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首页> 外文期刊>Angewandte Chemie >Regulation of the Cyanobacterial Orcadian Clock by Electrochemically Controlled Extracellular Electron Transfer
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Regulation of the Cyanobacterial Orcadian Clock by Electrochemically Controlled Extracellular Electron Transfer

机译:电化学控制的细胞外电子转移对蓝藻Orcadian时钟的调节。

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摘要

There is growing awareness that circadian clocks are closely related to the intracellular redox state across a range of species. As the redox state is determined by the exchange of the redox species, electrochemically controlled extracellular electron transfer (EC-EET), a process in which intracellular electrons are exchanged with extracellular electrodes, is a promising approach for the external regulation of circadian clocks. Herein, we discuss whether the circadian clock can be regulated by EC-EET using the cyanobacterium Synechococ-cus elongatus PCC7942 as a model system. In vivo monitoring of chlorophyll fluorescence revealed that the redox state of the plastoquionone pool could be controlled with EC-EET by simply changing the electrode potential. As a result, the endogenous circadian clock of S. elongatus cells was successfully entrained through periodically modulated EC-EET by emulating the natural light/dark cycle, even under constant illumination conditions. This is the first example of regulating the biological clock by electrochemistry.
机译:人们日益意识到,昼夜节律钟与多种物种的细胞内氧化还原状态密切相关。由于氧化还原状态是​​由氧化还原物质的交换决定的,因此电化学控制的细胞外电子转移(EC-EET)是一种用于昼夜节律的外部调节的有前途的方法,其中细胞内电子与细胞外电极交换。在这里,我们讨论是否可以使用蓝细菌Synechococcus-cus elongatus PCC7942作为模型系统,通过EC-EET调节昼夜节律时钟。对叶绿素荧光的体内监测表明,通过简单地改变电极电势,EC-EET可以控制质体喹酮池的氧化还原状态。结果,即使在恒定的照明条件下,通过模拟自然光/暗周期,通过周期性调制的EC-EET也成功地诱集了S. elongatus细胞的内源性生物钟。这是通过电化学调节生物钟的第一个例子。

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