<P>Secondary metabolites of plants are often difficult to synthesize in high yields because of the large complexity of the biosynthetic pathways and challenges encountered in the functional expression of the required biosynthetic enzymes in micr...
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https://www.riss.kr/link?id=A107481221
2015
-
SCI,SCIE,SCOPUS
학술저널
2773-2781(9쪽)
0
상세조회0
다운로드다국어 초록 (Multilingual Abstract)
<P>Secondary metabolites of plants are often difficult to synthesize in high yields because of the large complexity of the biosynthetic pathways and challenges encountered in the functional expression of the required biosynthetic enzymes in micr...
<P>Secondary metabolites of plants are often difficult to synthesize in high yields because of the large complexity of the biosynthetic pathways and challenges encountered in the functional expression of the required biosynthetic enzymes in microbial cells. In this study, the biosynthesis of plant oxylipins-a family of oxygenated unsaturated carboxylic acids-was explored to enable a high-yield production through a designed microbial synthetic system harboring a set of microbial enzymes (i.e., fatty acid double-bond hydratases, alcohol dehydrogenases, Baeyer-Villiger monooxygenases, and esterases) to produce a variety of unsaturated carboxylic acids from ?-linolenic acid. The whole cell system of the recombinant Escherichia coli efficiently produced (6Z,9Z)-12-hydroxydodeca-6,9-dienoic acid (<B>7</B>), (Z)-9-hydroxynon-6-enoic acid (<B>15</B>), (Z)-dec-4-enedioic acid (<B>17</B>), and (6Z,9Z)-13-hydroxyoctadeca-6,9-dienoic acid (<B>2</B>). This study demonstrated that various secondary metabolites of plants can be produced by implementing artificial biosynthetic pathways into whole-cell biocatalysis.</P>