools for real-time tracking of infections in live hosts. The lab integrates microbiology, immunology, and molecular imaging to address global health challenges posed by emerging and re-emerging infectious agents.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
4Emerging viruses pose a major threat to humans and live-stock with global public health and economic burdens. Vac-cination remains an effective tool to reduce this threat, and yet, the conventional cell culture often fails to produce suf-ficient vaccine dose. As an alternative to cell-culture based vaccine, virus-like particles (VLPs) are considered as a high- priority vaccine strategy against emerging viruses. VLPs repre-sent highly ordered repetitive structures via macromolecular assemblies of
The desired effect of vaccination is to elicit protective immune responses against infection with pathogenic agents. An inactivated influenza vaccine is able to induce the neutralizing antibodies directed primarily against two surface antigens, hemagglutinin and neuraminidase. These two antigens undergo frequent antigenic drift and hence necessitate the annual update of a new vaccine strain. Besides the antigenic drift, the unpredictable emergence of the pandemic influenza strain, as seen in the
A superoxide dismutase (SOD) gene from Burkholderia pseudomallei, the causative agent of melioidosis, was cloned and expressed in Escherichia coli, and its product was functionally and physically characterized. The gene has an open-reading frame of 579 bp. The deduced amino acid sequence has 192 residues with a calculated molecular mass of ~22 kDa. Sequence comparison with other bacterial SODs showed that the protein contains typical metal-binding motifs and other Fe-SOD-conserved residues. The
Molecular imaging is a powerful method for tracking various infectious disease-causing pathogens in host organisms. Currently, a dual molecular imaging method that can provide temporal and spatial information on infected hosts at the organism, organ, tissue, and cellular levels simultaneously has not been reported for Burkholderia pseudomallei, a high-risk pathogen that causes melioidosis. In this study, we have established an experimental method that provides spatiotemporal information on infec