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An Ancient, Unified Mechanism for Metformin Growth Inhibition in C. elegans and Cancer.

Citation
Wu, L., et al. “An Ancient, Unified Mechanism For Metformin Growth Inhibition In C. Elegans And Cancer.”. Cell, pp. 1705-1718.e13.
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Author Lianfeng Wu, Ben Zhou, Noriko Oshiro-Rapley, Man Li, Joao A Paulo, Christopher M Webster, Fan Mou, Michael C Kacergis, Michael E Talkowski, Christopher E Carr, Steven P Gygi, Bin Zheng, Alexander A Soukas
Keywords ACAD10, C. elegans, Metformin, NPC, RagC GTPase, acyl-CoA dehydrogenase family member 10, cancer, diabetes, growth, lifespan, mTORC1, mechanistic target of rapamycin complex 1, mitochondrial respiratory capacity, nuclear pore complex, nuclear transport
Abstract

Metformin has utility in cancer prevention and treatment, though the mechanisms for these effects remain elusive. Through genetic screening in C. elegans, we uncover two metformin response elements: the nuclear pore complex (NPC) and acyl-CoA dehydrogenase family member-10 (ACAD10). We demonstrate that biguanides inhibit growth by inhibiting mitochondrial respiratory capacity, which restrains transit of the RagA-RagC GTPase heterodimer through the NPC. Nuclear exclusion renders RagC incapable of gaining the GDP-bound state necessary to stimulate mTORC1. Biguanide-induced inactivation of mTORC1 subsequently inhibits growth through transcriptional induction of ACAD10. This ancient metformin response pathway is conserved from worms to humans. Both restricted nuclear pore transit and upregulation of ACAD10 are required for biguanides to reduce viability in melanoma and pancreatic cancer cells, and to extend C. elegans lifespan. This pathway provides a unified mechanism by which metformin kills cancer cells and extends lifespan, and illuminates potential cancer targets. PAPERCLIP.

Year of Publication
2016
Journal
Cell
Volume
167
Issue
7
Number of Pages
1705-1718.e13
Date Published
12/2016
ISSN Number
1097-4172
DOI
10.1016/j.cell.2016.11.055
Alternate Journal
Cell
PMID
27984722
PMCID
PMC5390486
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