BMC Genomics (Sep 2018)

Genomic, expressional, protein-protein interactional analysis of Trihelix transcription factor genes in Setaria italia and inference of their evolutionary trajectory

  • Zhenyi Wang,
  • Kanglu Zhao,
  • Yuxin Pan,
  • Jinpeng Wang,
  • Xiaoming Song,
  • Weina Ge,
  • Min Yuan,
  • Tianyu Lei,
  • Li Wang,
  • Lan Zhang,
  • Yuxian Li,
  • Tao Liu,
  • Wei Chen,
  • Wenjing Meng,
  • Changkai Sun,
  • Xiaobo Cui,
  • Yun Bai,
  • Xiyin Wang

DOI
https://doi.org/10.1186/s12864-018-5051-9
Journal volume & issue
Vol. 19, no. 1
pp. 1 – 12

Abstract

Read online

Abstract Background Trihelix transcription factors (TTF) play important roles in plant growth and response to adversity stress. Until now, genome-wide identification and analysis of this gene family in foxtail millet has not been available. Here, we identified TTF genes in the foxtail millet and its grass relatives, and characterized their functional domains. Results As to sequence divergence, TTF genes were previously divided into five subfamilies, I-V. We found that Trihelix family members in foxtail millet and other grasses mostly preserved their ancestral chromosomal locations during millions of years’ evolution. Six amino acid sites of the SIP1 subfamily possibly were likely subjected to significant positive selection. Highest expression level was observed in the spica, with the SIP1 subfamily having highest expression level. As to the origination and expansion of the gene family, notably we showed that a subgroup of subfamily IV was the oldest, and therefore was separated to define a new subfamily O. Overtime, starting from the subfamily O, certain genes evolved to form subfamilies III and I, and later from subfamily I to develop subfamilies II and V. The oldest gene, Si1g016284, has the most structural changes, and a high expression in different tissues. What’s more interesting is that it may have bridge the interaction with different proteins. Conclusions By performing phylogenetic analysis using non-plant species, notably we showed that a subgroup of subfamily IV was the oldest, and therefore was separated to define a new subfamily O. Starting from the subfamily O, certain genes evolved to form other subfamilies. Our work will contribute to understanding the structural and functional innovation of Trihelix transcription factor, and the evolutionary trajectory.

Keywords