Mitra Mithun K, Taylor Paul R, Hutchison Chris J, McLeish T C B, Chakrabarti Buddhapriya
Department of Physics, I.I.T. Bombay, Mumbai 400076, India.
Systems Biology Doctoral Training Centre, University of Oxford, Oxford OX1 3QU, UK.
J R Soc Interface. 2014 Nov 6;11(100):20140706. doi: 10.1098/rsif.2014.0706.
The epigenetic pathway of a cell as it differentiates from a stem cell state to a mature lineage-committed one has been historically understood in terms of Waddington's landscape, consisting of hills and valleys. The smooth top and valley-strewn bottom of the hill represent their undifferentiated and differentiated states, respectively. Although mathematical ideas rooted in nonlinear dynamics and bifurcation theory have been used to quantify this picture, the importance of time delays arising from multistep chemical reactions or cellular shape transformations have been ignored so far. We argue that this feature is crucial in understanding cell differentiation and explore the role of time delay in a model of a single-gene regulatory circuit. We show that the interplay of time-dependent drive and delay introduces a new regime where the system shows sustained oscillations between the two admissible steady states. We interpret these results in the light of recent perplexing experiments on inducing the pluripotent state in mouse somatic cells. We also comment on how such an oscillatory state can provide a framework for understanding more general feedback circuits in cell development.
细胞从干细胞状态分化为成熟的谱系定向状态的表观遗传途径,历史上一直是根据沃丁顿的景观来理解的,该景观由山丘和山谷组成。山丘平滑的顶部和布满山谷的底部分别代表它们的未分化状态和分化状态。尽管源于非线性动力学和分岔理论的数学思想已被用于量化这一图景,但到目前为止,多步化学反应或细胞形状转变产生的时间延迟的重要性一直被忽视。我们认为这一特征对于理解细胞分化至关重要,并在单基因调控回路模型中探讨了时间延迟的作用。我们表明,时间依赖性驱动和延迟的相互作用引入了一种新的状态,在这种状态下,系统在两个允许的稳态之间呈现持续振荡。我们根据最近在小鼠体细胞中诱导多能状态的令人困惑的实验来解释这些结果。我们还评论了这种振荡状态如何能为理解细胞发育中更一般的反馈回路提供一个框架。