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Abiotic stresses such as nitrogen deficiency, drought, and salinity significantly impact coconut production, yet the molecular mechanisms underlying coconut's response to these stresses are poorly understood. MYB proteins, a large and diverse family of transcription factors (TF), play crucial roles in plant responses to various abiotic stresses, but their genome-wide characterization and functional roles in coconut have not been comprehensively explored. This study identified 214 genes (39 1R-MYB, 171 R2R3-MYB, 2 3R-MYB, and 2 4R-MYB) in the coconut genome. Phylogenetic analysis revealed that these genes are unevenly distributed across the 16 chromosomes, with conserved consensus sequences, motifs, and gene structures within the same subgroups. Synteny analysis indicated that segmental duplication primarily drove evolution in coconut, with low nonsynonymous/synonymous ratios suggesting strong purifying selection. The gene ontology (GO) annotation of protein sequences provided insights into the biological functions of the gene family. and were identified as homologous genes linked to nitrogen deficiency, drought, and salinity stress through BLAST, highlighting the key role of CnMYB genes in abiotic stress tolerance. Quantitative analysis of PCR showed 10 genes in leaves and petioles and found that the expression of was higher in 3-month-old than one-year-old coconut, whereas was higher in one-year-old coconut. Moreover, the expression of , , and was high under nitrogen deficiency, drought, and salinity stress, respectively. The predicted secondary and tertiary structures of three key CnMYB proteins involved in abiotic stress revealed distinct inter-proteomic features. The predicted interaction between CnMYB2/158 and Hsp70 supports its role in coconut's drought and salinity stress responses. These results expand our understanding of the relationships between the evolution and function of genes, and provide valuable insights into the gene family's role in abiotic stress in coconut.
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http://dx.doi.org/10.3390/ijms251810048 | DOI Listing |
Physiol Plant
September 2025
Department of Vegetable and Mushroom Growing, Hungarian University of Agriculture and Life Sciences, Budapest, Hungary.
Horticultural crops are increasingly exposed to simultaneous abiotic stresses such as drought, salinity, and temperature extremes, which often exacerbate each other's effects, leading to severe yield and quality losses. Addressing these multifaceted challenges necessitates the development and application of integrated and innovative strategies. This review highlights recent advancements in methodologies to enhance the resilience of horticultural crops against combined abiotic stresses.
View Article and Find Full Text PDFPlant Signal Behav
December 2025
School of Biotechnology, Kalinga Institute of Industrial Technology (KIIT) Deemed to be University, Bhubaneswar, India.
Nonexpressor of pathogenesis-related genes 1 (NPR1) is a master regulator of salicylic acid (SA)- facilitated plant hormone signaling and plays a crucial role in plant defense through the activation of systemic acquired resistance (SAR). Although like genes are associated with stress responses in a variety of plant species, no thorough genome-wide investigation of these genes has been undertaken in pearl millet (). This study discovered seven -like genes on four pearl millet chromosomes (Chr1, Chr2, Chr4, and Chr6), which exhibit close affinity to NPRs from other plants and have common gene structures, conserved motifs, and domains.
View Article and Find Full Text PDFBiochem Biophys Res Commun
September 2025
Department of Biotechnology & Bioinformatics, Jaypee University of Information Technology, Waknaghat, Solan, H.P., 173234, India. Electronic address:
Abiotic challenges have a major impact on plant growth and development. Recent research has highlighted the role of long non-coding RNAs in response to these environmental stressors. Long non-coding RNAs are transcripts that are usually longer than 200 nucleotides with no potential for coding proteins.
View Article and Find Full Text PDFJ Agric Food Chem
September 2025
Department of Biology, East Carolina University, Greenville, North Carolina 27858, United States.
MicroRNAs (miRNAs) are small noncoding RNAs that post-transcriptionally regulate gene expression, playing key roles in plant growth, development, and stress responses. Their regulatory functions make miRNAs ideal targets for enhancing crop yield, quality, and stress tolerance using biotechnologies, such as transgenic overexpression and CRISPR/Cas genome editing. By targeting multiple genes, miRNAs address complex agricultural challenges effectively.
View Article and Find Full Text PDFBMC Genomics
September 2025
Center for Agricultural Genetic Resources Research, Shanxi Agricultural University; Key Laboratory of Crop Genetic Resources and Germplasm Development on the Loess Plateau, Ministry of Agriculture and Rural Affairs, Taiyuan, 030031, China.
Background: Sucrose nonfermenting 1-related protein kinase 2 (SnRK2) proteins constitute a family of plant-specific serine/threonine kinases that play critical roles in mediating abscisic acid (ABA) signaling and responses to abiotic stresses, including drought and salinity. Nevertheless, systematic bioinformatics analysis and expression profiling of the SnRK2 gene family in broomcorn millet (Panicum miliaceum L.) have not yet been reported.
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