» Articles » PMID: 30185870

Metabolome and Molecular Basis for Carbohydrate Increase and Nitrate Reduction in Burley Tobacco Seedlings by Glycerol Through Upregulating Carbon and Nitrogen Metabolism

Overview
Journal Sci Rep
Specialty Science
Date 2018 Sep 7
PMID 30185870
Citations 8
Authors
Affiliations
Soon will be listed here.
Abstract

Burley tobacco (Nicotiana Tabacum) is a chlorophyll-deficiency mutant. Nitrate is one precursor of tobacco-specific nitrosamines (TSNAs) and is largely accumulated in burley tobacco. To decrease nitrate accumulation in burley tobacco, glycerol, a polyhydric alcohol compound and physiological regulating material, was sprayed and its effects were investigated based on metabolomic technology and molecular biology. The results showed that glucose, glutamine and glutamic acid increased by 2.6, 5.1 and 196, folds, respectively, in tobacco leaves after glycerol application. Nitrate content was significantly decreased by 12-16% and expression of eight genes responsible for carbon and nitrogen metabolism were up-regulated with glycerol applications under both normal and 20% reduced nitrogen levels (P < 0.01). Leaf biomass of plants sprayed with glycerol and 20% nitrogen reduction was equivalent to that of no glycerol control with normal nitrogen application. Carbohydrates biosynthesis, nitrate transport and nitrate assimilation were enhanced in glycerol sprayed burley tobacco seedlings which might contribute to reduced nitrate and increased carbohydrates contents. In conclusion, glyerol spray coupled with 20% nitrogen reduction would be an effective method to reduce nitrate accumulation in burley tobacco.

Citing Articles

Revealing critical mechanisms involved in carbon nanosol-mediated tobacco growth using small RNA and mRNA sequencing in silico approach.

Zheng X, Wang C, Zhang K, Xu Y, Qu X, Cao P BMC Plant Biol. 2024; 24(1):1233.

PMID: 39710652 PMC: 11664839. DOI: 10.1186/s12870-024-05992-8.


Plant Heterotrophic Cultures: No Food, No Growth.

Puzanskiy R, Romanyuk D, Kirpichnikova A, Yemelyanov V, Shishova M Plants (Basel). 2024; 13(2).

PMID: 38256830 PMC: 10821431. DOI: 10.3390/plants13020277.


Reducing nitrate and tobacco-specific nitrosamine level in burley tobacco leaves through grafting on flue-cured tobacco rootstock.

Feng Y, Zhao Y, Li G, Shi H Plant Direct. 2023; 7(10):e536.

PMID: 37841064 PMC: 10568975. DOI: 10.1002/pld3.536.


Phenotypic and transcriptomic responses of the shade-grown species Panax ginseng to variable light conditions.

Zhang Y, Niu Y, Wang X, Wang Z, Wang M, Yang J Ann Bot. 2022; 130(5):749-762.

PMID: 35961674 PMC: 9670753. DOI: 10.1093/aob/mcac105.


Preharvest UV-C Hormesis Induces Key Genes Associated With Homeostasis, Growth and Defense in Lettuce Inoculated With pv. .

Sidibe A, Charles M, Lucier J, Xu Y, Beaulieu C Front Plant Sci. 2022; 12:793989.

PMID: 35111177 PMC: 8801786. DOI: 10.3389/fpls.2021.793989.


References
1.
Shi H, Wang R, Bush L, Zhou J, Yang H, Fannin N . Changes in TSNA contents during tobacco storage and the effect of temperature and nitrate level on TSNA formation. J Agric Food Chem. 2013; 61(47):11588-94. DOI: 10.1021/jf404813m. View

2.
Wintermans J, DE MOTS A . Spectrophotometric characteristics of chlorophylls a and b and their pheophytins in ethanol. Biochim Biophys Acta. 1965; 109(2):448-53. DOI: 10.1016/0926-6585(65)90170-6. View

3.
Holtman C, Pawlyk A, Meadow N, Pettigrew D . Reverse genetics of Escherichia coli glycerol kinase allosteric regulation and glucose control of glycerol utilization in vivo. J Bacteriol. 2001; 183(11):3336-44. PMC: 99631. DOI: 10.1128/JB.183.11.3336-3344.2001. View

4.
Patel R, Jain M . NGS QC Toolkit: a toolkit for quality control of next generation sequencing data. PLoS One. 2012; 7(2):e30619. PMC: 3270013. DOI: 10.1371/journal.pone.0030619. View

5.
Hooijmaijers C, Rhee J, Kwak K, Chung G, Horie T, Katsuhara M . Hydrogen peroxide permeability of plasma membrane aquaporins of Arabidopsis thaliana. J Plant Res. 2011; 125(1):147-53. DOI: 10.1007/s10265-011-0413-2. View