4.6 Article

The sugar-responsive circadian clock regulator bZIP63 modulates plant growth

Journal

NEW PHYTOLOGIST
Volume 231, Issue 5, Pages 1875-1889

Publisher

WILEY
DOI: 10.1111/nph.17518

Keywords

Arabidopsis; bZIP63; circadian clock; growth; low energy stress; starch

Categories

Funding

  1. Sao Paulo Research Foundation (FAPESP) [2008/52071-0, 2012/09351-8, 2014/04117-2, 2015/06260-0, 2018/25710-4, 2019/25993-9]
  2. Conselho Nacional de Desenvolvimento Cientifico e Tecnologico (CNPq) [313104/2017-4, 405520/2016-6]

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Mutations in the bZIP63 gene have a significant impact on plant carbon metabolism and growth, impairing growth under light-dark cycles by accelerating starch degradation and depletion of carbon towards the end of the night. The diel expression pattern of bZIP63 is regulated by both the circadian clock and energy levels, affecting the expression of clock and starch metabolic genes in bZIP63 mutants.
Adjustment to energy starvation is crucial to ensure growth and survival. In Arabidopsis thaliana (Arabidopsis), this process relies in part on the phosphorylation of the circadian clock regulator bZIP63 by SUCROSE non-fermenting RELATED KINASE1 (SnRK1), a key mediator of responses to low energy. We investigated the effects of mutations in bZIP63 on plant carbon (C) metabolism and growth. Results from phenotypic, transcriptomic and metabolomic analysis of bZIP63 mutants prompted us to investigate the starch accumulation pattern and the expression of genes involved in starch degradation and in the circadian oscillator. bZIP63 mutation impairs growth under light-dark cycles, but not under constant light. The reduced growth likely results from the accentuated C depletion towards the end of the night, which is caused by the accelerated starch degradation of bZIP63 mutants. The diel expression pattern of bZIP63 is dictated by both the circadian clock and energy levels, which could determine the changes in the circadian expression of clock and starch metabolic genes observed in bZIP63 mutants. We conclude that bZIP63 composes a regulatory interface between the metabolic and circadian control of starch breakdown to optimize C usage and plant growth.

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