Unraveling the Role of the Liriodendron Thioredoxin (TRX) Gene Family in an Abiotic Stress Response
Author:
Tong Lu12ORCID, Lin Mengyuan12, Zhu Liming12, Liao Bojun12, Lu Lu12, Lu Ye12, Chen Jinhui12, Shi Jisen12ORCID, Hao Zhaodong12ORCID
Affiliation:
1. State Key Laboratory of Tree Genetics and Breeding, Co-Innovation Center for Sustainable Forestry in Southern China, Nanjing Forestry University, Nanjing 210037, China 2. Key Laboratory of Forest Genetics & Biotechnology of Ministry of Education, Nanjing Forestry University, Nanjing 210037, China
Abstract
Thioredoxin (TRX) is a small protein with REDOX activity that plays a crucial role in a plant’s growth, development, and stress resistance. The TRX family has been extensively studied in Arabidopsis, rice, and wheat, and so it is likely that its members have similar biological functions in Liriodendron that have not been reported in Liriodendron. In this study, we performed the genome-wide identification of the TRX gene family based on the Liriodendron chinense genome, leading to a total of 42 LcTRX gene members. A phylogenetic analysis categorized these 42 LcTRX proteins into 13 subfamilies. We further characterized their chromosome distributions, gene structures, conserved protein motifs, and cis-elements in the promoter regions. In addition, based on the publicly available transcriptome data for Liriodendron hybrid and following RT-qPCR experiments, we explored the expression patterns of LhTRXs to different abiotic stressors, i.e., drought, cold, and heat stress. Notably, we found that several LhTRXs, especially LhTRX-h3, were significantly upregulated in response to abiotic stress. In addition, the subcellular localization assay showed that LhTRX-h3 was mainly distributed in the cytoplasm. Subsequently, we obtained LhTRX-h3 overexpression (OE) and knockout (KO) callus lines in Liriodendron hybrid. Compared to the wild type (WT) and LhTRX-h3-KO callus proliferation of LhTRX-h3-OE lines was significantly enhanced with reduced reactive oxygen species (ROS) accumulation under drought stress. Our findings that LhTRX-h3 is sufficient to improve drought tolerance. and underscore the significance of the TRX gene family in environmental stress responses in Liriodendron.
Funder
National Key R&D Program of China Natural Science Foundation of China Priority Academic Program Development of Jiangsu Higher Education Institutions
Reference53 articles.
1. Hasan, M., Ma, F., Prodhan, Z., Li, F., Shen, H., Chen, Y., and Wang, X. (2018). Molecular and Physio-Biochemical Characterization of Cotton Species for Assessing Drought Stress Tolerance. Int. J. Mol. Sci., 19. 2. Prakash, C., Mithra, S.A., Singh, P.K., Mohapatra, T., and Singh, N.K. (2016). Unraveling the molecular basis of oxidative stress management in a drought tolerant rice genotype Nagina 22. BMC Genom., 17. 3. Transcriptomic Analysis Reveals the Molecular Mechanisms of Drought-Stress-Induced Decreases in Camellia sinensis Leaf Quality;Wang;Front. Plant Sci.,2016 4. Candidate regulators and target genes of drought stress in needles and roots of Norway spruce;Haas;Tree Physiol.,2021 5. Lignin biosynthesis and accumulation in response to abiotic stresses in woody plants;Han;For. Res.,2022
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