Physics Department - E14, Technical University Munich, D-85748, Garching, Germany.
Nat Commun. 2022 May 23;13(1):2852. doi: 10.1038/s41467-022-30478-2.
Complex dynamics such as period doubling and chaos occur in a wide variety of non-linear dynamical systems. In the context of biological circadian clocks, such phenomena have been previously found in computational models, but their experimental study in biological systems has been challenging. Here, we present experimental evidence of period doubling in a forced cell-free genetic oscillator operated in a microfluidic reactor, where the system is periodically perturbed by modulating the concentration of one of the oscillator components. When the external driving matches the intrinsic period, we experimentally find period doubling and quadrupling in the oscillator dynamics. Our results closely match the predictions of a theoretical model, which also suggests conditions under which our system would display chaotic dynamics. We show that detuning of the external and intrinsic period leads to more stable entrainment, suggesting a simple design principle for synchronized synthetic and natural genetic clocks.
复杂动态,如倍周期和混沌,出现在各种各样的非线性动力系统中。在生物昼夜节律钟的背景下,这些现象以前在计算模型中被发现,但在生物系统中对其进行实验研究具有挑战性。在这里,我们在一个微流控反应器中运行的无细胞遗传振荡器中提供了实验证据,其中通过调制振荡器组件之一的浓度周期性地扰动系统。当外部驱动与固有周期匹配时,我们在振荡器动力学中实验性地发现了倍周期和四倍周期。我们的结果与理论模型的预测非常吻合,该模型还表明了系统将显示混沌动力学的条件。我们表明,外部和固有周期的失谐会导致更稳定的同步,这为同步合成和自然遗传钟提供了一个简单的设计原则。