4.7 Article

Different response modes and cooperation modulations of blue-light receptors in photomorphogenesis

Journal

PLANT CELL AND ENVIRONMENT
Volume 44, Issue 6, Pages 1802-1815

Publisher

WILEY
DOI: 10.1111/pce.14038

Keywords

blue light intensities; comodulation mechanism; cryptochromes; mathematical modelling; phosphorylation response; photomorphogenesis

Categories

Funding

  1. 111 Project [B16029]
  2. China Postdoctoral Science Foundation [2016M602071]
  3. National Natural Science Foundation of China [11704318, 11874310, 12090052]

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Cryptochromes photoreceptors CRY1 and CRY2 play important roles in mediating blue light responses in plants and metazoa. The study reveals that BIC negatively modulates CRY2 phosphorylation, while COP1-SPA can strongly inhibit the phosphorylation response of CRY2 and positively regulate CRY2 phosphorylation by CRY1. The model predicts that the CRY1-HY5 axis, rather than the CRY2-HY5 pathway, dominates in blue-light-dependent photomorphogenesis.
Cryptochromes photoreceptors, CRY1 and CRY2 in Arabidopsis, mediate blue light responses in plants and metazoa. The signalling interactions underlying photomorphogenesis of cryptochromes action have been extensively studied in experiment, expecting a systematical analysis of the dynamic mechanisms of photosensory signalling network from a global view. In this study, we developed a signalling network model to quantitatively investigate the different response modes and cooperation modulations on photomorphogenesis for CRY1 and CRY2 under blue light. The model shows that the different modes of time-dependent and fluence-rate-dependent phosphorylations for CRY1 and CRY2 are originated from their different phosphorylation rates and degradation rates. Our study indicates that, due to the strong association between blue-light inhibitor of cryptochromes (BIC) and CRY2, BIC negatively modulates CRY2 phosphorylation, which was confirmed by our experiment. The experiment also validated the model prediction that the time-dependent BIC-CRY1 and the fluence-rate-dependent BIC-CRY2 are both bell-shaped under blue light. Importantly, the model proposes that the COP1-SPA abundance can strongly inhibit the phosphorylation response of CRY2, resulting in the positive regulation of CRY2 phosphorylation by CRY1 through COP1-SPA. The model also predicts that the CRY1-HY5 axis, rather than CRY2-HY5 pathway, plays a dominant role in blue-light-dependent photomorphogenesis.

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