School of Biological Sciences, University of Edinburgh, Max Born Crescent, Edinburgh EH9 3BF, UK.
Helmholtz German Research Centre for Geosciences, Telegrafenberg, 14473 Potsdam, Germany.
Int J Mol Sci. 2023 Jan 23;24(3):2273. doi: 10.3390/ijms24032273.
Biological rhythms are ubiquitous across organisms and coordinate key cellular processes. Oscillations of Mg levels in cells are now well-established, and due to the critical roles of Mg in cell metabolism, they are potentially fundamental for the circadian control of cellular activity. The identity of the transport proteins responsible for sustaining Mg levels in eukaryotic cells remains hotly debated, and several are restricted to specific groups of higher eukaryotes. Here, using the eukaryotic minimal model cells of , we report two homologs of common descents of the Cyclin M (CNNM)/CorC protein family. Overexpression of these proteins leads to a reduction in the overall magnesium content of cells and a lengthening of the period of circadian gene expression rhythms. However, we observed a paradoxical increase in the magnesium content of the organelle fraction. The chemical inhibition of Mg transport has a synergistic effect on circadian period lengthening upon the overexpression of one CNNM homolog, but not the other. Finally, both homologs rescue the deleterious effect of low extracellular magnesium on cell proliferation rates. Overall, we identified two CNNM proteins that directly affect Mg homeostasis and cellular rhythms.
生物节律在生物体中无处不在,协调着关键的细胞过程。细胞中镁水平的波动现在已经得到充分证实,由于镁在细胞代谢中的关键作用,它们可能是细胞活动昼夜节律控制的基础。负责维持真核细胞镁水平的转运蛋白的身份仍存在激烈争议,其中一些蛋白仅限于特定的高等真核生物群体。在这里,我们使用 的真核最小模型细胞,报告了两个共同的 Cyclin M (CNNM)/CorC 蛋白家族同源物。这些蛋白的过表达导致细胞整体镁含量减少和昼夜节律基因表达节律的周期延长。然而,我们观察到细胞器部分的镁含量出现了矛盾性的增加。化学抑制镁转运在过表达一种 CNNM 同源物时对昼夜节律周期延长具有协同作用,但在另一种情况下则没有。最后,两种同源物都能挽救低细胞外镁对细胞增殖率的有害影响。总的来说,我们鉴定出两种直接影响镁稳态和细胞节律的 CNNM 蛋白。