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Shoot transcriptome and co-expression network analysis of African rice cultivars identify drought-tolerance hub genes and growth stage-dependent trade-offs

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dc.contributor.author Adjah, Kossi Lorimpo
dc.contributor.author Aziadekey, Mawuli
dc.contributor.author Toure, Aboubacar
dc.contributor.author Asante, Maxwell Darko
dc.contributor.author Tawiah, Isaac
dc.contributor.author Yadav, Shailesh
dc.contributor.author Onaga, Geoffrey
dc.contributor.author Amoah, Nana Kofi Abaka
dc.contributor.author El-Namaky, Raafat
dc.contributor.author Agboka, Komi
dc.contributor.author Henriques, Rossana
dc.date.accessioned 2026-08-04T09:58:46Z
dc.date.available 2026-08-04T09:58:46Z
dc.date.issued 2026-04-15
dc.identifier.citation Adjah KL, Aziadekey M, Toure A, Asante MD, Tawiah I, Yadav S, Onaga G, Amoah NKA, El-Namaky R, Agboka K and Henriques R (2026) Shoot transcriptome and co-expression network analysis of African rice cultivars identify drought-tolerance hub genes and growth stage-dependent trade-offs. Front. Plant Sci. 17:1802527. doi: 10.3389/fpls.2026.1802527 en_US
dc.identifier.uri http://197.159.135.214/jspui/handle/123456789/1319
dc.description A thesis, in the Rural Polytechnic Institute of Training and Applied Research (IPR/IFRA) in partnership with the West African Science Service Centre on Climate Change and Adapted Land Use (WASCAL), submitted in partial fulfilment of the requirements for the Doctor of Philosophy in Climate Change and Agriculture of the University of Sciences, Techniques and Technologies of Bamako (USTTB) en_US
dc.description.abstract Drought is a major abiotic stress limiting rice growth and productivity, posing a considerable threat to global food security. Understanding the molecular mechanisms that regulate plant responses to water deficit is critical for developing drought-tolerant rice varieties. While most breeding programmes evaluate drought responses at the adult or reproductive stages, early developmental responses remain understudied. Here, we compared the responses of young rice plants from previously characterized drought-tolerant (APO and CRI-Enapa) and drought-sensitive (ART132-35-1-1-B-B and CRIAmankwatia) rice varieties. We applied a transcriptome-based weighted gene co-expression network analysis using WGCNA to identify key regulatory genes and pathways associated with drought response in rice. Comprehensive transcriptional profiling after 30 days of drought stress revealed that APO showed extensive transcriptional reprogramming with 96.63% and 97.32% uniquely differentially expressed genes (DEGs) compared to CRI-Enapa and ART132-35-1-1-B-B, respectively. Module-trait relationship analysis identified several modules significantly associated with shoot fresh weight and root fresh weight under drought stress and control condition, with the turquoise and blue modules showing the strongest correlations. Within these, 30 genes exhibited exceptionally high connectivity, suggesting potential central roles in the regulatory network. Notably, S-acyltransferase (BGIOSGA023969) and NAD(P)- binding Rossmann-fold protein (BGIOSGA038191) showed the highest correlation with the shoot and root fresh weight. Functional enrichment analyses of APO and hub genes revealed that most of the DEGs were associated with phytohormone signalling, transcription factors, carbohydrate metabolism and drought response genes, suggesting their key role in drought tolerance mechanisms. These transcriptional units may not only serve as potential targets for functional validation but also function as molecular markers for drought tolerance at the early-developmental stages, which is critical for successful crop establishment in stressful paddy environments. en_US
dc.description.sponsorship The Federal Ministry of Research, Technology and Space (BMFTR) en_US
dc.language.iso en en_US
dc.publisher WASCAL en_US
dc.subject Differentially expressed genes en_US
dc.subject Drought-stress en_US
dc.subject Rice en_US
dc.subject RNA-Seq en_US
dc.subject RT-qPCR en_US
dc.title Shoot transcriptome and co-expression network analysis of African rice cultivars identify drought-tolerance hub genes and growth stage-dependent trade-offs en_US
dc.type Article en_US


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