A canonical 3-D P53 network model that determines cell fate by counting pulses
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Date
2018
Authors
Gökhan Demirkıran
Güleser Kalayci Demir
Cüneyt Güzeliş
Journal Title
Journal ISSN
Volume Title
Publisher
Istanbul University uosman@istanbul.edu.tr
Open Access Color
GOLD
Green Open Access
Yes
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OpenAIRE Views
Publicly Funded
No
Abstract
From a system theory perspective p53 network dynamics is interesting since it can exhibit three dynamical modes of p53 namely low-level equilibrium oscillation and high-level equilibrium. Each of these modes are associated with different cell fate outcomes: cell survival cell cycle arrest and apoptosis. The literature reveals that a high level (apoptosis) is seen only after ending the oscillation phase so called two-phase dynamics which provides the decision of apoptosis depending on the oscillation duration. This paper proposes that a negative feedback can keep time by counting the pulses of oscillation to take the decision of apoptosis or cell survival. P53DINP1 which is the mediator of this feedback is added as a variable to a 2-D oscillator model of the p53 network. The resulting canonical 3-D model successfully replicates the two-phase dynamics. That is it possesses temporary oscillatory behavior in which first oscillations (first phase) and then high level state (second phase) are observed. By introducing a new variable to the core oscillator in the p53 network this study demonstrates that p53 network can be considered a modular structure which consists of an oscillator and other variables that control this oscillator to contribute to cell fate determination. © 2018 Elsevier B.V. All rights reserved.
Description
Keywords
Cell Fate, Gene Regulatory Networks, Oscillators, P53 Network, P53dinp1, Two-phase Dynamics, Cell Death, Dynamics, Oscillators (electronic), Cell Fates, Cell-cycle Arrest, Gene Regulatory Networks, Modular Structures, Oscillator Model, Oscillatory Behaviors, P53dinp1, Two Phase, Feedback, Cell death, Dynamics, Oscillators (electronic), Cell fates, Cell-cycle arrest, Gene regulatory networks, Modular structures, Oscillator model, Oscillatory behaviors, P53DINP1, Two phase, Feedback, Engineering, Mühendislik, Oscillators;p53 network;two-phase dynamics;gene regulatory networks;cell fate, Oscillators;p53 network;two-phase dynamics;gene regulatory networks;cell fate;P53DINP1
Fields of Science
0301 basic medicine, 0303 health sciences, 03 medical and health sciences
Citation
WoS Q
Scopus Q

OpenCitations Citation Count
2
Source
ELECTRICA
Volume
18
Issue
Start Page
284
End Page
291
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CrossRef : 2
Scopus : 4
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