Revealing determinants of two-phase dynamics of P53 network under gamma irradiation based on a reduced 2D relaxation oscillator model

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Date

2018

Authors

Gokhan Demirkiran
Guleser Kalayci Demir
Cuneyt Guzelis

Journal Title

Journal ISSN

Volume Title

Publisher

INST ENGINEERING TECHNOLOGY-IET

Open Access Color

GOLD

Green Open Access

Yes

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No
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Abstract

This study proposes a two-dimensional (2D) oscillator model of p53 network which is derived via reducing the multidimensional two-phase dynamics model into a model of ataxia telangiectasia mutated (ATM) and Wip1 variables and studies the impact of p53-regulators on cell fate decision. First the authors identify a 6D core oscillator module then reduce this module into a 2D oscillator model while preserving the qualitative behaviours. The introduced 2D model is shown to be an excitable relaxation oscillator. This oscillator provides a mechanism that leads diverse modes underpinning cell fate each corresponding to a cell state. To investigate the effects of p53 inhibitors and the intrinsic time delay of Wip1 on the characteristics of oscillations they introduce also a delay differential equation version of the 2D oscillator. They observe that the suppression of p53 inhibitors decreases the amplitudes of p53 oscillation though the suppression increases the sustained level of p53. They identify Wip1 and P53DINP1 as possible targets for cancer therapies considering their impact on the oscillator supported by biological findings. They model some mutations as critical changes of the phase space characteristics. Possible cancer therapeutic strategies are then proposed for preventing these mutations' effects using the phase space approach.

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Keywords

physiological models, cellular biophysics, cancer, difference equations, delays, enzymes, biochemistry, molecular biophysics, gamma-rays, radiation therapy, two-phase dynamics model, P53 network, gamma irradiation, 2D relaxation oscillator model, ATM model, Wip1 variables, p53-regulators, cell fate decision, excitable relaxation oscillator, Wip1 time delay, state-dependent delay differential equation, cell cycle arrest, cell apoptosis, cancer therapies, Wip1 overexpression, Wip1 downregulation, ATM deficiency, Mdm2 overexpression, Mdm2 downregulation, mutation effects, phase space approach, WIP1 PHOSPHATASE, BREAST-CANCER, CELL-CYCLE, DOWN-REGULATION, PPM1D, ATM, AMPLIFICATION, ACTIVATION, RADIATION, APOPTOSIS, Artificial intelligence, Control (management), Ataxia Telangiectasia Mutated Proteins, Phase space, Quantum mechanics, Ataxia-telangiectasia, Neoplasms, Biochemistry, Genetics and Molecular Biology, Control theory (sociology), Genetics, Molecular Biology, Biology, Heat-Shock Proteins, Physics, Oscillation (cell signaling), Life Sciences, Cell Biology, DNA, Models, Theoretical, Regulation and Function of Microtubules in Cell Division, Computer science, Protein Phosphatase 2C, Stochasticity in Gene Regulatory Networks, Gamma Rays, Biological system, FOS: Biological sciences, Regulation of RNA Processing and Function, DNA damage, Bistability, Statistical physics, Tumor Suppressor Protein p53, Single-Cell Analysis, Carrier Proteins, Research Article

Fields of Science

0301 basic medicine, 03 medical and health sciences, 0303 health sciences

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OpenCitations Citation Count
4

Source

IET Systems Biology

Volume

12

Issue

Start Page

26

End Page

38
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CrossRef : 4

Scopus : 5

PubMed : 2

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Mendeley Readers : 17

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