Explore Rb/E2F Activation Dynamics to Define the Control Logic of Cell Cycle Entry in Single Cells

<p>Control of E2F transcription factor activity, regulated by the action of the retinoblastoma tumor suppressor, is critical for determining cell cycle entry and cell proliferation. However, an understanding of the precise determinants of this control, including the role of other cell cycle re...

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Main Author: Dong, Peng
Other Authors: Mathey-Prevot, Bernard
Published: 2015
Subjects:
Myc
Online Access:http://hdl.handle.net/10161/9875
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spelling ndltd-DUKE-oai-dukespace.lib.duke.edu-10161-98752015-05-14T03:29:33ZExplore Rb/E2F Activation Dynamics to Define the Control Logic of Cell Cycle Entry in Single CellsDong, PengCellular biologyBiomedical engineeringBiophysicsCell cycle entryG1 cyclinsModelingMycRb/E2FSingle cell analysis<p>Control of E2F transcription factor activity, regulated by the action of the retinoblastoma tumor suppressor, is critical for determining cell cycle entry and cell proliferation. However, an understanding of the precise determinants of this control, including the role of other cell cycle regulatory activities, has not been clearly defined. </p><p>Recognizing that the contributions of individual regulatory components could be masked by heterogeneity in populations of cells, we made use of an integrated system to follow E2F transcriptional dynamics at the single cell level and in real time. We measured and characterized E2F temporal dynamics in the first cell cycle where cells enter the cell cycle after a period of quiescence. Quantitative analyses revealed that crossing a threshold of amplitude of E2F transcriptional activity serves as the critical determinant of cell-cycle commitment and division. </p><p>By using a developed ordinary differential equation model for Rb/E2F network, we performed simulations and predicted that Myc and cyclin D/E activities have distinct roles in modulating E2F transcriptional dynamics. Myc is critical in modulating the amplitude whereas cyclin D/E activities have little effect on the amplitude but do contribute to the modulation of duration of E2F transcriptional activation. These predictions were validated through the analysis of E2F dynamics in single cells under the conditions that cyclin D/E or Myc activities are perturbed by small molecule inhibitors or RNA interference. </p><p>In an ongoing study, we also measured E2F dynamics in cycling cells. We provide preliminary results showing robust oscillatory E2F expression at the single-cell level that aligns with the progression of continuous cell division. The temporal characteristics of the dynamics trajectories deserve further quantitative investigations.</p><p>Taken together, our results establish a strict relationship between E2F dynamics and cell fate decision at the single-cell level, providing a refined model for understanding the control logic of cell cycle entry.</p>DissertationMathey-Prevot, BernardYou, Lingchong2015Dissertationhttp://hdl.handle.net/10161/9875
collection NDLTD
sources NDLTD
topic Cellular biology
Biomedical engineering
Biophysics
Cell cycle entry
G1 cyclins
Modeling
Myc
Rb/E2F
Single cell analysis
spellingShingle Cellular biology
Biomedical engineering
Biophysics
Cell cycle entry
G1 cyclins
Modeling
Myc
Rb/E2F
Single cell analysis
Dong, Peng
Explore Rb/E2F Activation Dynamics to Define the Control Logic of Cell Cycle Entry in Single Cells
description <p>Control of E2F transcription factor activity, regulated by the action of the retinoblastoma tumor suppressor, is critical for determining cell cycle entry and cell proliferation. However, an understanding of the precise determinants of this control, including the role of other cell cycle regulatory activities, has not been clearly defined. </p><p>Recognizing that the contributions of individual regulatory components could be masked by heterogeneity in populations of cells, we made use of an integrated system to follow E2F transcriptional dynamics at the single cell level and in real time. We measured and characterized E2F temporal dynamics in the first cell cycle where cells enter the cell cycle after a period of quiescence. Quantitative analyses revealed that crossing a threshold of amplitude of E2F transcriptional activity serves as the critical determinant of cell-cycle commitment and division. </p><p>By using a developed ordinary differential equation model for Rb/E2F network, we performed simulations and predicted that Myc and cyclin D/E activities have distinct roles in modulating E2F transcriptional dynamics. Myc is critical in modulating the amplitude whereas cyclin D/E activities have little effect on the amplitude but do contribute to the modulation of duration of E2F transcriptional activation. These predictions were validated through the analysis of E2F dynamics in single cells under the conditions that cyclin D/E or Myc activities are perturbed by small molecule inhibitors or RNA interference. </p><p>In an ongoing study, we also measured E2F dynamics in cycling cells. We provide preliminary results showing robust oscillatory E2F expression at the single-cell level that aligns with the progression of continuous cell division. The temporal characteristics of the dynamics trajectories deserve further quantitative investigations.</p><p>Taken together, our results establish a strict relationship between E2F dynamics and cell fate decision at the single-cell level, providing a refined model for understanding the control logic of cell cycle entry.</p> === Dissertation
author2 Mathey-Prevot, Bernard
author_facet Mathey-Prevot, Bernard
Dong, Peng
author Dong, Peng
author_sort Dong, Peng
title Explore Rb/E2F Activation Dynamics to Define the Control Logic of Cell Cycle Entry in Single Cells
title_short Explore Rb/E2F Activation Dynamics to Define the Control Logic of Cell Cycle Entry in Single Cells
title_full Explore Rb/E2F Activation Dynamics to Define the Control Logic of Cell Cycle Entry in Single Cells
title_fullStr Explore Rb/E2F Activation Dynamics to Define the Control Logic of Cell Cycle Entry in Single Cells
title_full_unstemmed Explore Rb/E2F Activation Dynamics to Define the Control Logic of Cell Cycle Entry in Single Cells
title_sort explore rb/e2f activation dynamics to define the control logic of cell cycle entry in single cells
publishDate 2015
url http://hdl.handle.net/10161/9875
work_keys_str_mv AT dongpeng explorerbe2factivationdynamicstodefinethecontrollogicofcellcycleentryinsinglecells
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