Rodríguez Sergio Gil, Crosby Priya, Hansen Louise L, Grünewald Ellen, Beale Andrew D, Spangler Rebecca K, Rabbitts Beverley M, Partch Carrie L, Stangherlin Alessandra, O'Neill John S, van Ooijen Gerben
School of Biological Sciences, University of Edinburgh, Max Born Crescent EH9 3BF Edinburgh, United Kingdom.
Department of Chemistry and Biochemistry, University of California Santa Cruz, Santa Cruz, CA, 95064, USA.
bioRxiv. 2024 Apr 3:2024.04.02.587153. doi: 10.1101/2024.04.02.587153.
Circadian (~24 h) rhythms are a fundamental feature of life, and their disruption increases the risk of infectious diseases, metabolic disorders, and cancer. Circadian rhythms couple to the cell cycle across eukaryotes but the underlying mechanism is unknown. We previously identified an evolutionarily conserved circadian oscillation in intracellular potassium concentration, [K]. As critical events in the cell cycle are regulated by intracellular potassium, an enticing hypothesis is that circadian rhythms in [K] form the basis of this coupling. We used a minimal model cell, the alga , to uncover the role of potassium in linking these two cycles. We found direct reciprocal feedback between [K] and circadian gene expression. Inhibition of proliferation by manipulating potassium rhythms was dependent on the phase of the circadian cycle. Furthermore, we observed a total inhibition of cell proliferation when circadian gene expression is inhibited. Strikingly, under these conditions a sudden enforced gradient of extracellular potassium was sufficient to induce a round of cell division. Finally, we provide evidence that interactions between potassium and circadian rhythms also influence proliferation in mammalian cells. These results establish circadian regulation of intracellular potassium levels as a primary factor coupling the cell- and circadian cycles across diverse organisms.
昼夜节律(约24小时)是生命的基本特征,其紊乱会增加感染性疾病、代谢紊乱和癌症的风险。昼夜节律在整个真核生物中与细胞周期相关联,但其潜在机制尚不清楚。我们之前在细胞内钾离子浓度[K]中发现了一种进化上保守的昼夜节律振荡。由于细胞周期中的关键事件受细胞内钾离子调控,一个诱人的假说是,[K]中的昼夜节律构成了这种关联的基础。我们使用了一种简单的模型细胞——藻类,来揭示钾离子在连接这两个周期中的作用。我们发现了[K]与昼夜节律基因表达之间直接的相互反馈。通过操纵钾离子节律抑制增殖取决于昼夜周期的阶段。此外,当昼夜节律基因表达受到抑制时,我们观察到细胞增殖完全受到抑制。引人注目的是,在这些条件下,细胞外钾离子的突然强制梯度足以诱导一轮细胞分裂。最后,我们提供证据表明钾离子与昼夜节律之间的相互作用也会影响哺乳动物细胞的增殖。这些结果表明,细胞内钾离子水平的昼夜节律调节是跨多种生物体连接细胞周期和昼夜周期的主要因素。