Hyun Jung Chung
Korea Advanced Institute of Science and Technology · 生化学・遺伝学・分子生物学
研究室紹介
Professor Hyun Jung Chung's research lab specializes in the development of advanced biomaterials and nanotechnologies for biomedical applications, with a focus on tissue engineering, targeted diagnostics, and precision therapeutics. The lab integrates principles of polymer chemistry, nanomaterials, and molecular biology to design injectable microcarriers, smart nanoparticles, and genome-editing delivery systems for regenerative medicine and infectious disease management. Key research directions include biodegradable porous microspheres for cell delivery, bioorthogonal labeling for rapid pathogen detection, and functionalized iron oxide nanoparticles for diagnostic imaging and theranostics. The lab also explores novel metallic alloys for structural applications, emphasizing microstructure engineering to achieve ultrahigh strength and ductility.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15The overuse of antibiotics plays a major role in the emergence and spread of multidrug-resistant bacteria. A molecularly targeted, specific treatment method for bacterial pathogens can prevent this problem by reducing the selective pressure during microbial growth. Herein, we introduce a nonviral treatment strategy delivering genome editing material for targeting antibacterial resistance. We apply the CRISPR-Cas9 system, which has been recognized as an innovative tool for highly specific and eff
The ability to rapidly diagnose gram-positive pathogenic bacteria would have far reaching biomedical and technological applications. Here we describe the bioorthogonal modification of small molecule antibiotics (vancomycin and daptomycin), which bind to the cell wall of gram-positive bacteria. The bound antibiotics conjugates can be reacted orthogonally with tetrazine-modified nanoparticles, via an almost instantaneous cycloaddition, which subsequently renders the bacteria detectable by optical
Injectable cell therapy would provide a patient-friendly procedure for treatment of degenerated or wounded tissue. Biodegradable injectable porous microspheres were fabricated to use as dual-purpose microcarriers for cell culture and injectable scaffold for tissue regeneration. Gas foaming in a water-in-oil-in-water double emulsion was performed for fabricating the well-interconnected porous microcarriers using poly(lactic-co-glycolic acid) (PLGA). The gas foaming conditions were finely tuned to
Cellular aggregates were prepared using biodegradable porous microspheres for injectable reconstruction of soft tissues in vivo. Biodegradable porous microspheres with sizes of approximately 50 microm were prepared by a porogen leaching-phase separation process in an oil-in-water single-emulsion method using poly(D,L-lactide-co-glycolide). 3T3 L1 mouse preadipocyte cells were transformed into cellular aggregates by suspension cultivation in a spinner flask using the porous microspheres as effect
Currently available methods to stably disperse iron oxide nanoparticles (IONPs) in aqueous solution need to be improved due to potential aggregation, reduction of superparamagnetism, and the use of toxic reagents. Herein, we present a facile strategy for aqueous transfer and dispersion of organic-synthesized IONPs using only polyethylene glycol (PEG), a biocompatible polymer. A library of PEG derivatives was screened, and it was determined that amine-functionalized six-armed PEG, 6(PEG-NH(2)), w
Demands for ultrahigh strength in structural materials have been steadily increasing in response to environmental issues. Maraging alloys offer a high tensile strength and fracture toughness through a reduction of lattice defects and formation of intermetallic precipitates. The semi-coherent precipitates are crucial for exhibiting ultrahigh strength; however, they still result in limited work hardening and uniform ductility. Here, we demonstrate a strategy involving deformable semi-coherent prec
Effects of photosensitizers including riboflavin, chlorophyll b, or methylene blue on the stability of daidzein and genistein were studied in model systems by high-performance liquid chromatography (HPLC). Concentration of daidzein and genistein in 80% methanol with riboflavin under light for 7 h was significantly decreased with the apparent 1st-order rate constants of 0.234 and 0.193/h, respectively, (P < 0.05), while those without riboflavin under light did not change significantly (P > 0.05).
The high incidence of acute and chronic kidney injury due to various environmental factors such as heavy metals or chemicals has been a major problem in developing countries. However, the diagnosis of kidney injury in these areas can be more challenging due to the lack of highly sensitive and specific techniques that can be applied in point-of-care settings. To address this, we have developed a technique called 'micro-urine nanoparticle detection (μUNPD)', that allows the detection of trace amou
Research Areas
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