» Articles » PMID: 18088315

The Sucrose Regulated Transcription Factor BZIP11 Affects Amino Acid Metabolism by Regulating the Expression of ASPARAGINE SYNTHETASE1 and PROLINE DEHYDROGENASE2

Overview
Journal Plant J
Date 2007 Dec 20
PMID 18088315
Citations 101
Authors
Affiliations
Soon will be listed here.
Abstract

Translation of the transcription factor bZIP11 is repressed by sucrose in a process that involves a highly conserved peptide encoded by the 5' leaders of bZIP11 and other plant basic region leucine zipper (bZip) genes. It is likely that a specific signaling pathway operating at physiological sucrose concentrations controls metabolism via a feedback mechanism. In this paper bZIP11 target processes are identified using transiently increased nuclear bZIP11 levels and genome-wide expression analysis. bZIP11 affects the expression of hundreds of genes with proposed functions in biochemical pathways and signal transduction. The expression levels of approximately 80% of the genes tested are not affected by bZIP11 promoter-mediated overexpression of bZIP11. This suggests that <20% of the identified genes appear to be physiologically relevant targets of bZIP11. ASPARAGINE SYNTHETASE1 and PROLINE DEHYDROGENASE2 are among the rapidly activated bZIP11 targets, whose induction is independent of protein translation. Transient expression experiments in Arabidopsis protoplasts show that the bZIP11-dependent activation of the ASPARAGINE SYNTHETASE1 gene is dependent on a G-box element present in the promoter. Increased bZIP11 expression leads to decreased proline and increased phenylalanine levels. A model is proposed in which sugar signals control amino acid levels via the bZIP11 transcription factor.

Citing Articles

Genome-Wide Analysis of C/S1-bZIP Subfamilies in and Unraveling the Role of in Response to Low Energy.

Wu J, Zhou M, Cheng Y, Chen X, Yan S, Deng S Int J Mol Sci. 2024; 25(10).

PMID: 38791204 PMC: 11120861. DOI: 10.3390/ijms25105163.


Vineyard microclimate alterations induced by black inter-row mulch through transcriptome reshaped the flavoromics of cabernet sauvignon grapes.

Tian M, Wang Y, Gao X, Lu H, Zhang Q, Han X BMC Plant Biol. 2024; 24(1):258.

PMID: 38594637 PMC: 11003005. DOI: 10.1186/s12870-024-04986-w.


Direct and indirect responses of the Arabidopsis transcriptome to an induced increase in trehalose 6-phosphate.

Avidan O, Martins M, Feil R, Lohse M, Giorgi F, Schlereth A Plant Physiol. 2024; 196(1):409-431.

PMID: 38593032 PMC: 11376379. DOI: 10.1093/plphys/kiae196.


S basic leucine zipper transcription factors shape plant architecture by controlling C/N partitioning to apical and lateral organs.

Kreisz P, Hellens A, Froschel C, Krischke M, Maag D, Feil R Proc Natl Acad Sci U S A. 2024; 121(7):e2313343121.

PMID: 38315839 PMC: 10873608. DOI: 10.1073/pnas.2313343121.


A petunia transcription factor, , regulates flower senescence by modulating gibberellin biosynthesis.

Ji X, Xin Z, Yuan Y, Wang M, Lu X, Li J Hortic Res. 2023; 10(4):uhad022.

PMID: 37786859 PMC: 10541524. DOI: 10.1093/hr/uhad022.