Active regulator of SIRT1 is required for cancer cell survival but not for SIRT1 activity

被引:22
作者
Knight, John R. P. [1 ]
Allison, Simon J. [1 ]
Milner, Jo [1 ]
机构
[1] Univ York, Dept Biol, York YO10 5DD, N Yorkshire, England
关键词
active regulator of SIRT1; regulation of SIRT1; p53; acetylation; RIBOSOME BIOGENESIS; IN-VIVO; P53; ACETYLATION; DEACETYLASE; TUMORIGENESIS; ACTIVATION; INHIBITION; EXPRESSION; PROTEIN;
D O I
10.1098/rsob.130130
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The NAD(+)-dependent deacetylase SIRT1 is involved in diverse cellular processes, and has also been linked with multiple disease states. Among these, SIRT1 expression negatively correlates with cancer survival in both laboratory and clinical studies. Active regulator of SIRT1 (AROS) was the first reported post-transcriptional regulator of SIRT1 activity, enhancing SIRT1-mediated deacetylation and downregulation of the SIRT1 target p53. However, little is known regarding the role of AROS in regulation of SIRT1 during disease. Here, we report the cellular and molecular effects of RNAi-mediated AROS suppression, comparing this with the role of SIRT1 in a panel of human cell lines of both cancerous and non-cancerous origins. Unexpectedly, AROS is found to vary in its modulation of p53 acetylation according to cell context. AROS suppresses p53 acetylation only following the application of cell damaging stress, whereas SIRT1 suppresses p53 under all conditions analysed. This supplements the original characterization of AROS but indicates that SIRT1 activity can persist following suppression of AROS. We also demonstrate that knockdown of AROS induces apoptosis in three cancer cell lines, independent of p53 activation. Importantly, AROS is not required for the viability of three non-cancer cell lines indicating a putative role for AROS in specifically promoting cancer cell survival.
引用
收藏
页数:9
相关论文
共 64 条
[1]   Human Sirt-1: Molecular Modeling and Structure-Function Relationships of an Unordered Protein [J].
Autiero, Ida ;
Costantini, Susan ;
Colonna, Giovanni .
PLOS ONE, 2009, 4 (10)
[2]   SirT1 Gain of Function Increases Energy Efficiency and Prevents Diabetes in Mice [J].
Banks, Alexander S. ;
Kon, Ning ;
Knight, Colette ;
Matsumoto, Michihiro ;
Gutierrez-Juarez, Roger ;
Rossetti, Luciano ;
Gu, Wei ;
Accili, Domenico .
CELL METABOLISM, 2008, 8 (04) :333-341
[3]   p53 regulates LIF expression in human medulloblastoma cells [J].
Baxter, Euan W. ;
Milner, Jo .
JOURNAL OF NEURO-ONCOLOGY, 2010, 97 (03) :373-382
[4]   Identification of a SIRT1 Mutation in a Family with Type 1 Diabetes [J].
Biason-Lauber, Anna ;
Boni-Schnetzler, Marianne ;
Hubbard, Basil P. ;
Bouzakri, Karim ;
Brunner, Andrea ;
Cavelti-Weder, Claudia ;
Keller, Cornelia ;
Meyer-Boni, Monika ;
Meier, Daniel T. ;
Brorsson, Caroline ;
Timper, Katharina ;
Leibowitz, Gil ;
Patrignani, Andrea ;
Bruggmann, Remy ;
Boily, Gino ;
Zulewski, Henryk ;
Geier, Andreas ;
Cermak, Jennifer M. ;
Elliott, Peter ;
Ellis, James L. ;
Westphal, Christoph ;
Knobel, Urs ;
Eloranta, Jyrki J. ;
Kerr-Conte, Julie ;
Pattou, Francois ;
Konrad, Daniel ;
Matter, Christian M. ;
Fontana, Adriano ;
Rogler, Gerhard ;
Schlapbach, Ralph ;
Regairaz, Camille ;
Carballido, Jose M. ;
Glaser, Benjamin ;
McBurney, Michael W. ;
Pociot, Flemming ;
Sinclair, David A. ;
Donath, Marc Y. .
CELL METABOLISM, 2013, 17 (03) :448-455
[5]  
Bosch-Presegue Laia, 2011, Genes Cancer, V2, P648, DOI 10.1177/1947601911417862
[6]   SIRT1 deacetylation and repression of p300 involves lysine residues 1020/1024 within the cell cycle regulatory domain 1 [J].
Bouras, T ;
Fu, MF ;
Sauve, AA ;
Wang, F ;
Quong, AA ;
Perkins, ND ;
Hay, RT ;
Gu, W ;
Pestell, RG .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (11) :10264-10276
[7]   Stress-dependent regulation of FOXO transcription factors by the SIRT1 deacetylase [J].
Brunet, A ;
Sweeney, LB ;
Sturgill, JF ;
Chua, KF ;
Greer, PL ;
Lin, YX ;
Tran, H ;
Ross, SE ;
Mostoslavsky, R ;
Cohen, HY ;
Hu, LS ;
Cheng, HL ;
Jedrychowski, MP ;
Gygi, SP ;
Sinclair, DA ;
Alt, FW ;
Greenberg, ME .
SCIENCE, 2004, 303 (5666) :2011-2015
[8]   Requirement for p53 and p21 to sustain G2 arrest after DNA damage [J].
Bunz, F ;
Dutriaux, A ;
Lengauer, C ;
Waldman, T ;
Zhou, S ;
Brown, JP ;
Sedivy, JM ;
Kinzler, KW ;
Vogelstein, B .
SCIENCE, 1998, 282 (5393) :1497-1501
[9]   Inhibition of RNA Polymerase I as a Therapeutic Strategy to Promote Cancer-Specific Activation of p53 [J].
Bywater, Megan J. ;
Poortinga, Gretchen ;
Sanij, Elaine ;
Hein, Nadine ;
Peck, Abigail ;
Cullinane, Carleen ;
Wall, Meaghan ;
Cluse, Leonie ;
Drygin, Denis ;
Anderes, Kenna ;
Huser, Nanni ;
Proffitt, Chris ;
Bliesath, Joshua ;
Haddach, Mustapha ;
Schwaebe, Michael K. ;
Ryckman, David M. ;
Rice, William G. ;
Schmitt, Clemens ;
Lowe, Scott W. ;
Johnstone, Ricky W. ;
Pearson, Richard B. ;
McArthur, Grant A. ;
Hannan, Ross D. .
CANCER CELL, 2012, 22 (01) :51-65
[10]  
CHEN GL, 1984, J BIOL CHEM, V259, P3560