Federal Research Center Institute of Cytology and Genetics SB RAS, Novosibirsk, Russia.
Novosibirsk State University, Novosibirsk, Russia.
PLoS One. 2018 Mar 29;13(3):e0194464. doi: 10.1371/journal.pone.0194464. eCollection 2018.
Multiple experimental data demonstrated that the core gene network orchestrating self-renewal and differentiation of mouse embryonic stem cells involves activity of Oct4, Sox2 and Nanog genes by means of a number of positive feedback loops among them. However, recent studies indicated that the architecture of the core gene network should also incorporate negative Nanog autoregulation and might not include positive feedbacks from Nanog to Oct4 and Sox2. Thorough parametric analysis of the mathematical model based on this revisited core regulatory circuit identified that there are substantial changes in model dynamics occurred depending on the strength of Oct4 and Sox2 activation and molecular complexity of Nanog autorepression. The analysis showed the existence of four dynamical domains with different numbers of stable and unstable steady states. We hypothesize that these domains can constitute the checkpoints in a developmental progression from naïve to primed pluripotency and vice versa. During this transition, parametric conditions exist, which generate an oscillatory behavior of the system explaining heterogeneity in expression of pluripotent and differentiation factors in serum ESC cultures. Eventually, simulations showed that addition of positive feedbacks from Nanog to Oct4 and Sox2 leads mainly to increase of the parametric space for the naïve ESC state, in which pluripotency factors are strongly expressed while differentiation ones are repressed.
多项实验数据表明,调控小鼠胚胎干细胞自我更新和分化的核心基因网络的核心,涉及 Oct4、Sox2 和 Nanog 基因的活性,它们之间存在着许多正反馈回路。然而,最近的研究表明,核心基因网络的结构还应该包括负向的 Nanog 自身调控,并且可能不包括 Nanog 对 Oct4 和 Sox2 的正反馈。基于这个重新审视的核心调控回路的数学模型的详细参数分析表明,模型动力学发生了实质性的变化,这取决于 Oct4 和 Sox2 的激活强度以及 Nanog 自身抑制的分子复杂性。该分析表明存在四个动态域,具有不同数量的稳定和不稳定的稳定状态。我们假设这些域可以构成从原始到初始多能性以及反之的发育进展中的检查点。在此转变过程中,存在参数条件,产生系统的振荡行为,解释血清 ESC 培养物中多能性和分化因子表达的异质性。最终,模拟表明,从 Nanog 到 Oct4 和 Sox2 的正反馈的添加主要导致原始 ESC 状态的参数空间增加,其中多能性因子强烈表达,而分化因子受到抑制。