nicotianamine and 5--methylthioadenosine

nicotianamine has been researched along with 5--methylthioadenosine* in 2 studies

Other Studies

2 other study(ies) available for nicotianamine and 5--methylthioadenosine

ArticleYear
Recycling of methylthioadenosine is essential for normal vascular development and reproduction in Arabidopsis.
    Plant physiology, 2012, Volume: 158, Issue:4

    5'-Methylthioadenosine (MTA) is the common by-product of polyamine (PA), nicotianamine (NA), and ethylene biosynthesis in Arabidopsis (Arabidopsis thaliana). The methylthiol moiety of MTA is salvaged by 5'-methylthioadenosine nucleosidase (MTN) in a reaction producing methylthioribose (MTR) and adenine. The MTN double mutant, mtn1-1mtn2-1, retains approximately 14% of the MTN enzyme activity present in the wild type and displays a pleiotropic phenotype that includes altered vasculature and impaired fertility. These abnormal traits were associated with increased MTA levels, altered PA profiles, and reduced NA content. Exogenous feeding of PAs partially recovered fertility, whereas NA supplementation improved fertility and also reversed interveinal chlorosis. The analysis of PA synthase crystal structures containing bound MTA suggests that the corresponding enzyme activities are sensitive to available MTA. Mutant plants that expressed either MTN or human methylthioadenosine phosphorylase (which metabolizes MTA without producing MTR) appeared wild type, proving that the abnormal traits of the mutant are due to MTA accumulation rather than reduced MTR. Based on our results, we propose that the key targets affected by increased MTA content are thermospermine synthase activity and spermidine-dependent posttranslational modification of eukaryotic initiation factor 5A.

    Topics: Arabidopsis; Arabidopsis Proteins; Azetidinecarboxylic Acid; Biosynthetic Pathways; Deoxyadenosines; Electrophoresis, Gel, Two-Dimensional; Fertility; Gene Expression Regulation, Plant; Genetic Complementation Test; Models, Biological; Models, Molecular; Mutation; Phenotype; Plant Vascular Bundle; Pollen; Polyamines; Reproduction; RNA, Messenger; Seeds; Thioglycosides; Thionucleosides

2012
Phloem-specific expression of Yang cycle genes and identification of novel Yang cycle enzymes in Plantago and Arabidopsis.
    The Plant cell, 2011, Volume: 23, Issue:5

    The 5-methylthioadenosine (MTA) or Yang cycle is a set of reactions that recycle MTA to Met. In plants, MTA is a byproduct of polyamine, ethylene, and nicotianamine biosynthesis. Vascular transcriptome analyses revealed phloem-specific expression of the Yang cycle gene 5-METHYLTHIORIBOSE KINASE1 (MTK1) in Plantago major and Arabidopsis thaliana. As Arabidopsis has only a single MTK gene, we hypothesized that the expression of other Yang cycle genes might also be vascular specific. Reporter gene studies and quantitative analyses of mRNA levels for all Yang cycle genes confirmed this hypothesis for Arabidopsis and Plantago. This includes the Yang cycle genes 5-METHYLTHIORIBOSE-1-PHOSPHATE ISOMERASE1 and DEHYDRATASE-ENOLASE-PHOSPHATASE-COMPLEX1. We show that these two enzymes are sufficient for the conversion of methylthioribose-1-phosphate to 1,2-dihydroxy-3-keto-5-methylthiopentene. In bacteria, fungi, and animals, the same conversion is catalyzed in three to four separate enzymatic steps. Furthermore, comparative analyses of vascular and nonvascular metabolites identified Met, S-adenosyl Met, and MTA preferentially or almost exclusively in the vascular tissue. Our data represent a comprehensive characterization of the Yang cycle in higher plants and demonstrate that the Yang cycle works primarily in the vasculature. Finally, expression analyses of polyamine biosynthetic genes suggest that the Yang cycle in leaves recycles MTA derived primarily from polyamine biosynthesis.

    Topics: Aldose-Ketose Isomerases; Alkenes; Arabidopsis; Arabidopsis Proteins; Azetidinecarboxylic Acid; Deoxyadenosines; Ethylenes; Gene Expression Regulation, Plant; Genes, Reporter; Methionine; Phloem; Phosphotransferases (Alcohol Group Acceptor); Phylogeny; Plant Growth Regulators; Plant Leaves; Plant Proteins; Plant Vascular Bundle; Plantago; Polyamines; RNA, Messenger; RNA, Plant; S-Adenosylmethionine; Thionucleosides; Transcriptome; Yeasts

2011