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Inhibition of TOR Represses Nutrient Consumption, Which Improves Greening after Extended Periods of Etiolation
Author(s) -
Yi Zhang,
Youjun Zhang,
Heather E. McFarlane,
Toshihiro Obata,
Andreas S. Richter,
Mark Lohse,
Bernhard Grimm,
Staffan Persson,
Alisdair R. Fernie,
Patrick Giavalisco
Publication year - 2018
Publication title -
plant physiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.554
H-Index - 312
eISSN - 1532-2548
pISSN - 0032-0889
DOI - 10.1104/pp.18.00684
Subject(s) - etiolation , gibberellin , greening , protochlorophyllide , chlorophyll , biology , arabidopsis , phytochrome , arabidopsis thaliana , photosynthesis , tetrapyrrole , biochemistry , botany , chloroplast , microbiology and biotechnology , mutant , enzyme , gene , ecology , red light
Upon illumination, etiolated seedlings experience a transition from heterotrophic to photoautotrophic growth. During this process, the tetrapyrrole biosynthesis pathway provides chlorophyll for photosynthesis. This pathway has to be tightly controlled to prevent the accumulation of photoreactive metabolites and to provide stoichiometric amounts of chlorophyll for its incorporation into photosynthetic protein complexes. Therefore, plants have evolved regulatory mechanisms to synchronize the biosynthesis of chlorophyll and chlorophyll-binding proteins. Two phytochrome-interacting factors (PIF1 and PIF3) and the DELLA proteins, which are controlled by the gibberellin pathway, are key regulators of this process. Here, we show that impairment of TARGET OF RAPAMYCIN (TOR) activity in Arabidopsis ( Arabidopsis thaliana ), either by mutation of the TOR complex component RAPTOR1B or by treatment with TOR inhibitors, leads to a significantly reduced accumulation of the photoreactive chlorophyll precursor protochlorophyllide in darkness but an increased greening rate of etiolated seedlings after exposure to light. Detailed profiling of metabolic, transcriptomic, and physiological parameters revealed that the TOR-repressed lines not only grow slower, they grow in a nutrient-saving mode, which allows them to resist longer periods of low nutrient availability. Our results also indicated that RAPTOR1B acts upstream of the gibberellin-DELLA pathway and its mutation complements the repressed greening phenotype of pif1 and pif3 after etiolation.

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