Sellwane J Moloi
Comparative Physiological, Biochemical, and Leaf Proteome Responses of Contrasting Wheat Varieties to Drought Stress.
Moloi, Sellwane J; Alqarni, Ali O; Brown, Adrian P; Goche, Tatenda; Shargie, Nemera G; Moloi, Makoena J; Gokul, Arun; Chivasa, Stephen; Ngara, Rudo
Authors
Ali Alqarni ali.alqarni@durham.ac.uk
PGR Student Doctor of Philosophy
Dr Adrian Brown a.p.brown@durham.ac.uk
Experimental Officer
Dr Tatenda Goche tatenda.goche@durham.ac.uk
Academic Visitor
Nemera G Shargie
Makoena J Moloi
Arun Gokul
Dr Stephen Chivasa stephen.chivasa@durham.ac.uk
Associate Professor
Rudo Ngara
Abstract
Drought stress severely affects crop productivity and threatens food security. As current trends of global warming are predicted to exacerbate droughts, developing drought-resilient crops becomes urgent. Here, we used the drought-tolerant (BW35695) and drought-sensitive (BW4074) wheat varieties to investigate the physiological, biochemical, and leaf proteome responses underpinning drought tolerance. In response to drought, the tolerant variety had higher osmolyte accumulation and maintained higher leaf water content than the sensitive variety. BW35695 also had an enhanced antioxidant enzyme capacity and reduced reactive oxygen species (ROS), resulting in diminished membrane lipid damage, as reflected by malondialdehyde content. Proteomic analysis revealed that drought-induced differential expression of proteins involved in diverse biological processes in both wheat varieties, including primary and secondary metabolism, protein synthesis/folding/degradation, defense/ROS detoxification, energy, transcription, and cell structure. Notably, photosynthesis emerged as the most enriched biochemical process targeted for suppression in the drought-tolerant BW35695 wheat, but not in drought-sensitive BW4074, possibly as a survival strategy for averting cell damage inflicted by photosynthesis-derived ROS. Additionally, protein synthesis-related proteins were highly upregulated in BW35695, presumably to drive cell-wide stress-adaptive responses. The protein network identified here will be useful in further studies to understand the molecular basis for divergent drought response phenotypes in crops.
Citation
Moloi, S. J., Alqarni, A. O., Brown, A. P., Goche, T., Shargie, N. G., Moloi, M. J., Gokul, A., Chivasa, S., & Ngara, R. (2024). Comparative Physiological, Biochemical, and Leaf Proteome Responses of Contrasting Wheat Varieties to Drought Stress. Plants, 13(19), Article 2797. https://doi.org/10.3390/plants13192797
Journal Article Type | Article |
---|---|
Acceptance Date | Oct 1, 2024 |
Online Publication Date | Oct 5, 2024 |
Publication Date | Oct 1, 2024 |
Deposit Date | Nov 8, 2024 |
Publicly Available Date | Nov 8, 2024 |
Journal | Plants |
Electronic ISSN | 2223-7747 |
Publisher | MDPI |
Peer Reviewed | Peer Reviewed |
Volume | 13 |
Issue | 19 |
Article Number | 2797 |
DOI | https://doi.org/10.3390/plants13192797 |
Keywords | oxidative stress, antioxidant enzymes, proline, Triticum aestivum, lipid peroxidation, photosynthesis, iTRAQ, proteomics, gene expression, drought |
Public URL | https://durham-repository.worktribe.com/output/3047983 |
Files
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Publisher Licence URL
http://creativecommons.org/licenses/by/4.0/
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