Involvement of dehydrin proteins in mitigating the negative effects of drought stress in plants
- PMID: 34057589
- DOI: 10.1007/s00299-021-02720-6
Involvement of dehydrin proteins in mitigating the negative effects of drought stress in plants
Abstract
Drought stress-induced crop loss has been considerably increased in recent years because of global warming and changing rainfall pattern. Natural drought-tolerant plants entail the recruitment of a variety of metabolites and low molecular weight proteins to negate the detrimental effects of drought stress. Dehydrin (DHN) proteins are one such class of proteins that accumulate in plants during drought and associated stress conditions. These proteins are highly hydrophilic and perform multifaceted roles in the protection of plant cells during drought stress conditions. Evidence gathered over the years suggests that DHN proteins impart drought stress tolerance by enhancing the water retention capacity, elevating chlorophyll content, maintaining photosynthetic machinery, activating ROS detoxification, and promoting the accumulation of compatible solutes, among others. Overexpression studies have indicated that these proteins can be effectively targeted to mitigate the negative effects of drought stress and for the development of drought stress-tolerant crops to feed the ever-growing population in the near future. In this review, we describe the mechanism of DHNs mediated drought stress tolerance in plants and their interaction with several phytohormones to provide an in-depth understanding of DHNs function.
© 2021. The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.
Similar articles
-
Involvement of dehydrins in 24-epibrassinolide-induced protection of wheat plants against drought stress.Plant Physiol Biochem. 2016 Nov;108:539-548. doi: 10.1016/j.plaphy.2016.07.013. Epub 2016 Jul 14. Plant Physiol Biochem. 2016. PMID: 27611241
-
Delineation of mechanistic approaches employed by plant growth promoting microorganisms for improving drought stress tolerance in plants.Microbiol Res. 2021 Aug;249:126771. doi: 10.1016/j.micres.2021.126771. Epub 2021 Apr 22. Microbiol Res. 2021. PMID: 33930840 Review.
-
Metabolic engineering: Towards water deficiency adapted crop plants.J Plant Physiol. 2021 Mar-Apr;258-259:153375. doi: 10.1016/j.jplph.2021.153375. Epub 2021 Jan 26. J Plant Physiol. 2021. PMID: 33609854 Review.
-
Crosstalk between phytohormones and secondary metabolites in the drought stress tolerance of crop plants: A review.Physiol Plant. 2021 Jun;172(2):1106-1132. doi: 10.1111/ppl.13328. Epub 2021 Jan 21. Physiol Plant. 2021. PMID: 33421146 Review.
-
CaDHN3, a Pepper (Capsicum annuum L.) Dehydrin Gene Enhances the Tolerance against Salt and Drought Stresses by Reducing ROS Accumulation.Int J Mol Sci. 2021 Mar 22;22(6):3205. doi: 10.3390/ijms22063205. Int J Mol Sci. 2021. PMID: 33809823 Free PMC article.
Cited by
-
The Influence of Water Deficit on Dehydrin Content in Callus Culture Cells of Scots Pine.Plants (Basel). 2024 Sep 30;13(19):2752. doi: 10.3390/plants13192752. Plants (Basel). 2024. PMID: 39409624 Free PMC article.
-
Biochemical and transcriptomic analyses of the symbiotic interaction between Cremastra appendiculata and the mycorrhizal fungus Coprinellus disseminatus.BMC Plant Biol. 2022 Jan 4;22(1):15. doi: 10.1186/s12870-021-03388-6. BMC Plant Biol. 2022. PMID: 34983403 Free PMC article.
-
Transcription Factor ZmNAC20 Improves Drought Resistance by Promoting Stomatal Closure and Activating Expression of Stress-Responsive Genes in Maize.Int J Mol Sci. 2023 Mar 1;24(5):4712. doi: 10.3390/ijms24054712. Int J Mol Sci. 2023. PMID: 36902144 Free PMC article.
-
Physiological, Structural, and Functional Insights Into the Cryoprotection of Membranes by the Dehydrins.Front Plant Sci. 2022 Apr 28;13:886525. doi: 10.3389/fpls.2022.886525. eCollection 2022. Front Plant Sci. 2022. PMID: 35574140 Free PMC article. Review.
-
The Proteomic and Peptidomic Response of Wheat (Triticum aestivum L.) to Drought Stress.Plants (Basel). 2025 Jul 14;14(14):2168. doi: 10.3390/plants14142168. Plants (Basel). 2025. PMID: 40733406 Free PMC article.
References
-
- Abedini R, GhaneGolmohammadi F, PishkamRad R et al (2017) Plant dehydrins: shedding light on structure and expression patterns of dehydrin gene family in barley. J Plant Res 130:747–763. https://doi.org/10.1007/s10265-017-0941-5 - DOI - PubMed
-
- Abobatta WF (2019) Drought adaptive mechanisms of plants—a review. Adv Agr Environ Sci 2:42–45. https://doi.org/10.30881/aaeoa.00021 - DOI
-
- Agarwal PK, Agarwal P, Reddy MK, Sopory SK (2006) Role of DREB transcription factors in abiotic and biotic stress tolerance in plants. Plant Cell Rep 25:1263–1274. https://doi.org/10.1007/s00299-006-0204-8 - DOI - PubMed
-
- Allagulova C, Avalbaev A, Fedorova K, Shakirova F (2020) Methyl jasmonate alleviates water stress induced damages by promoting dehydrins accumulation in wheat plants. Plant Physiol Biochem 155:676–682. https://doi.org/10.1016/j.plaphy.2020.07.012 - DOI - PubMed
-
- Alsheikh MK, Heyen BJ, Randall SK (2003) Ion binding properties of the dehydrin ERD14 are dependent upon phosphorylation. J Biol Chem 278:40882–40889. https://doi.org/10.1074/jbc.M307151200 - DOI - PubMed
Publication types
MeSH terms
Substances
LinkOut - more resources
Full Text Sources
Other Literature Sources