The Translational Landscape of the Mammalian Cell Cycle

被引:153
|
作者
Stumpf, Craig R. [1 ,2 ]
Moreno, Melissa V. [1 ,2 ]
Olshen, Adam B. [2 ,3 ]
Taylor, Barry S. [2 ,3 ,4 ]
Ruggero, Davide [1 ,2 ]
机构
[1] Univ Calif San Francisco, Dept Urol, San Francisco, CA 94158 USA
[2] Univ Calif San Francisco, Helen Diller Family Comprehens Canc Ctr, San Francisco, CA 94158 USA
[3] Univ Calif San Francisco, Dept Epidemiol & Biostat, San Francisco, CA 94158 USA
[4] Univ Calif San Francisco, Dept Med, San Francisco, CA 94158 USA
关键词
PROTEIN-KINASE B; COHESIN; GROWTH; EXPRESSION; INITIATION; RESOLUTION; REVEALS; GENE; WAPL;
D O I
10.1016/j.molcel.2013.09.018
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
Gene regulation during cell-cycle progression is an intricately choreographed process, ensuring accurate DNA replication and division. However, the translational landscape of gene expression underlying cell-cycle progression remains largely unknown. Employing genome-wide ribosome profiling, we uncover widespread translational regulation of hundreds of mRNAs serving as an unexpected mechanism for gene regulation underlying cell-cycle progression. A striking example is the S phase translational regulation of RICTOR, which is associated with cell cycle-dependent activation of mammalian target of rapamycin complex 2 (mTORC2) signaling and accurate cell-cycle progression. We further identified unappreciated coordination in translational control of mRNAs within molecular complexes dedicated to cell-cycle progression, lipid metabolism, and genonne integrity. This includes the majority of mRNAs comprising the cohesin and condenin complexes responsible for maintaining genome organization, which are coordinately translated during specific cell cycle phases via their 5' UTRs. Our findings illuminate the prevalence and dynamic nature of translational regulation underlying the mammalian cell cycle.
引用
收藏
页码:574 / 582
页数:9
相关论文
共 50 条
  • [31] TEMPERATURE COMPENSATION IN THE MAMMALIAN-CELL CYCLE
    KLEVECZ, RR
    KING, GA
    EXPERIMENTAL CELL RESEARCH, 1982, 140 (02) : 307 - 313
  • [32] A Review of Computational Models of Mammalian Cell Cycle
    Abroudi, A.
    Samarasinghe, S.
    Kulasiri, D.
    21ST INTERNATIONAL CONGRESS ON MODELLING AND SIMULATION (MODSIM2015), 2015, : 564 - 570
  • [33] Molecular aspects of the mammalian cell cycle and cancer
    Sandal, T
    ONCOLOGIST, 2002, 7 (01): : 73 - 81
  • [34] A comprehensive reduced model of the mammalian cell cycle
    Almeida, S.
    Chaves, M.
    Delaunay, F.
    Feillet, C.
    IFAC PAPERSONLINE, 2017, 50 (01): : 12617 - 12622
  • [35] Meiotic Cell Cycle Arrest in Mammalian Oocytes
    Tripathi, Anima
    Kumar, K. V. Prem
    Chaube, Shail K.
    JOURNAL OF CELLULAR PHYSIOLOGY, 2010, 223 (03) : 592 - 600
  • [36] Regulation of cell cycle checkpoints in mammalian cells
    Nakanishi, M
    SEIKAGAKU, 2001, 73 (05): : 343 - 350
  • [37] The effect of HEMA on the cell cycle of mammalian cells
    Schweikl, H
    Altmannsberger, I
    Bolay, C
    Hiller, KA
    Spagnuolo, G
    Schmalz, G
    NAUNYN-SCHMIEDEBERGS ARCHIVES OF PHARMACOLOGY, 2005, 371 : R117 - R117
  • [38] POLYSOME TRANSLATIONAL STATE DURING CELL-CYCLE
    EREMENKO, T
    VOLPE, P
    EUROPEAN JOURNAL OF BIOCHEMISTRY, 1975, 52 (02): : 203 - 210
  • [39] Post-translational modifications in embryonic cell cycle
    Van der Laan, Siem
    Maiorano, Domenico
    CELL CYCLE, 2014, 13 (09) : 1364 - 1365
  • [40] Relation Between the Cell Volume and the Cell Cycle Dynamics in Mammalian cell
    Magno, A. C. G.
    Oliveira, I. L.
    Hauck, J. V. S.
    5TH INTERNATIONAL CONFERENCE ON MATHEMATICAL MODELING IN PHYSICAL SCIENCES (IC-MSQUARE 2016), 2016, 738