4.7 Article

Evolutionary and Gene Expression Analyses Reveal New Insights into the Role of LSU Gene-Family in Plant Responses to Sulfate-Deficiency

期刊

PLANTS-BASEL
卷 11, 期 12, 页码 -

出版社

MDPI
DOI: 10.3390/plants11121526

关键词

sulfate deficiency; Arabidopsis thaliana; Solanum lycopersicum; Triticum aestivum; LSU; response to low sulfur; abiotic stress; sulfur nutrition

资金

  1. National Agency for Research and Development (ANID) Chile
  2. FONDECYT [1211130, 1190812]
  3. Spanish Science Ministry [PID2020-114165RR-C21]
  4. ANID-Millennium Science Initiative Program [ICN17_022]
  5. MCIN/AEI [CEX2020-000999-S]

向作者/读者索取更多资源

LSU proteins belong to a plant-specific gene family that is strongly induced in response to sulfate deficiency. Through analysis of whole-genome sequences of 134 land plant species, 270 LSU family members were identified and their evolution was investigated. The study also revealed that LSU genes exhibit a conserved response to sulfate deficiency.
LSU proteins belong to a plant-specific gene family initially characterized by their strong induction in response to sulfate (S) deficiency. In the last few years, LSUs have arisen as relevant hubs in protein-protein interaction networks, in which they play relevant roles in the response to abiotic and biotic stresses. Most of our knowledge on LSU genomic organization, expression and function comes from studies in Arabidopsis and tobacco, while little is known about the LSU gene repertoire and evolution of this family in land plants. In this work, a total of 270 LSU family members were identified using 134 land plant species with whole-genome sequences available. Phylogenetic analysis revealed that LSU genes belong to a Spermatophyta-specific gene family, and their homologs are distributed in three major groups, two for dicotyledons and one group for monocotyledons. Protein sequence analyses showed four new motifs that further support the subgroup classification by phylogenetic analyses. Moreover, we analyzed the expression of LSU genes in one representative species of each phylogenetic group (wheat, tomato and Arabidopsis) and found a conserved response to S deficiency, suggesting that these genes might play a key role in S stress responses. In summary, our results indicate that LSU genes belong to the Spermatophyta-specific gene family and their response to S deficiency is conserved in angiosperms.

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