Recent Insights into the Physio-Biochemical and Molecular Mechanisms of Low Temperature Stress in Tomato
Abstract
:1. Introduction
2. Morphological Changes of Tomato Plants in Response to LT
3. Physiological and Biochemical Changes of Tomato Plants to LT
3.1. Chlorophyll Contents and Photosynthetic Parameters
3.2. Cell Membrane and Relative Electrolyte Leakage (REL)
3.3. Relative Water Contents (RWC)
3.4. Proline, Soluble Sugars, and Glycine Betaine (GB)
3.5. Polyamines (PAs)
3.6. The ROS Generation and Regulation by Antioxidant Molecules
4. Molecular Mechanisms Underlying the LT Response in Tomato Plants
4.1. LT Perception and LT Response
4.2. LT Signaling Pathways via a Calcium Molecule
4.3. LT Signaling Pathways via ROS Molecules
4.4. The LT Signaling Transduction via a CBF Dependent Pathway
4.5. The LT Signaling Transduction via a CBF-Independent Pathway
4.6. The Cellular Roles of RNA-Binding Proteins in LT Response
4.7. Epigenetic Regulation of Fruit Ripening and Abiotic Stress in Tomato Plants
4.7.1. DNA Methylation in Fruit Ripening and Abiotic Stress Response
4.7.2. Histone Modifications in Fruit Ripening and Abiotic Stress Response
4.7.3. Noncoding RNAs in Fruit Ripening and Abiotic Stress Response
4.8. RNA Methylation in Fruit Ripening and Abiotic Stress Response
5. Conclusions and Future Prospects
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Index | Gene Name/Treatment | Physiological and Biochemical Changes | Ref. |
---|---|---|---|
Chlorophyll | SiFBA5 | Increase in the overexpression plant Enhanced LT tolerance | [25] |
Photosynthetic parameters (Fv/Fm, PN, Ci, Tr, Gs) | SiFBA5 SlREC2 | Decease in the sensitive and mutant plants Sensitive to LT stress | [24,25,26] |
REL | LeGPA1 LeCOR413PM2 ShPP2-1 SlREC2 | Increase in the RNAi transgenic plants Decrease in the overexpression plants Enhanced LT tolerance | [11,26,32,33] |
RWC | LEGPA1 LECOR413PM2 Rootstocks (Holyc) | Increase in the overexpression plants and rootstocks Enhanced LT tolerance | [32,33,37] |
Proline | Exogenous treatment | Enhanced LT tolerance | [40] |
Osmotin | Increase in the transgenic plant Enhanced LT tolerance | [42] | |
high pigment 1 LeGPA1 LeCOR413PM2 BOCRR1 | Increase in the mutant and overexpression plants Enhanced LT tolerance | [32,33,47,48] | |
GB | Exogenous treatment | Enhanced LT tolerance | [43,44,45] |
BADH | Increase in the overexpression plant Enhanced LT tolerance | [46] | |
high pigment 1 | Increase in the mutant Enhanced LT tolerance | [47] | |
Soluble sugars | LeGPA1 LeCOR413PM2 BOCRR1 | Increase in the overexpression plant Enhanced LT tolerance | [32,33,48] |
Put | SIMYC2 | Decreases in the RNAi transgenic plant Sensitive to LT stress | [61] |
Spd | ShWRKY55 | Increases in the LT-exposed LA1777 tomato via ShWRKY55 and ShSAMDC2 regulation Enhanced LT tolerance | [53] |
ROS | LeGR | Increase in antisense transgenic plants Sensitive to LT stress | [70] |
LeGPA1 LeCOR413PM2 BoCRP1 SiFBA5 Rootstock (Holyc) SlREC2 | Decrease in the overexpression plants and rootstock Enhanced LT tolerance | [25,32,33,37,47,48,70] | |
CAT, SOD, POD | LeGPA1 LeCOR413PM2 BoCRP1 SiFBA5 Rootstock (Holyc) SlREC2 | Increase in the overexpression plants and rootstock Enhanced LT tolerance | |
APX | BoCRP1 | Increase in the overexpression plant Enhanced LT tolerance | [48] |
GSH, AsA | LeGR | Decrease in antisense transgenic plant Sensitive to LT stress | [70] |
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Lee, K.; Kang, H. Recent Insights into the Physio-Biochemical and Molecular Mechanisms of Low Temperature Stress in Tomato. Plants 2024, 13, 2715. https://doi.org/10.3390/plants13192715
Lee K, Kang H. Recent Insights into the Physio-Biochemical and Molecular Mechanisms of Low Temperature Stress in Tomato. Plants. 2024; 13(19):2715. https://doi.org/10.3390/plants13192715
Chicago/Turabian StyleLee, Kwanuk, and Hunseung Kang. 2024. "Recent Insights into the Physio-Biochemical and Molecular Mechanisms of Low Temperature Stress in Tomato" Plants 13, no. 19: 2715. https://doi.org/10.3390/plants13192715
APA StyleLee, K., & Kang, H. (2024). Recent Insights into the Physio-Biochemical and Molecular Mechanisms of Low Temperature Stress in Tomato. Plants, 13(19), 2715. https://doi.org/10.3390/plants13192715