Korea University · Biochemistry, Genetics and Molecular Biology
이 교수의 연구실은 항생제 내성 문제 해결을 위한 천연 항마이크로바이얼 펩타이드(AMPs)의 응용과 함께, 뼈 재생을 위한 칼슘 기반 생체재료, 다이아톰 빌라의 생체활성 실리카 소재, DNA 마이크로어레이 제작을 위한 고성능 화학적 기법, 그리고 식물 폴리페놀의 약물 전달을 위한 나노캐리어 기술 등 다학제적 생체재료 및 약물 전달 전략을 연구하고 있습니다. 특히 생체 적합성, 구조 제어, 기능화를 통한 기능성 소재 개발에 초점을 맞추고 있으며, 환경 오염 정화를 위한 효소 기반 생물정화 기술도 함께 발전시키고 있습니다.
Figures are computed from collected data and may differ slightly.
The emergence of drug resistance genes and the detrimental health effects caused by the overuse of antibiotics are increasingly prominent problems. There is an urgent need for effective strategies to antibiotics or antimicrobial resistance in the fields of biomedicine and therapeutics. The pathogen-killing ability of antimicrobial peptides (AMPs) is linked to their structure and physicochemical properties, including their conformation, electrical charges, hydrophilicity, and hydrophobicity. AMPs
Calcium-based materials, such as calcium carbonate, calcium phosphate, and calcium silicate, have attracted significant attention in biomedical research, owing to their unique physicochemical properties and versatile applications. The distinctive characteristics of these materials, including their inherent biocompatibility and tunable structures, hold significant promise for applications in bone regeneration and tissue engineering. This review explores the biomedical applications of calcium-cont
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Oxanine having an O-acylisourea structure was explored to see if its reactivity with amino group is useful in DNA microarray fabrication. By the chemical synthesis, a nucleotide unit of oxanine (Oxa-N) was incorporated into the 5'-end of probe DNA with or without the -(CH2)n- spacers (n = 3 and 12) and found to immobilize the probe DNA covalently onto the NH2-functionalized glass slide by one-pot reaction, producing the high efficiency of the target hybridization. The methylene spacer, particula
Polyphenols from plants such as fruits and vegetables are phytochemicals with physiological and pharmacological activity as potential drugs to modulate oxidative stress and inflammation associated with cardiovascular disease, chronic disease, and cancer. However, due to the limited water solubility and bioavailability of many natural compounds, their pharmacological applications have been limited. Researchers have made progress in the development of nano- and micro-carriers that can address thes
The ever-increasing presence of micropollutants necessitates the development of environmentally friendly bioremediation strategies. Inspired by the remarkable versatility and potent catalytic activities of microbial enzymes, researchers are exploring their application as biocatalysts for innovative environmental cleanup solutions. Microbial enzymes offer remarkable substrate specificity, biodegradability, and the capacity to degrade a wide array of pollutants, positioning them as powerful tools
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