The endogenous redox rhythm is controlled by a central circadian oscillator in cyanobacterium Synechococcus elongatus PCC7942

被引:0
作者
Kenya Tanaka
Masahito Ishikawa
Masahiro Kaneko
Kazuhide Kamiya
Souichiro Kato
Shuji Nakanishi
机构
[1] Osaka University,Graduate School of Engineering Science
[2] Osaka University,Research Center for Solar Energy Chemistry
[3] Nagoya University,Department of Biomolecular Engineering, Graduate School of Engineering
[4] The University of Tokyo,Graduate School of Engineering
[5] National Institute of Advanced Industrial Science and Technology (AIST),Bioproduction Research Institute
来源
Photosynthesis Research | 2019年 / 142卷
关键词
Circadian clock; Intracellular redox; Cyanobacteria; Electrochemistry; Photosynthesis;
D O I
暂无
中图分类号
学科分类号
摘要
The intracellular redox and the circadian clock in photosynthetic organisms are two major regulators globally affecting various biological functions. Both of the global control systems have evolved as systems to adapt to regularly or irregularly changing light environments. Here, we report that the two global regulators mutually interact in cyanobacterium Synechococcus elongatus PCC7942, a model photosynthetic organism whose clock molecular mechanism is well known. Electrochemical assay using a transmembrane electron mediator revealed that intracellular redox of S. elongatus PCC7942 cell exhibited circadian rhythms under constant light conditions. The redox rhythm disappeared when transcription/translation of clock genes is defunctionalized, indicating that the transcription/translation controlled by a core KaiABC oscillator generates the circadian redox rhythm. Importantly, the amplitude of the redox rhythm at a constant light condition was large enough to affect the KaiABC oscillator. The findings indicated that the intracellular redox state is actively controlled to change in a 24-h cycle under constant light conditions by the circadian clock system.
引用
收藏
页码:203 / 210
页数:7
相关论文
共 164 条
  • [1] Borisova-Mubarakshina MM(2019)Antioxidant and signaling functions of the plastoquinone pool in higher plants Physiol Plant 166 181-198
  • [2] Vetoshkina DV(2014)The circadian regulation of photosynthesis Photosynth Res 119 181-190
  • [3] Ivanov BN(2012)Peroxiredoxins are conserved markers of circadian rhythms Nature 485 459-464
  • [4] Dodd AN(2009)Redox regulation in photosynthetic organisms: signaling, adaptation, and practical implications Antioxid Redox Signal 11 861-905
  • [5] Kusakina J(2013)Two antagonistic clock-regulated histidine kinases time the activation of circadian gene expression Mol Cell 50 288-294
  • [6] Hall A(1998)Expression of a gene cluster Science 281 1519-1523
  • [7] Gould PD(2009) as a circadian feedback process in Cyanobacteria Proc Natl Acad Sci USA 106 14168-14173
  • [8] Hanaoka M(2005)Cyanobacterial daily life with Kai-based circadian and diurnal genome-wide transcriptional control in EMBO J 24 1202-1210
  • [9] Edgar RS(2006)LdpA: a component of the circadian clock senses redox state of the cell Proc Natl Acad Sci USA 103 17468-17473
  • [10] Foyer CH(2000)Quinone sensing by the circadian input kinase of the cyanobacterial circadian clock Cell 101 223-233