Ethylene: A Master Regulator of Salinity Stress Tolerance in Plants
Abstract
:1. Introduction
2. Ethylene Signal Transduction Pathway
3. Ethylene is a Key Modulator of Salinity Stress Responses in Plants
3.1. Salinity Stress and Ethylene Receptors
3.2. Salinity Stress and EIN Proteins
3.3. Effects of Salinity Stress on ERFs and other Ethylene-Responsive Transcription Factors
4. Seed Germination Regulated by Ethylene under Salinity Stress
5. Fine-Tuning of Photosynthetic Machinery by Ethylene during Salinity Stress
6. Modulation of Plant Cell Death under Salinity Stress
7. Cross-Talk between Ethylene and Various Plant Hormones during Salinity Stress
7.1. Auxin and Ethylene
7.2. Cytokinin and Ethylene
7.3. Gibberellins (GA) and Ethyslene
7.4. Abscisic Acid and Ethylene
7.5. Jasmonic Acid, Brassinosteroids, and Ethylene
8. Conclusions
Supplementary Materials
Author Contributions
Funding
Conflicts of Interest
References
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Riyazuddin, R.; Verma, R.; Singh, K.; Nisha, N.; Keisham, M.; Bhati, K.K.; Kim, S.T.; Gupta, R. Ethylene: A Master Regulator of Salinity Stress Tolerance in Plants. Biomolecules 2020, 10, 959. https://doi.org/10.3390/biom10060959
Riyazuddin R, Verma R, Singh K, Nisha N, Keisham M, Bhati KK, Kim ST, Gupta R. Ethylene: A Master Regulator of Salinity Stress Tolerance in Plants. Biomolecules. 2020; 10(6):959. https://doi.org/10.3390/biom10060959
Chicago/Turabian StyleRiyazuddin, Riyazuddin, Radhika Verma, Kalpita Singh, Nisha Nisha, Monika Keisham, Kaushal Kumar Bhati, Sun Tae Kim, and Ravi Gupta. 2020. "Ethylene: A Master Regulator of Salinity Stress Tolerance in Plants" Biomolecules 10, no. 6: 959. https://doi.org/10.3390/biom10060959