Jeong Chan Joo
이화여자대학교 화공신소재공학과 · 생화학·유전·분자생물학
정찬주 교수의 연구실은 생물학적 전환 기반의 지속 가능한 화학공업을 목표로 하며, 대체 원료를 활용한 플랫폼 화학물질 및 바이오플라스틱의 대량 생산을 위한 미생물 공정 기술을 핵심으로 연구하고 있습니다. 특히, 땅콩껍질 등 농업 부산물에서 유래하는 라이그닌 衍생 화합물과 포도당을 기반으로 한 생합성 경로를 설계하여, 네이론-6,6의 전구체인 아드피크 산을 효율적으로 생산하는 효소 기반의 생합성 기술을 개발하고 있습니다. 또한, 대사공학을 기반으로 한 대사 경로 최적화와 효소의 기질 특이성 제어를 통해 고부가가치 화학물질의 생물합성을 실현하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Advances in scientific technology in the early twentieth century have facilitated the development of synthetic plastics that are lightweight, rigid, and can be easily molded into a desirable shape without changing their material properties. Thus, plastics become ubiquitous and indispensable materials that are used in various manufacturing sectors, including clothing, automotive, medical, and electronic industries. However, strong physical durability and chemical stability of synthetic plastics,
Adipic acid, a precursor for Nylon-6,6 polymer, is one of the most important commodity chemicals, which is currently produced from petroleum. The biosynthesis of adipic acid from glucose still remains challenging due to the absence of biocatalysts required for the hydrogenation of unsaturated six-carbon dicarboxylic acids to adipic acid. Here, we demonstrate the first enzymatic hydrogenation of 2-hexenedioic acid and muconic acid to adipic acid using enoate reductases (ERs). ERs can hydrogenate
Abstract The fermentative production of platform chemicals in biorefineries is a sustainable alternative to current petroleum‐refining processes. Industrial microorganisms, such as Escherichia coli , Saccharomyces cerevisiae , and Corynebacterium glutamicum, have been engineered as microbial cell factories that are able to utilize biomass for the production of value‐added platform chemicals and polymers. Compared to E. coli and S. cerevisiae , C. glutamicum displays weak carbon catabolite repres
Lignin valorization depends on microbial upcycling of various aromatic compounds in the form of a complex mixture, including p-coumaric acid and ferulic acid. In this study, an engineered Pseudomonas putida strain utilizing lignin-derived monomeric compounds via biological funneling was developed to produce 2-pyrone-4,6-dicarboxylic acid (PDC), which has been considered a promising building block for bioplastics. The biosynthetic pathway for PDC production was established by introducing the hete