Functional Analysis of Tomato SPDS in Response to Osmotic Stress
Highlights
- Four SlSPDS genes were identified in tomato, and their characteristics, subcellular localization, and stress response patterns were systematically analyzed.
- Transient expression of SlSPDS affected polyamine contents in tomato, and overexpression transgenic tomato lines were generated to verify the function of SlSPDS.
- These findings clarify the potential role of the SlSPDS gene family in abiotic stress tolerance in tomato.
- This study provides a theoretical basis for the genetic improvement of stress resistance in Solanaceae crops.
Abstract
1. Introduction
2. Materials and Methods
2.1. Plant Materials and Growth Conditions
2.2. Identification of the SPDS Gene Family
2.3. Protein Physicochemical Characterization
2.4. Multiple Sequence Alignment and Phylogenetic Analysis of the SlSPDS1-4
2.5. Analysis of SPDS Gene Structure and Chromosomal Localization
2.6. Identification of Cis-Acting Elements in Promoter Sequence Analysis
2.7. Subcellular Localization of SlSPDS
2.8. Abiotic Stress Treatment of Tomatoes and Sample Collection
2.9. Detection of Polyamine Content in SlSPDS1-4 Transient Overexpressed Tomato Leaves
2.10. RNA Extraction, cDNA Synthesis, and qRT-PCR Analysis
2.11. Determination of Chlorophyll Content in Tomato Leaves and DAB Staining Detection
2.12. Data Analysis
3. Results
3.1. Identification of SlSPDS1-4 Genes and Analysis of Physicochemical Properties
3.2. Bioinformatics Analysis and Subcellular Localization of the Tomato SlSPDS1-4 Gene
3.3. Expression Profiles of SlSPDS Genes Under Abiotic Stress Treatments
3.4. Impact of SlSPDS Gene Overexpression on Polyamine Metabolism in Tomato Leaves
3.5. Phenotypes and DAB Staining Analysis of OE-SlSPDS Transgenic Tomato Seedlings Under 20% PEG6000 Treatment
3.6. Phenotype, DAB Staining, and Chlorophyll Content in OE-SlSPDS Lines Under Salt Stress
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Gene Name | Gene ID | pI | Molecular Weight (Da) | ORF Length (bp) | Number of Amino Acids (aa) | Instability Index | Aliphatic Index | Grand Average of Hydrophathicity | Amino Acid Length (aa) | Subcellular Localization |
|---|---|---|---|---|---|---|---|---|---|---|
| SlSPDS1 | Solyc03g007240.2.1 | 5.61 | 39,261.13 | 1071 | 356 | 39.59 | 88.37 | −0.082 | 357 | cytoplasm |
| SlSPDS2 | Solyc04g026030.2.1 | 5.23 | 34,201.97 | 930 | 309 | 49.64 | 87.28 | −0.121 | 310 | cytoplasm |
| SlSPDS3 | Solyc05g005710.2.1 | 4.81 | 37,678.90 | 285 | 342 | 56.18 | 84.62 | −0.160 | 95 | cytoplasm |
| SlSPDS4 | Solyc06g053520.2.1 | 5.09 | 35,098.39 | 951 | 316 | 33.97 | 92.44 | 0.034 | 317 | cytoplasm |
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Cheng, L.; Zhang, J.; Lin, C.; Wang, W.; Huang, S.; Yang, L.; Li, J.; Guo, X.; Yu, X. Functional Analysis of Tomato SPDS in Response to Osmotic Stress. Cells 2026, 15, 533. https://doi.org/10.3390/cells15060533
Cheng L, Zhang J, Lin C, Wang W, Huang S, Yang L, Li J, Guo X, Yu X. Functional Analysis of Tomato SPDS in Response to Osmotic Stress. Cells. 2026; 15(6):533. https://doi.org/10.3390/cells15060533
Chicago/Turabian StyleCheng, Lilan, Jingling Zhang, Chenyu Lin, Wenjuan Wang, Siyuan Huang, Liyun Yang, Jie Li, Xin Guo, and Xiaohui Yu. 2026. "Functional Analysis of Tomato SPDS in Response to Osmotic Stress" Cells 15, no. 6: 533. https://doi.org/10.3390/cells15060533
APA StyleCheng, L., Zhang, J., Lin, C., Wang, W., Huang, S., Yang, L., Li, J., Guo, X., & Yu, X. (2026). Functional Analysis of Tomato SPDS in Response to Osmotic Stress. Cells, 15(6), 533. https://doi.org/10.3390/cells15060533

