Comprehensive identification and expression analysis of FAR1/FHY3 genes under drought stress in maize (Zea mays L.)

Author:

Zhao Dongbo1ORCID,Guan Peiyan2,Wei Longxue1,Gao Jiansheng1,Guo Lianghai1,Tian Dianbin3,Li Qingfang4,Guo Zhihui1,Cui Huini1,Li Yongjun1,Guo Jianjun1

Affiliation:

1. Dezhou Academy of Agricultural Science, Dezhou, Shandong, China

2. College of Life Science, Dezhou University, Dezhou, Shandong, China

3. Pingyuan County Rural Revitalization Service Center, Pingyuan, Shandong, China

4. Linyi County Agricultural and Rural Bureau, Linyi, Shandong, China

Abstract

Background FAR1/FHY3 transcription factors are derived from transposase, which play important roles in light signal transduction, growth and development, and response to stress by regulating downstream gene expression. Although many FAR1/FHY3 members have been identified in various species, the FAR1/FHY3 genes in maize are not well characterized and their function in drought are unknown. Method The FAR1/FHY3 family in the maize genome was identified using PlantTFDB, Pfam, Smart, and NCBI-CDD websites. In order to investigate the evolution and functions of FAR1 genes in maize, the information of protein sequences, chromosome localization, subcellular localization, conserved motifs, evolutionary relationships and tissue expression patterns were analyzed by bioinformatics, and the expression patterns under drought stress were detected by quantitative real-time polymerase chain reaction (qRT-PCR). Results A total of 24 ZmFAR members in maize genome, which can be divided into five subfamilies, with large differences in protein and gene structures among subfamilies. The promoter regions of ZmFARs contain abundant abiotic stress-responsive and hormone-respovensive cis-elements. Among them, drought-responsive cis-elements are quite abundant. ZmFARs were expressed in all tissues detected, but the expression level varies widely. The expression of ZmFARs were mostly down-regulated in primary roots, seminal roots, lateral roots, and mesocotyls under water deficit. Most ZmFARs were down-regulated in root after PEG-simulated drought stress. Conclusions We performed a genome-wide and systematic identification of FAR1/FHY3 genes in maize. And most ZmFARs were down-regulated in root after drought stress. These results indicate that FAR1/FHY3 transcription factors have important roles in drought stress response, which can lay a foundation for further analysis of the functions of ZmFARs in response to drought stress.

Funder

Agricultural Variety Improvement Project of Shandong Province

Shandong Agricultural Industry Technology System

China Agriculture Research System

National Natural Science Foundation of China

Shandong Province Higher Educational Science and Technology Program

Dezhou University Innovation Team Program

Publisher

PeerJ

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