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失调、振荡动力学与状态转换:c-Myc的作用

Disorder, oscillatory dynamics and state switching: the role of c-Myc.

作者信息

Rangarajan Nivedita, Fox Zach, Singh Abhyudai, Kulkarni Prakash, Rangarajan Govindan

机构信息

Indian Institute of Science Education and Research, Pune, India.

Biomedical Engineering, University of Delaware, Newark, DE, USA.

出版信息

J Theor Biol. 2015 Dec 7;386:105-14. doi: 10.1016/j.jtbi.2015.09.013. Epub 2015 Sep 25.

DOI:10.1016/j.jtbi.2015.09.013
PMID:26408335
Abstract

In this paper, using the intrinsically disordered oncoprotein Myc as an example, we present a mathematical model to help explain how protein oscillatory dynamics can influence state switching. Earlier studies have demonstrated that, while Myc overexpression can facilitate state switching and transform a normal cell into a cancer phenotype, its downregulation can reverse state-switching. A fundamental aspect of the model is that a Myc threshold determines cell fate in cells expressing p53. We demonstrate that a non-cooperative positive feedback loop coupled with Myc sequestration at multiple binding sites can generate bistable Myc levels. Normal quiescent cells with Myc levels below the threshold can respond to mitogenic signals to activate the cyclin/cdk oscillator for limited cell divisions but the p53/Mdm2 oscillator remains nonfunctional. In response to stress, the p53/Mdm2 oscillator is activated in pulses that are critical to DNA repair. But if stress causes Myc levels to cross the threshold, Myc inactivates the p53/Mdm2 oscillator, abrogates p53 pulses, and pushes the cyclin/cdk oscillator into overdrive sustaining unchecked proliferation seen in cancer. However, if Myc is downregulated, the cyclin/cdk oscillator is inactivated and the p53/Mdm2 oscillator is reset and the cancer phenotype is reversed.

摘要

在本文中,我们以本质无序的癌蛋白Myc为例,提出了一个数学模型,以帮助解释蛋白质振荡动力学如何影响状态转换。早期研究表明,虽然Myc过表达可促进状态转换并将正常细胞转变为癌症表型,但其下调可逆转状态转换。该模型的一个基本方面是,Myc阈值决定了表达p53的细胞的命运。我们证明,一个非协同正反馈环与Myc在多个结合位点的隔离相结合,可以产生双稳态的Myc水平。Myc水平低于阈值的正常静止细胞可以响应有丝分裂信号,激活细胞周期蛋白/细胞周期蛋白依赖性激酶(cyclin/cdk)振荡器进行有限的细胞分裂,但p53/Mdm2振荡器仍然无功能。在应激反应中,p53/Mdm2振荡器以脉冲形式被激活,这对DNA修复至关重要。但是,如果应激导致Myc水平超过阈值,Myc会使p53/Mdm2振荡器失活,消除p53脉冲,并使细胞周期蛋白/细胞周期蛋白依赖性激酶振荡器超速运转,维持癌症中所见的不受控制的增殖。然而,如果Myc被下调,细胞周期蛋白/细胞周期蛋白依赖性激酶振荡器失活,p53/Mdm2振荡器被重置,癌症表型被逆转。

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