» Articles » PMID: 36147238

Combined Transcriptomic and Metabolomic Analysis Reveals a Role for Adenosine Triphosphate-binding Cassette Transporters and Cell Wall Remodeling in Response to Salt Stress in Strawberry

Overview
Journal Front Plant Sci
Date 2022 Sep 23
PMID 36147238
Authors
Affiliations
Soon will be listed here.
Abstract

Strawberry ( × Duch) are sensitive to salt stress, and breeding salt-tolerant strawberry cultivars is the primary method to develop resistance to increased soil salinization. However, the underlying molecular mechanisms mediating the response of strawberry to salinity stress remain largely unknown. This study evaluated the salinity tolerance of 24 strawberry varieties, and transcriptomic and metabolomic analysis were performed of 'Sweet Charlie' (salt-tolerant) and 'Benihoppe' (salt-sensitive) to explore salt tolerance mechanisms in strawberry. Compared with the control, we identified 3412 differentially expressed genes (DEGs) and 209 differentially accumulated metabolites (DAMs) in 'Benihoppe,' and 5102 DEGs and 230 DAMs in 'Sweet Charlie.' DEGs Gene Ontology (GO) enrichment analyses indicated that the DEGs in 'Benihoppe' were enriched for ion homeostasis related terms, while in 'Sweet Charlie,' terms related to cell wall remodeling were over-represented. DEGs related to ion homeostasis and cell wall remodeling exhibited differential expression patterns in 'Benihoppe' and 'Sweet Charlie.' In 'Benihoppe,' 21 ion homeostasis-related DEGs and 32 cell wall remodeling-related DEGs were upregulated, while 23 ion homeostasis-related DEGs and 138 cell wall remodeling-related DEGs were downregulated. In 'Sweet Charlie,' 72 ion homeostasis-related DEGs and 275 cell wall remodeling-related DEGs were upregulated, while 11 ion homeostasis-related DEGs and 20 cell wall remodeling-related DEGs were downregulated. Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway analyses showed only four KEGG enriched pathways were shared between 'Benihoppe' and 'Sweet Charlie,' including flavonoid biosynthesis, phenylalanine metabolism, phenylpropanoid biosynthesis and ubiquinone, and other terpenoid-quinone biosynthesis. Integrating the results of transcriptomic and metabolomics analyses showed that adenosine triphosphate-binding cassette (ABC) transporters and flavonoid pathway genes might play important roles in the salt stress response in strawberry, and DAMs and DEGs related to ABC transporter and flavonoid pathways were differentially expressed or accumulated. The results of this study reveal that cell wall remodeling and ABC transporters contribute to the response to salt stress in strawberry, and that related genes showed differential expression patterns in varieties with different salt tolerances. These findings provide new insights into the underlying molecular mechanism of strawberry response to salt stress and suggest potential targets for the breeding of salt-tolerant strawberry varieties.

Citing Articles

Improvement in genomic prediction of maize with prior gene ontology information depends on traits and environmental conditions.

Ali B, Mary-Huard T, Charcosset A, Moreau L, Rincent R Plant Genome. 2025; 18(1):e20553.

PMID: 39779652 PMC: 11711123. DOI: 10.1002/tpg2.20553.


Genome-wide identification, characterization, and functional analysis of the CHX, SOS, and RLK genes in Solanum lycopersicum under salt stress.

Maghraby A, Alzalaty M Sci Rep. 2025; 15(1):1142.

PMID: 39774029 PMC: 11707246. DOI: 10.1038/s41598-024-83221-w.


Salt-tolerant plant growth-promoting bacteria as a versatile tool for combating salt stress in crop plants.

Xie X, Gan L, Wang C, He T Arch Microbiol. 2024; 206(8):341.

PMID: 38967784 DOI: 10.1007/s00203-024-04071-8.


Integrated metabolomic and transcriptomic analysis reveals the role of phenylpropanoid biosynthesis pathway in tomato roots during salt stress.

Jia C, Guo B, Wang B, Li X, Yang T, Li N Front Plant Sci. 2022; 13:1023696.

PMID: 36570882 PMC: 9773889. DOI: 10.3389/fpls.2022.1023696.


Combined full-length transcriptomic and metabolomic analysis reveals the regulatory mechanisms of adaptation to salt stress in asparagus.

Zhang X, Han C, Liang Y, Yang Y, Liu Y, Cao Y Front Plant Sci. 2022; 13:1050840.

PMID: 36388563 PMC: 9648818. DOI: 10.3389/fpls.2022.1050840.

References
1.
Fang H, Zhou Q, Cheng S, Zhou X, Wei B, Zhao Y . 24-epibrassinolide alleviates postharvest yellowing of broccoli via improving its antioxidant capacity. Food Chem. 2021; 365:130529. DOI: 10.1016/j.foodchem.2021.130529. View

2.
Merlaen B, De Keyser E, Van Labeke M . The jasmonic acid pathway, rather than abscisic acid, may partly explain contrasting stomatal responses in two strawberry cultivars under osmotic stress. Plant Physiol Biochem. 2020; 151:21-33. DOI: 10.1016/j.plaphy.2020.02.041. View

3.
Xu Y, Liu J, Jia C, Hu W, Song S, Xu B . Overexpression of a Banana Aquaporin Gene Enhances Tolerance to Multiple Abiotic Stresses in Transgenic Banana and Analysis of Its Interacting Transcription Factors. Front Plant Sci. 2021; 12:699230. PMC: 8424054. DOI: 10.3389/fpls.2021.699230. View

4.
Kesten C, Wallmann A, Schneider R, McFarlane H, Diehl A, Khan G . The companion of cellulose synthase 1 confers salt tolerance through a Tau-like mechanism in plants. Nat Commun. 2019; 10(1):857. PMC: 6382854. DOI: 10.1038/s41467-019-08780-3. View

5.
Sharples S, Nguyen-Phan T, Fry S . Xyloglucan endotransglucosylase/hydrolases (XTHs) are inactivated by binding to glass and cellulosic surfaces, and released in active form by a heat-stable polymer from cauliflower florets. J Plant Physiol. 2017; 218:135-143. PMC: 5669584. DOI: 10.1016/j.jplph.2017.07.022. View