Quiescence versus apoptosis:: Myc abundance determines pathway of exit from the cell cycle

被引:22
作者
Helbing, CC [1 ]
Wellington, CL [1 ]
Gogela-Spehar, M [1 ]
Cheng, T [1 ]
Pinchbeck, GG [1 ]
Johnston, RN [1 ]
机构
[1] Univ Calgary, Dept Biochem & Mol Biol, Calgary, AB T2N 4N1, Canada
关键词
apoptosis; c-Myc; cdk2; cell cycle control; quiescence; tetracycline;
D O I
10.1038/sj.onc.1202241
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
When exposed to diverse growth conditions in vitro, cells can respond by entering states of proliferation, quiescence, differentiation or apoptosis, While the choices among these states can be influenced by proto-oncogene expression, how these disparate outcomes are achieved remains poorly understood. To address these issues, we have generated rodent fibroblast cell lines that harbor a human c-myc gene under the control of a tetracycline-regulated promoter, When Myc-induced cells are deprived of serum growth factors, they rapidly become apoptotic with the onset of apoptosis preceded by a large, transient increase in cdk2 kinase activity that is associated with the induction of cdc25A phosphatase and the later accumulation of p27(Kip1) kinase inhibitor, Surprisingly, serum starvation in the absence of myc overexpression, (which leads to quiescence instead of apoptosis) also causes a marked transient elevation in cdk2 kinase activity, an induction of cdc25A and a delayed increase in p27(Kip1), Transient elevations in cdk2 kinase activity and cdc25A abundance are required for cell cycle progression, but it is evident that these changes also precede entry to either apoptosis or quiescence in serum-starved cells. These findings suggest that the pathways to both quiescence and apoptosis share regulatory machinery with cell cycle control mechanisms. In addition, the abundance of MSc protein can be critical in the choices among these cellular states.
引用
收藏
页码:1491 / 1501
页数:11
相关论文
共 78 条
[1]  
ASKEW DS, 1991, ONCOGENE, V6, P1915
[2]   CYCLIN-A LINKS C-MYC TO ADHESION-INDEPENDENT CELL-PROLIFERATION [J].
BARRETT, JF ;
LEWIS, BC ;
HOANG, AT ;
ALVAREZ, RJ ;
DANG, CV .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1995, 270 (27) :15923-15925
[3]   INTERACTION OF C-MYC WITH THE PRB-RELATED PROTEIN P107 RESULTS IN INHIBITION OF C-MYC-MEDIATED TRANSACTIVATION [J].
BEIJERSBERGEN, RL ;
HIJMANS, EM ;
ZHU, L ;
BERNARDS, R .
EMBO JOURNAL, 1994, 13 (17) :4080-4086
[4]   NOVEL PROMOTER UPSTREAM OF THE HUMAN C-MYC GENE AND REGULATION OF C-MYC EXPRESSION IN B-CELL LYMPHOMAS [J].
BENTLEY, DL ;
GROUDINE, M .
MOLECULAR AND CELLULAR BIOLOGY, 1986, 6 (10) :3481-3489
[5]  
Cleveland J L, 1988, Oncogene Res, V3, P357
[6]  
DAKSIS JI, 1994, ONCOGENE, V9, P3635
[7]   MAMMALIAN G(1) CYCLINS [J].
DRAETTA, GF .
CURRENT OPINION IN CELL BIOLOGY, 1994, 6 (06) :842-846
[8]   CHIMERAS OF MYC ONCOPROTEIN AND STEROID-RECEPTORS CAUSE HORMONE-DEPENDENT TRANSFORMATION OF CELLS [J].
EILERS, M ;
PICARD, D ;
YAMAMOTO, KR ;
BISHOP, JM .
NATURE, 1989, 340 (6228) :66-68
[9]   THE ROLE OF C-MYC IN CELL-GROWTH [J].
EVAN, GI ;
LITTLEWOOD, TD .
CURRENT OPINION IN GENETICS & DEVELOPMENT, 1993, 3 (01) :44-49
[10]   INDUCTION OF APOPTOSIS IN FIBROBLASTS BY C-MYC PROTEIN [J].
EVAN, GI ;
WYLLIE, AH ;
GILBERT, CS ;
LITTLEWOOD, TD ;
LAND, H ;
BROOKS, M ;
WATERS, CM ;
PENN, LZ ;
HANCOCK, DC .
CELL, 1992, 69 (01) :119-128