Stratingh Institute for Chemistry, University of Groningen, Groningen, the Netherlands.
Institute for Molecules and Materials, Radboud University, Nijmegen, the Netherlands.
Nature. 2023 Sep;621(7977):87-93. doi: 10.1038/s41586-023-06310-2. Epub 2023 Sep 6.
Oscillatory systems regulate many biological processes, including key cellular functions such as metabolism and cell division, as well as larger-scale processes such as circadian rhythm and heartbeat. Abiotic chemical oscillations, discovered originally in inorganic systems, inspired the development of various synthetic oscillators for application as autonomous time-keeping systems in analytical chemistry, materials chemistry and the biomedical field. Expanding their role beyond that of a pacemaker by having synthetic chemical oscillators periodically drive a secondary function would turn them into significantly more powerful tools. However, this is not trivial because the participation of components of the oscillator in the secondary function might jeopardize its time-keeping ability. We now report a small molecule oscillator that can catalyse an independent chemical reaction in situ without impairing its oscillating properties. In a flow system, the concentration of the catalytically active product of the oscillator shows sustained oscillations and the catalysed reaction is accelerated only during concentration peaks. Augmentation of synthetic oscillators with periodic catalytic action allows the construction of complex systems that, in the future, may benefit applications in automated synthesis, systems and polymerization chemistry and periodic drug delivery.
振荡系统调节许多生物过程,包括新陈代谢和细胞分裂等关键细胞功能,以及昼夜节律和心跳等更大规模的过程。最初在无机系统中发现的非生物化学振荡,激发了各种合成振荡器的发展,可作为分析化学、材料化学和生物医学领域的自主计时系统。通过使合成化学振荡器周期性地驱动次要功能,将它们的作用从仅仅作为起搏器扩展,这将使它们成为更强大的工具。然而,这并不简单,因为振荡器的组件参与到次要功能中可能会危及它的计时能力。我们现在报告了一种小分子振荡器,它可以在不损害其振荡特性的情况下原位催化独立的化学反应。在流动系统中,振荡器的催化活性产物的浓度显示出持续的振荡,并且只有在浓度峰值期间才加速催化反应。通过周期性催化作用增强合成振荡器,使得构建复杂系统成为可能,未来可能会受益于自动化合成、聚合化学和周期性药物输送等应用。