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포항공과대학교 생명과학과

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세미나

Mitochondrial Metabolic Reprogramming in Cancer : Targeting Mitochondria in Tumor

2017-09-18 2554
세미나 일시
2017.9.21(Thur.) 16:30
연사
Young Chan Chae
장소
PBC Auditorium
첨부파일

994_0_20170921목_정기세미나연사_채영찬_교수_Host_류성호_교수.pdf

[2017 Fall Life Sciences & IBB Seminar]

▶Subject: Mitochondrial Metabolic Reprogramming in Cancer : Targeting Mitochondria in Tumor

▶Speaker: Prof. Young Chan Chae (School of Life Science, UNIST)

▶Date: 4:30PM/Sep. 21 (Thur.)/2017

▶Place: Auditorium(1F), POSTECH Biotech Center

▶Abctract: One of main characteristics of cancer cell is their fast proliferation. As such, rapidly growing tumors are constantly exposed to unfavorable growth conditions on the tumor environment including nutrient deprivation, acidosis and hypoxia. Tumor cells avoid cell death through adaptive mitochondrial pathways that support rapid cell growth and buffer metabolic stress for. However, it is still unknown how metabolic pathways of tumor are regulated and successfully adapt to environmental stress. Here, we show that chaperones compartmentalized in mitochondria are required to regulating tumor bioenergetics, adaptation to cellular stress and cell survival. Interference with this process activates a signaling network that involves phosphorylation of nutrient-sensing AMP-activated kinase (AMPK), inhibition of rapamycin-sensitive mTOR complex 1 (mTORC1), and induction of autophagy. Furthermore, using a phosphoproteomics screen, we show that active Akt accumulates in the mitochondria during hypoxia and phosphorylates pyruvate dehydrogenase kinase 1 (PDK1) on Thr346 to inactivate the pyruvate dehydrogenase complex. In turn, this pathway switches tumor metabolism towards glycolysis, antagonizes apoptosis and autophagy, dampens oxidative stress, and maintains tumor cell proliferation in the face of severe hypoxia. Mitochondrial Akt-PDK1 signaling correlates with unfavorable prognostic markers and shorter survival in glioma patients. Taken together, this study will accelerate research to understand metabolism of tumors and can provide improved cancer therapy.