» Articles » PMID: 33606812

Genome-wide Identification and Expression Profiling of Glutathione S-transferase Family Under Multiple Abiotic and Biotic Stresses in Medicago Truncatula L

Overview
Journal PLoS One
Date 2021 Feb 19
PMID 33606812
Citations 17
Authors
Affiliations
Soon will be listed here.
Abstract

Glutathione transferases (GSTs) constitute an ancient, ubiquitous, multi-functional antioxidant enzyme superfamily that has great importance on cellular detoxification against abiotic and biotic stresses as well as plant development and growth. The present study aimed to a comprehensive genome-wide identification and functional characterization of GST family in one of the economically important legume plants-Medicago truncatula. Here, we have identified a total of ninety-two putative MtGST genes that code for 120 proteins. All these members were classified into twelve classes based on their phylogenetic relationship and the presence of structural conserved domain/motif. Among them, 7 MtGST gene pairs were identified to have segmental duplication. Expression profiling of MtGST transcripts revealed their high level of organ/tissue-specific expression in most of the developmental stages and anatomical tissues. The transcripts of MtGSTU5, MtGSTU8, MtGSTU17, MtGSTU46, and MtGSTU47 showed significant up-regulation in response to various abiotic and biotic stresses. Moreover, transcripts of MtGSTU8, MtGSTU14, MtGSTU28, MtGSTU30, MtGSTU34, MtGSTU46 and MtGSTF8 were found to be highly upregulated in response to drought treatment for 24h and 48h. Among the highly stress-responsive MtGST members, MtGSTU17 showed strong affinity towards its conventional substrates reduced glutathione (GSH) and 1-chloro-2,4-dinitrobenzene (CDNB) with the lowest binding energy of-5.7 kcal/mol and -6.5 kcal/mol, respectively. Furthermore, the substrate-binding site residues of MtGSTU17 were found to be highly conserved. These findings will facilitate the further functional and evolutionary characterization of GST genes in Medicago.

Citing Articles

Comprehensive analysis of the aldehyde dehydrogenase gene family in L. and their response to saline-alkali stress.

Wang X, Wu M, Yu S, Zhai L, Zhu X, Yu L Front Plant Sci. 2024; 15:1283845.

PMID: 38450406 PMC: 10915231. DOI: 10.3389/fpls.2024.1283845.


Genome-wide identification and characterization of glutathione -transferase gene family in quinoa ( Willd.).

Tiwari S, Vaish S, Singh N, Basantani M, Bhargava A 3 Biotech. 2023; 13(7):230.

PMID: 37309406 PMC: 10257622. DOI: 10.1007/s13205-023-03659-z.


Integrative systems biology analysis of barley transcriptome ─ hormonal signaling against biotic stress.

Soltani Z, Moghadam A, Tahmasebi A, Niazi A PLoS One. 2023; 18(4):e0281470.

PMID: 37104505 PMC: 10138258. DOI: 10.1371/journal.pone.0281470.


Analysis of the mechanism of Ricinus communis L. tolerance to Cd metal based on proteomics and metabolomics.

Huibo Z, Yong Z, Rui L, Guorui L, Jianjun D, Qi W PLoS One. 2023; 18(3):e0272750.

PMID: 36862668 PMC: 9980742. DOI: 10.1371/journal.pone.0272750.


Genome-wide in silico identification of glutathione S-transferase (GST) gene family members in fig ( L.) and expression characteristics during fruit color development.

Liu L, Zheng S, Yang D, Zheng J PeerJ. 2023; 11:e14406.

PMID: 36718451 PMC: 9884035. DOI: 10.7717/peerj.14406.


References
1.
Oakley A . Glutathione transferases: a structural perspective. Drug Metab Rev. 2011; 43(2):138-51. DOI: 10.3109/03602532.2011.558093. View

2.
Yu C, Chen Y, Lu C, Hwang J . Prediction of protein subcellular localization. Proteins. 2006; 64(3):643-51. DOI: 10.1002/prot.21018. View

3.
He G, Guan C, Chen Q, Gou X, Liu W, Zeng Q . Genome-Wide Analysis of the Glutathione S-Transferase Gene Family in Capsella rubella: Identification, Expression, and Biochemical Functions. Front Plant Sci. 2016; 7:1325. PMC: 5005422. DOI: 10.3389/fpls.2016.01325. View

4.
Deavall D, Martin E, Horner J, Roberts R . Drug-induced oxidative stress and toxicity. J Toxicol. 2012; 2012:645460. PMC: 3420138. DOI: 10.1155/2012/645460. View

5.
Sappl P, Carroll A, Clifton R, Lister R, Whelan J, Millar A . The Arabidopsis glutathione transferase gene family displays complex stress regulation and co-silencing multiple genes results in altered metabolic sensitivity to oxidative stress. Plant J. 2008; 58(1):53-68. DOI: 10.1111/j.1365-313X.2008.03761.x. View