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논문 기본 정보

자료유형
학술저널
저자정보
Park Soo Jin (Department of Agricultural Biotechnology Seoul National University Seoul 08826 Republic of Korea) Kim Joo-Hyun (Department of Bio and Fermentation Convergence Technology Kookmin University Seoul 02707 Republic of Korea) Oh Sangtaek (Department of Bio and Fermentation Convergence Technology Kookmin University Seoul 02707 Republic of KoreaDepartment of Interdisciplinary Program for Bio-Health Convergence Kookmin University Seoul 02) Lee Do Yup (Department of Agricultural Biotechnology Seoul National University Seoul 08826 Republic of KoreaInterdisciplinary Program in Agricultural Genomics Seoul National University Seoul 08826 Republic of Kor)
저널정보
한국미생물생명공학회 Journal of Microbiology and Biotechnology Journal of Microbiology and Biotechnology 제33권 제1호
발행연도
2023.1
수록면
114 - 122 (9page)
DOI
10.4014/jmb.2211.11013

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A family of signal transduction pathways known as wingless type (Wnt) signaling pathways is essential to developmental processes like cell division and proliferation. Mutation in Wnt signaling results in a variety of diseases, including cancers of the breast, colon, and skin, metabolic disease, and neurodegenerative disease; thus, the Wnt signaling pathways have been attractive targets for disease treatment. However, the complicatedness and large involveness of the pathway often hampers pinpointing the specific targets of the metabolic process. In our current study, we investigated the differential metabolic regulation by the overexpression of the Wnt signaling pathway in a timely-resolved manner by applying high-throughput and un-targeted metabolite profiling. We have detected and annotated 321 metabolite peaks from a total of 36 human embryonic kidney (HEK) 293 cells using GC-TOF MS and LC-Orbitrap MS. The un-targeted metabolomic analysis identified the radical reprogramming of a range of central carbon/nitrogen metabolism pathways, including glycolysis, TCA cycle, and glutaminolysis, and fatty acid pathways. The investigation, combined with targeted mRNA profiles, elucidated an explicit understanding of activated fatty acid metabolism (β-oxidation and biosynthesis). The findings proposed detailed mechanistic biochemical dynamics in response to Wnt-driven metabolic changes, which may help design precise therapeutic targets for Wnt-related diseases.

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