4.7 Article

Comparative Genomics, Evolution, and Drought-Induced Expression of Dehydrin Genes in Model Brachypodium Grasses

期刊

PLANTS-BASEL
卷 10, 期 12, 页码 -

出版社

MDPI
DOI: 10.3390/plants10122664

关键词

Bdhn genes; cis-regulatory elements; comparative genomics; dehydrin structure; dehydrin-gene expression; duplicated genes; drought-related traits; drought-tolerant ecotypes; phylogenetics

资金

  1. Spanish Ministry of Science and Innovation [PID2019-108195GB-I00]
  2. European Social Fund/Spanish Aragon Government [A01-20R]
  3. Spanish Junta de Andalucia [P18-RT-992]
  4. USDA [NIFA-2011-67012-30663]
  5. Spanish Mineco FPI PhD fellowship
  6. Spanish Fundacion ARAID

向作者/读者索取更多资源

The study conducted a comparative genomics and evolution analysis of DHN genes in Brachypodium grass species, showing that key Bdhn genes are regulated by drought induction in different ecotypes, which may be a crucial factor in acquiring water-stress tolerance in plants.
Dehydration proteins (dehydrins, DHNs) confer tolerance to water-stress deficit in plants. We performed a comparative genomics and evolutionary study of DHN genes in four model Brachypodium grass species. Due to limited knowledge on dehydrin expression under water deprivation stress in Brachypodium, we also performed a drought-induced gene expression analysis in 32 ecotypes of the genus' flagship species B. distachyon showing different hydric requirements. Genomic sequence analysis detected 10 types of dehydrin genes (Bdhn) across the Brachypodium species. Domain and conserved motif contents of peptides encoded by Bdhn genes revealed eight protein architectures. Bdhn genes were spread across several chromosomes. Selection analysis indicated that all the Bdhn genes were constrained by purifying selection. Three upstream cis-regulatory motifs (BES1, MYB124, ZAT) were detected in several Bdhn genes. Gene expression analysis demonstrated that only four Bdhn1-Bdhn2, Bdhn3, and Bdhn7 genes, orthologs of wheat, barley, rice, sorghum, and maize genes, were expressed in mature leaves of B. distachyon and that all of them were more highly expressed in plants under drought conditions. Brachypodium dehydrin expression was significantly correlated with drought-response phenotypic traits (plant biomass, leaf carbon and proline contents and water use efficiency increases, and leaf water and nitrogen content decreases) being more pronounced in drought-tolerant ecotypes. Our results indicate that dehydrin type and regulation could be a key factor determining the acquisition of water-stress tolerance in grasses.

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