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Metformin enhances TRAIL-induced apoptosis by Mcl-1 degradation via Mule in colorectal cancer cells

Authors
Park, Seong HyeLee, Dae-HeeKim, Jung LimKim, Bo RamNa, Yoo JinJo, Min JeeJeong, Yoon A.Lee, Suk-YoungLee, Sun IlLee, Yong YookOh, Sang Cheul
Issue Date
13-9월-2016
Publisher
IMPACT JOURNALS LLC
Keywords
metformin; TRAIL; CRC; Mcl-1; Noxa
Citation
ONCOTARGET, v.7, no.37, pp.59503 - 59518
Indexed
SCIE
SCOPUS
Journal Title
ONCOTARGET
Volume
7
Number
37
Start Page
59503
End Page
59518
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/87529
DOI
10.18632/oncotarget.11147
ISSN
1949-2553
Abstract
Metformin is an anti-diabetic drug with a promising anti-cancer potential. In this study, we show that subtoxic doses of metformin effectively sensitize human colorectal cancer (CRC) cells to tumor necrosis factor (TNF)-related apoptosis-inducing ligand (TRAIL), which induces apoptosis. Metformin alone did not induce apoptosis, but significantly potentiated TRAIL-induced apoptosis in CRC cells. CRC cells treated with metformin and TRAIL showed activation of the intrinsic and extrinsic pathways of caspase activation. We attempted to elucidate the underlying mechanism, and found that metformin significantly reduced the protein levels of myeloid cell leukemia 1 (Mcl-1) in CRC cells and, the overexpression of Mcl-1 inhibited cell death induced by metformin and/or TRAIL. Further experiments revealed that metformin did not affect mRNA levels, but increased proteasomal degradation and protein stability of Mcl-1. Knockdown of Mule triggered a significant decrease of Mcl-1 polyubiquitination. Metformin caused the dissociation of Noxa from Mcl-1, which allowed the binding of the BH3-containing ubiquitin ligase Mule followed by Mcl-1ubiquitination and degradation. The metformin-induced degradation of Mcl-1 required E3 ligase Mule, which is responsible for the polyubiquitination of Mcl-1. Our study is the first report indicating that metformin enhances TRAIL-induced apoptosis through Noxa and favors the interaction between Mcl-1 and Mule, which consequently affects Mcl-1 ubiquitination.
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