Aug 2026· International Journal of Molecular Sciences· Vol 27, pp. 7206· 0 citations· 75 references
Medicine
TL;DR
Analysis of OsHSF genes in the japonica and indica rice cultivars offered valuable insights into the function of OsHSF genes that will contribute to the development of climate-resilient rice cultivars, as indicated by gene structure analysis.
Abstract
Rising temperatures pose daunting challenges for sustainable yield and nutritional quality of rice (Oryza sativa L.), thus putting food security at risk. Limited information exists regarding cis-acting regulatory elements and candidate genes controlling the heat shock transcription factor (HSF) gene family in rice. Therefore, the present study identified HSF genes in the japonica (Nipponbare) and indica (9311) rice cultivars through in silico repositories. Three candidate genes (HSFC2B, HSFB1, and HSFC2A) were selected for qRT-PCR analysis to validate their expression patterns under heat stress (HS). The present findings reported a total of 25 OsHSF genes through in silico genome-wide identification. Comparative analysis illustrated that the OsHSF genes had structural similarities but different expression and transcriptional regulation between the two cultivars. HSF genes were unevenly distributed across the 12 rice chromosomes, suggesting that tandem duplication and gene repetition may have contributed to the evolution of novel genes. Phylogenetic analysis revealed that all OsHSF gene family members have shared common ancestry, but several genes lack introns, potentially facilitating swift stress responses as indicated by gene structure analysis. Expression analysis revealed that candidate genes were active, with HSFC2A exhibiting the highest level of expression in the japonica cultivar compared to indica under heat-stressed conditions. HSFC2B gene showed a higher statistical difference in its response between cultivars, time points, and cultivar vs. time points interactions compared to HSFC2A and HSFB1. These findings offer valuable insights into the function of OsHSF genes that will contribute to the development of climate-resilient rice cultivars.
Coffee is a livelihood source for millions of farmers and plays a significant role in the economy of many coffee-producing countries. Abiotic stresses, such as drought and high temperature, however, negatively impact coffee growth, productivity, and bean quality. Heat shock factors (HSFs) play a crucial role in the plant response to heat and other abiotic stresses. However, there is still not a lot of detailed knowledge about the HSF gene family in Coffea arabica. In this study, a genome-wide search was performed to find and characterize the genes of HSF from C.arabica. A total of 59 putative CaHSF genes have been identified and characterized according to their physicochemical properties, chromosomal distribution, gene structure, conserved motifs, phylogenetic relationship, duplication event, synteny, cis-regulatory elements, and protein–protein interactions. The genes identified for CaHSF were assigned to different scaffolds of the genome, and they had different sizes, molecular mass, isoelectric point, GRAVY value, and aliphatic index of their protein. Through the relationships induced by the phylogenetic and conserved-domain analyses, and by their conservation, it was possible to get insight into the evolution of the proteins of the CaHSF family. Abiotic stress response, hormone signaling, and light regulation were noted to have several cis-regulatory elements associated with them in the promoter analysis and hence the possible role of the CaHSF genes in stress adaptation. Duplication and synteny analyses also showed that gene duplication played a role in the diversification and expansion of the CaHSF gene family in C. arabica. Overall, this study is a thorough genomic analysis of the CaHSF gene family, which can serve as a basis for future functional studies for understanding the molecular mechanism of abiotic stress tolerance in coffee.
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