Glutamine Metabolism, Sensing and Signaling in Plants

Author:

Lee Kim-Teng123ORCID,Liao Hong-Sheng1ORCID,Hsieh Ming-Hsiun123ORCID

Affiliation:

1. Institute of Plant and Microbial Biology, Academia Sinica , Taipei 11529, Taiwan

2. Molecular and Biological Agricultural Sciences, The Taiwan International Graduate Program, Academia Sinica , Taipei 11529, Taiwan

3. Biotechnology Center, National Chung-Hsing University , Taichung 40227, Taiwan

Abstract

Abstract Glutamine (Gln) is the first amino acid synthesized in nitrogen (N) assimilation in plants. Gln synthetase (GS), converting glutamate (Glu) and NH4+ into Gln at the expense of ATP, is one of the oldest enzymes in all life domains. Plants have multiple GS isoenzymes that work individually or cooperatively to ensure that the Gln supply is sufficient for plant growth and development under various conditions. Gln is a building block for protein synthesis and an N-donor for the biosynthesis of amino acids, nucleic acids, amino sugars and vitamin B coenzymes. Most reactions using Gln as an N-donor are catalyzed by Gln amidotransferase (GAT) that hydrolyzes Gln to Glu and transfers the amido group of Gln to an acceptor substrate. Several GAT domain–containing proteins of unknown function in the reference plant Arabidopsis thaliana suggest that some metabolic fates of Gln have yet to be identified in plants. In addition to metabolism, Gln signaling has emerged in recent years. The N regulatory protein PII senses Gln to regulate arginine biosynthesis in plants. Gln promotes somatic embryogenesis and shoot organogenesis with unknown mechanisms. Exogenous Gln has been implicated in activating stress and defense responses in plants. Likely, Gln signaling is responsible for some of the new Gln functions in plants.

Funder

Academia Sinica

National Science and Technology Council, Taiwan

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science,Physiology,General Medicine

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