» Articles » PMID: 37446044

Metabolomics and Transcriptomics Analyses Reveals the Molecular Regulatory Mechanisms of Walnut ( L.) Embryos in Response to Shade Treatment

Overview
Journal Int J Mol Sci
Publisher MDPI
Date 2023 Jul 14
PMID 37446044
Authors
Affiliations
Soon will be listed here.
Abstract

The walnut is an important nut that has numerous uses worldwide. However, due to dwarf and close plantation methods as well as continuous cloudy or rainy days that occur during periods of walnut oil accumulation, the walnut fruit exhibits varying degrees of stress under low-light conditions. However, the effects of shade on metabolites and genes in walnut embryos remain unclear in the literature. The purpose of this study is to investigate the lipid biosynthesis process that occurs in walnut embryos under shade treatment via the use of metabolomics and transcriptomics analyses. The results indicate that the oil content decreases significantly under shaded conditions, while the protein content increases significantly. The expression levels of fatty acid desaturase 2 () and stearoyl-ACP-desaturase () involved in the lipid biosynthesis mechanism were significantly reduced in the shaded group, which resulted in reductions in oleic (C18:1), linoleic (C18:2), and α-linolenic (C18:3) acids. The reduced oil content was consistent with the downregulation of genes associated with the lipid biosynthesis mechanism. In the amino acid biosynthesis process, the upregulated cysteine synthase () and anthranilate synthase beta subunit 2 () genes promoted the accumulation of L-aspartic acid and L-citrulline. The increase in protein content was consistent with the upregulation of genes related to amino acid biosynthesis. Thus, our study provides new insights into the regulatory mechanisms of shade underlying overall walnut fruit quality.

Citing Articles

The identification and expression analysis of walnut Acyl-ACP thioesterases.

Wang H, Shi J, Guo W, Sun X, Niu S, Chen L Front Genet. 2024; 15:1409159.

PMID: 39135682 PMC: 11317280. DOI: 10.3389/fgene.2024.1409159.


Historical spread routes of wild walnuts in Central Asia shaped by man-made and nature.

Li X, Wang X, Zhang D, Huang J, Shi W, Wang J Front Plant Sci. 2024; 15:1394409.

PMID: 38903444 PMC: 11187337. DOI: 10.3389/fpls.2024.1394409.

References
1.
Amaral J, Casal S, Pereira J, Seabra R, Oliveira B . Determination of sterol and fatty acid compositions, oxidative stability, and nutritional value of six walnut (Juglans regia L.) cultivars grown in Portugal. J Agric Food Chem. 2003; 51(26):7698-702. DOI: 10.1021/jf030451d. View

2.
Guchhait R, Polakis S, Dimroth P, Stoll E, Moss J, Lane M . Acetyl coenzyme A carboxylase system of Escherichia coli. Purification and properties of the biotin carboxylase, carboxyltransferase, and carboxyl carrier protein components. J Biol Chem. 1974; 249(20):6633-45. View

3.
Thompson O, von Meyenn F, Hewitt Z, Alexander J, Wood A, Weightman R . Low rates of mutation in clinical grade human pluripotent stem cells under different culture conditions. Nat Commun. 2020; 11(1):1528. PMC: 7089967. DOI: 10.1038/s41467-020-15271-3. View

4.
Domenech M, Serra-Mir M, Roth I, Freitas-Simoes T, Valls-Pedret C, Cofan M . Effect of a Walnut Diet on Office and 24-Hour Ambulatory Blood Pressure in Elderly Individuals. Hypertension. 2019; 73(5):1049-1057. PMC: 6467552. DOI: 10.1161/HYPERTENSIONAHA.118.12766. View

5.
Combres J, Pallas B, Rouan L, Mialet-Serra I, Caliman J, Braconnier S . Simulation of inflorescence dynamics in oil palm and estimation of environment-sensitive phenological phases: a model based analysis. Funct Plant Biol. 2020; 40(3):263-279. DOI: 10.1071/FP12133. View