1,898
Views
1
CrossRef citations to date
0
Altmetric
Research Paper

Illumination of cell cycle progression by multi-fluorescent sensing system

, , , , , , ORCID Icon, , ORCID Icon & ORCID Icon show all
Pages 1364-1378 | Received 12 Mar 2018, Accepted 08 May 2019, Published online: 26 May 2019

References

  • Orlando DA, Lin CY, Bernard A, et al. Global control of cell-cycle transcription by coupled CDK and network oscillators. Nature. 2008;453:944–947.
  • Nurse P. A long twentieth century of the cell cycle and beyond. Cell. 2000;100:71–78.
  • Reis T, Edgar BA. Negative regulation of dE2F1 by cyclin-dependent kinases controls cell cycle timing. Cell. 2004;117:253–264.
  • Sakaue-Sawano A, Kurokawa H, Morimura T, et al. Visualizing spatiotemporal dynamics of multicellular cell-cycle progression. Cell. 2008;132:487–498.
  • Chittajallu DR, Florian S, Kohler RH, et al. In vivo cell-cycle profiling in xenograft tumors by quantitative intravital microscopy. Nat Methods. 2015;12:577-+.
  • Gut G, Tadmor MD, Pe’er D, et al. Trajectories of cell-cycle progression from fixed cell populations. Nat Methods. 2015;12:951–954.
  • Bajar BT, Lam AJ, Badiee RK, et al. Fluorescent indicators for simultaneous reporting of all four cell cycle phases. Nat Methods. 2016;13:993-+.
  • Rodriguez EA, Tran GN, Gross LA, et al. A far-red fluorescent protein evolved from a cyanobacterial phycobiliprotein. Nat Methods. 2016;13:763–769.
  • Swaffer MP, Jones AW, Flynn HR, et al. CDK substrate phosphorylation and ordering the cell cycle. Cell. 2016;167:1750–61 e16.
  • Bassermann F, Frescas D, Guardavaccaro D, et al. The Cdc14B-Cdh1-Plk1 axis controls the G2 DNA-damage-response checkpoint. Cell. 2008;134:256–267.
  • Ruijtenberg S, van Den Heuvel S. G1/S inhibitors and the SWI/SNF complex control cell-cycle exit during muscle differentiation. Cell. 2015;162:300–313.
  • Barik D, Baumann WT, Paul MR, et al. A model of yeast cell-cycle regulation based on multisite phosphorylation. Mol Syst Biol. 2010;6:405.
  • Li L, Zou L. Sensing, signaling, and responding to DNA damage: organization of the checkpoint pathways in mammalian cells. J Cell Biochem. 2005;94:298–306.
  • Holsberger DR, Cooke PS. Understanding the role of thyroid hormone in Sertoli cell development: a mechanistic hypothesis. Cell Tissue Res. 2005;322:133–140.
  • Cuddihy AR, O’Connell MJ. Cell-cycle responses to DNA damage in G2. Int Rev Cytol. 2003;222:99–140.
  • Helmke KJ, Heald R, Wilbur JD. Interplay between spindle architecture and function. Int Rev Cel Mol Bio. 2013;306:83–125.
  • Rahman MM, Kipreos ET. The specific roles of mitotic cyclins revealed. Cell Cycle. 2010;9:22–23.
  • Toyoshima-Morimoto F, Taniguchi E, Shinya N, et al. Polo-like kinase 1 phosphorylates cyclin B1 and targets it to the nucleus during prophase. Nature. 2001;410:215–220.
  • Chang DC, Xu N, Luo KQ. Degradation of cyclin B is required for the onset of anaphase in Mammalian cells. J Biol Chem. 2003;278:37865–37873.
  • Lin H, Liu XY, Subramanian B, et al. Mitotic arrest induced by XK469, a novel antitumor agent, is correlated with the inhibition of cyclin B1 ubiquitination. Int J Cancer. 2002;97:121–128.
  • Martins PAD. Mononuclear diploidy at the heart of cardiomyocyte proliferation. Cell Stem Cell. 2017;21:421–422.
  • Turan S, Galla M, Ernst E, et al. Recombinase-mediated cassette exchange (RMCE): traditional concepts and current challenges. J Mol Biol. 2011;407:193–221.
  • Nowak SJ, Corces VG. Phosphorylation of histone H3: a balancing act between chromosome condensation and transcriptional activation. Trends Genet. 2004;20:214–220.
  • Klochendler A, Weinberg-Corem N, Moran M, et al. A transgenic mouse marking live replicating cells reveals in vivo transcriptional program of proliferation. Dev Cell. 2012;23:681–690.
  • Easwaran HP, Leonhardt H, Cardoso MC. Cell cycle markers for live cell analyses. Cell Cycle. 2005;4:453–455.
  • Leonhardt H, Rahn HP, Weinzierl P, et al. Dynamics of DNA replication factories in living cells. J Cell Biol. 2000;149:271–280.
  • Kisielewska J, Lu P, Whitaker M. GFP-PCNA as an S-phase marker in embryos during the first and subsequent cell cycles. Biol Cell. 2005;97:221–229.
  • Andaloussi SEL, Mager I, Breakefield XO, et al. Extracellular vesicles: biology and emerging therapeutic opportunities. Nat Rev Drug Discov. 2013;12:347–357.
  • Foglia MJ, Poss KD. Building and re-building the heart by cardiomyocyte proliferation. Development. 2016;143:729–740.
  • Magadum A, Ding YS, He L, et al. Live cell screening platform identifies PPAR delta as a regulator of cardiomyocyte proliferation and cardiac repair. Cell Res. 2017;27:1002–1019.
  • Liu Z, Yue S, Chen X, et al. Regulation of cardiomyocyte polyploidy and multinucleation by CyclinG1. Circ Res. 2010;106:1498–1506.
  • Zippel N, Schulze M, Tobiasch E. Biomaterials and mesenchymal stem cells for regenerative medicine. Recent Pat Biotechnol. 2010;4:1–22.
  • Luch A. Cell cycle control and cell division: implications for chemically induced carcinogenesis. Chembiochem. 2002;3:506–516.
  • Thomas N. Lighting the circle of life: fluorescent sensors for covert surveillance of the cell cycle. Cell Cycle. 2003;2:545–549.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.