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Frequency Doubling in the Cyanobacterial Circadian Clock

Overview
Journal Mol Syst Biol
Specialty Molecular Biology
Date 2016 Dec 24
PMID 28007935
Citations 14
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Abstract

Organisms use circadian clocks to generate 24-h rhythms in gene expression. However, the clock can interact with other pathways to generate shorter period oscillations. It remains unclear how these different frequencies are generated. Here, we examine this problem by studying the coupling of the clock to the alternative sigma factor sigC in the cyanobacterium Synechococcus elongatus Using single-cell microscopy, we find that psbAI, a key photosynthesis gene regulated by both sigC and the clock, is activated with two peaks of gene expression every circadian cycle under constant low light. This two-peak oscillation is dependent on sigC, without which psbAI rhythms revert to one oscillatory peak per day. We also observe two circadian peaks of elongation rate, which are dependent on sigC, suggesting a role for the frequency doubling in modulating growth. We propose that the two-peak rhythm in psbAI expression is generated by an incoherent feedforward loop between the clock, sigC and psbAI Modelling and experiments suggest that this could be a general network motif to allow frequency doubling of outputs.

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References
1.
Ditty J, Canales S, Anderson B, Williams S, Golden S . Stability of the Synechococcus elongatus PCC 7942 circadian clock under directed anti-phase expression of the kai genes. Microbiology (Reading). 2005; 151(Pt 8):2605-2613. DOI: 10.1099/mic.0.28030-0. View

2.
Clerico E, Cassone V, Golden S . Stability and lability of circadian period of gene expression in the cyanobacterium Synechococcus elongatus. Microbiology (Reading). 2009; 155(Pt 2):635-641. PMC: 2729554. DOI: 10.1099/mic.0.022343-0. View

3.
Cretenet G, Le Clech M, Gachon F . Circadian clock-coordinated 12 Hr period rhythmic activation of the IRE1alpha pathway controls lipid metabolism in mouse liver. Cell Metab. 2010; 11(1):47-57. DOI: 10.1016/j.cmet.2009.11.002. View

4.
McClung C . Plant circadian rhythms. Plant Cell. 2006; 18(4):792-803. PMC: 1425852. DOI: 10.1105/tpc.106.040980. View

5.
Martins B, Locke J . Microbial individuality: how single-cell heterogeneity enables population level strategies. Curr Opin Microbiol. 2015; 24:104-12. DOI: 10.1016/j.mib.2015.01.003. View