» Articles » PMID: 9681009

Trehalose-6-phosphate Phosphatases from Arabidopsis Thaliana: Identification by Functional Complementation of the Yeast Tps2 Mutant

Overview
Journal Plant J
Date 1998 Jul 29
PMID 9681009
Citations 57
Authors
Affiliations
Soon will be listed here.
Abstract

It is currently thought that most flowering plants lack the capacity to synthesize trehalose, a common disaccharide of bacteria, fungi and invertebrates that appears to play a major role in desiccation tolerance. Attempts have therefore been made to render plants more drought-resistant by the expression of microbial genes for trehalose synthesis. It is demonstrated here that Arabidopsis thaliana itself possesses genes for at least one of the enzymes required for trehalose synthesis, trehalose-6-phosphate phosphatase. The yeast tps2 mutant, which lacks this enzyme, is heat-sensitive, and Arabidopsis cDNA able to complement this effect has been screened for. Half of the yeast transformants that grew at 38.6 degrees C were also able to produce trehalose. All of these expressed one of two Arabidopsis cDNA, either AtTPPA or AtTPPB, which are both homologous to the C-terminal part of the yeast TPS2 gene and other microbial trehalose-6-phosphate phosphatases. Yeast tps2 mutants expressing AtTPPA or AtTPPB contained trehalose-6-phosphate phosphatase activity that could be measured both in vivo and in vitro. The enzyme dephosphorylated trehalose-6-phosphate but not glucose-6-phosphate or sucrose-6-phosphate. Both genes are expressed in flowers and young developing tissue of Arabidopsis. The finding of these novel Arabidopsis genes for trehalose-6-phosphate phosphatase strongly indicates that a pathway for trehalose biosynthesis exists in plants.

Citing Articles

Trehalose-6-phosphate synthase gene expression analysis under abiotic and biotic stresses in bottle gourd (Lagenaria siceraria).

Wang S, Li W, Jin H Sci Rep. 2025; 15(1):7902.

PMID: 40050372 PMC: 11885663. DOI: 10.1038/s41598-025-92139-w.


Tolerance Mechanisms of Olive Tree () under Saline Conditions.

El Yamani M, Cordovilla M Plants (Basel). 2024; 13(15).

PMID: 39124213 PMC: 11314443. DOI: 10.3390/plants13152094.


Genome-Wide Identification and Analysis of Stress Response of Trehalose-6-Phosphate Synthase and Trehalose-6-Phosphate Phosphatase Genes in Quinoa.

Wang X, Wang M, Huang Y, Zhu P, Qian G, Zhang Y Int J Mol Sci. 2023; 24(8).

PMID: 37108114 PMC: 10138372. DOI: 10.3390/ijms24086950.


Combined Transcriptomic and Metabolomic Analysis Reveals Insights into Resistance of Arabidopsis Mutant against the Phytopathogenic Fungus .

Kalogeropoulou E, Aliferis K, Tjamos S, Vloutoglou I, Paplomatas E Plants (Basel). 2022; 11(24).

PMID: 36559570 PMC: 9785915. DOI: 10.3390/plants11243457.


Trehalose: a promising osmo-protectant against salinity stress-physiological and molecular mechanisms and future prospective.

Nawaz M, Hassan M, Chattha M, Mahmood A, Shah A, Hashem M Mol Biol Rep. 2022; 49(12):11255-11271.

PMID: 35802276 DOI: 10.1007/s11033-022-07681-x.