Back to Search
Start Over
Target-Based Physiological Modulations and Chloroplast Proteome Reveals a Drought Resilient Rootstock in Okra (Abelmoschus esculentus) Genotypes
- Source :
- International Journal of Molecular Sciences; Volume 22; Issue 23; Pages: 12996, International Journal of Molecular Sciences, Vol 22, Iss 12996, p 12996 (2021), International Journal of Molecular Sciences
- Publication Year :
- 2021
- Publisher :
- MDPI AG, 2021.
-
Abstract
- As climate changes increase, drought stress is becoming a problem for all major horticultural crops; among them is okra (Abelmoschus esculentus). Despite its superior resilience to heat stress and high nutritional content, it is still underutilized in contrast to other vegetable crops. Moreover, the drought-resistant and drought-sensitive genotypes of okra are also not well known and require further exploration to improve their productivity. To investigate this in more detail, we performed comparative physiological and large-scale chloroplast proteomics on drought-stressed genotypes of okra. We evaluated four major genotypes of okra, viz., NS7774, NS7772, Green Gold, and OH3312 for drought resilient rootstock. The physiological modulations demonstrated a significant change by 50–76% in biomass, net-photosynthetic machinery, water transport, and absorption both in early and late stages of drought stress compared to well-watered crops in all genotypes. Maximum oxidative damage due to drought stress was observed for the genotypes NS7772, Green Gold and OH3312 as depicted by H2O2 and O2− determination. Greater oxidative stress was correlated to lesser antioxidant activity and expression of antioxidant enzymes, such as catalase and ascorbate peroxidase under stress in okra genotypes. The overall photosynthetic pigments, such as total chlorophyll, and total carotenoid content, were also decreased, and stomatal guard cells were disrupted and appeared closed compared to the control for the above three mentioned genotypes, except NS7774. A subsequent tissue-specific proteome analysis of chloroplasts and thylakoids analyzed by BN-PAGE (blue native polyacrylamide gel electrophoresis) revealed either over or under expression of specific proteins, such as ATPase, PSI, PSII core dimer, PSII monomer and ATP synthase. The expression of multiprotein complex proteins, including PSII-core dimer and PSII-core monomer, was slightly higher for the genotype NS7774 when compared to three other genotypes for both 5 and 10 days of drought stress. Further identification of specific proteins obtained in second dimension BN-PAGE provided descriptive detail of seven proteins involved in drought resistance across all genotypes. The identified proteins are majorly involved in photosynthesis under drought stress, suggesting NS7774 as a drought tolerant genotype. Further, the proteomic results were confirmed using Immunoblot by selecting specific protein such as PsaA. Overall, from our physiological modulations and chloroplast proteomics in all genotypes, we summarized NS7774 as a resilient rootstock and the other three genotypes (NS7772, OH3312, and Green Gold) as sensitive ones.
- Subjects :
- Chlorophyll
Chloroplasts
Proteome
physiological modulations
Antioxidants
Abelmoschus esculentus
chemistry.chemical_compound
Ascorbate Peroxidases
Biology (General)
Carotenoid
Spectroscopy
chemistry.chemical_classification
biology
drought stress
food and beverages
General Medicine
Catalase
Adaptation, Physiological
Droughts
Computer Science Applications
Chloroplast
Chemistry
Horticulture
chloroplast proteome
resilient rootstock
Rootstock
QH301-705.5
Climate Change
Drought tolerance
Photosynthesis
Article
Catalysis
Inorganic Chemistry
Abelmoschus
Stress, Physiological
Physical and Theoretical Chemistry
QD1-999
Molecular Biology
Water transport
Gene Expression Profiling
fungi
Organic Chemistry
biology.organism_classification
Carotenoids
Oxidative Stress
chemistry
Subjects
Details
- ISSN :
- 14220067
- Volume :
- 22
- Database :
- OpenAIRE
- Journal :
- International Journal of Molecular Sciences
- Accession number :
- edsair.doi.dedup.....212b576d92d906c60a0e3306cfacf5b9
- Full Text :
- https://doi.org/10.3390/ijms222312996