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Published on: June 7, 2024
Integrated transcriptomic and biochemical analyses reveal mechanisms of drought adaptation in strawberry
Hayat Topçu1, Umutcan Ünaldı2, Mesut Ada3
1Department of Agricultural Biotechnology, Faculty of Agriculture, University of Tekirdağ Namık Kemal, Tekirdağ, 59000, Türkiye.
Abstract:
Drought is a major abiotic stress that limits strawberry productivity worldwide, yet the underlying physiological and molecular mechanisms of cultivar-specific tolerance remains poorly understood. This study integrated physiological, biochemical, and transcriptomic analyses to dissect drought responses of two contrasting cultivars of Fragaria × ananassa: drought-tolerant 'Kara' and drought-sensitive 'E22'. Plants were exposed to both progressive water-deficit (Def) and PEG-induced osmotic stress under controlled greenhouse conditions. Physiologically, the two cultivars diverged substantially: E22 exhibited progressive chlorophyll decline and severe reduction in PSII efficiency (Fv/Fm dropping to 0.64 under PEG), whereas Kara maintained and even increased its chlorophyll content throughout the experiment while sustaining higher Fv/Fm values (> 0.72). Proline accumulation - a key osmoprotective response - was significantly higher in Kara (1.50 vs 0.78 µmol g⁻1 FW under PEG at peak stress). Transcriptomic profiling (18 RNA-Seq libraries, ~ 872 million reads) revealed fundamentally different stress strategies. E22 showed extensive transcriptome reprogramming, with 22,558 differentially expressed transcripts (DETs) under PEG, including down-regulation of photosynthesis-related pathways and up-regulation of ABA signaling, MAPK cascades, and heat shock response. In contrast, Kara exhibited a restrained response (< 900 DETs per stress condition), with differential expression focused on homeostasis-related functions such as transcription regulation, protein folding, and RNA processing. PEG-induced osmotic stress consistently elicited a stronger transcriptomic response than progressive water deficit in both cultivars, suggesting that osmotic sensing is a primary driver of large-scale gene regulation under drought. Enrichment analyses (GO/KEGG via ORA and GSEA) confirmed that E22 activated canonical drought and heat stress pathways, while Kara selectively engaged transcriptional regulators and RNA-processing genes. Transcription factor profiling showed extensive activation of AP2/ERF, NAC, WRKY, and MYB families in E22, with far fewer TFs altered in Kara. qRT-PCR validation of selected DEGs corroborated the RNA-Seq findings. These results provide new insights into cultivar-specific drought adaptation and identify candidate genes for breeding stress-resilient strawberry varieties.
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Transcription
Transcription is the process of synthesizing RNA from a DNA sequence by RNA polymerase. It is the first step in producing a protein from a gene sequence. Additionally, many other proteins and regulatory sequences are involved in the proper synthesis of messenger RNA (mRNA). Regulation of transcription is responsible for the differentiation of all the different types of cells and often for the proper cellular response to environmental signals.
Transcription Can Produce Different Kinds...
