Gupta Ankit, Hepp Benjamin, Khammash Mustafa
Department of Biosystems Science and Engineering (D-BSSE), ETH-Zürich, Mattenstrasse 26, 4058 Basel, Switzerland.
Department of Biosystems Science and Engineering (D-BSSE), ETH-Zürich, Mattenstrasse 26, 4058 Basel, Switzerland.
Cell Syst. 2016 Dec 21;3(6):521-531.e13. doi: 10.1016/j.cels.2016.10.006. Epub 2016 Nov 3.
Intracellular oscillators entrain to periodic signals by adjusting their phase and frequency. However, the low copy numbers of key molecular players make the dynamics of these oscillators intrinsically noisy, disrupting their oscillatory activity and entrainment response. Here, we use a combination of computational methods and experimental observations to reveal a functional distinction between the entrainment of individual oscillators (e.g., inside cells) and the entrainment of populations of oscillators (e.g., across tissues). We demonstrate that, in the presence of intracellular noise, weak periodic cues robustly entrain the population averaged response, even while individual oscillators remain un-entrained. We mathematically elucidate this phenomenon, which we call stochastic population entrainment, and show that it naturally arises due to interactions between intrinsic noise and nonlinear oscillatory dynamics. Our findings suggest that robust tissue-level oscillations can be achieved by a simple mechanism that utilizes intrinsic biochemical noise, even in the absence of biochemical couplings between cells.
细胞内振荡器通过调整其相位和频率来与周期性信号同步。然而,关键分子参与者的低拷贝数使得这些振荡器的动力学本质上具有噪声,扰乱了它们的振荡活动和同步响应。在这里,我们结合计算方法和实验观察,揭示了单个振荡器(例如在细胞内)的同步与振荡器群体(例如跨组织)的同步之间的功能差异。我们证明,在存在细胞内噪声的情况下,微弱的周期性线索能稳健地使群体平均响应同步,即使单个振荡器仍未同步。我们从数学上阐明了这种我们称为随机群体同步的现象,并表明它是由于内在噪声和非线性振荡动力学之间的相互作用自然产生的。我们的研究结果表明,即使在细胞之间不存在生化耦合的情况下,利用内在生化噪声的简单机制也能实现稳健的组织水平振荡。