4.4 Article

Effect of thermospermine on expression profiling of different gene using massive analysis of cDNA ends (MACE) and vascular maintenance in Arabidopsis

期刊

PHYSIOLOGY AND MOLECULAR BIOLOGY OF PLANTS
卷 27, 期 3, 页码 577-586

出版社

SPRINGER
DOI: 10.1007/s12298-021-00967-7

关键词

Polyamine; Polyamine oxidase; Thermospermine; MACE; Gene expression

资金

  1. Ministry of Education, Culture, Sports, Science and Technology of Japan (MEXT) [26.04081, 15K14705]
  2. Bangladesh Agricultural University Research System (BAURES) [2017/262/BAU]
  3. Grants-in-Aid for Scientific Research [15K14705] Funding Source: KAKEN

向作者/读者索取更多资源

Knocking out the Arabidopsis thaliana polyamine oxidase 5 gene (AtPAO5) leads to sensitivity to low doses of thermospermine, affecting pathways such as cell wall, lipid, and secondary metabolism. The study found that thermospermine flux is crucial for gene network regulation and vascular system maintenance.
Arabidopsis thaliana polyamine oxidase 5 gene (AtPAO5) functions as a thermospermine (T-Spm) oxidase. Aerial growth of its knock-out mutant (Atpao5-2) was significantly repressed by low dose(s) of T-Spm but not by other polyamines. To figure out the underlying mechanism, massive analysis of 3 '-cDNA ends was performed. Low dose of T-Spm treatment modulates more than two fold expression 1,398 genes in WT compared to 3186 genes in Atpao5-2. Cell wall, lipid and secondary metabolisms were dramatically affected in low dose T-Spm-treated Atpao5-2, in comparison to other pathways such as TCA cycle-, amino acid- metabolisms and photosynthesis. The cell wall pectin metabolism, cell wall proteins and degradation process were highly modulated. Intriguingly Fe-deficiency responsive genes and drought stress-induced genes were also up-regulated, suggesting the importance of thermospermi ' ne flux on regulation of gene network. Histological observation showed that the vascular system of the joint part between stem and leaves was structurally dissociated, indicating its involvement in vascular maintenance. Endogenous increase in T-Spm and reduction in H2O2 contents were found in mutant grown in T-Spm containing media. The results indicate that T-Spm homeostasis by a fine tuned balance of its synthesis and catabolism is important for maintaining gene regulation network and the vascular system in plants.

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