Affiliation:
1. College of Life Sciences, Henan Normal University, Xinxiang 453007, China
2. Henan International Joint Laboratory of Aquatic Toxicology and Health Protection, College of Life Science, Henan Normal University, Xinxiang 453007, China
Abstract
The WRKY gene family is ubiquitously distributed in plants, serving crucial functions in stress responses. Nevertheless, the structural organization and evolutionary dynamics of WRKY genes in cotton have not been fully elucidated. In this study, a total of 112, 119, 217, and 222 WRKY genes were identified in Gossypium arboreum, Gossypium raimondii, Gossypium hirsutum, and Gossypium barbadense, respectively. These 670 WRKY genes were categorized into seven distinct subgroups and unequally distributed across chromosomes. Examination of conserved motifs, domains, cis-acting elements, and gene architecture collectively highlighted the evolutionary conservation and divergence within the WRKY gene family in cotton. Analysis of synteny and collinearity further confirmed instances of expansion, duplication, and loss events among WRKY genes during cotton evolution. Furthermore, GhWRKY31 transgenic Arabidopsis exhibited heightened germination rates and longer root lengths under drought and salt stress. Silencing GhWRKY31 in cotton led to reduced levels of ABA, proline, POD, and SOD, along with downregulated expression of stress-responsive genes. Yeast one-hybrid and molecular docking assays confirmed the binding capacity of GhWRKY31 to the W box of GhABF1, GhDREB2, and GhRD29. The findings collectively offer a systematic and comprehensive insight into the evolutionary patterns of cotton WRKYs, proposing a suitable regulatory framework for developing cotton cultivars with enhanced resilience to drought and salinity stress.
Funder
financial aid of the Program for Innovative Research Team (in Science and Technology), University of Henan Province
Science and Technology R&D Program of Henan Province
Reference80 articles.
1. Gao, Y., Lu, Y., Wu, M., Liang, E., Li, Y., Zhang, D., Yin, Z., Ren, X., Dai, Y., and Deng, D. (2016). Ability to remove Na and retain K correlates with salt tolerance in two maize inbred lines seedlings. Front. Plant Sci., 7.
2. Plant signaling in biotic and abiotic stress;Peck;J. Exp. Bot.,2020
3. Systemic signaling during abiotic stress combination in plants;Zandalinas;Proc. Natl. Acad. Sci. USA,2020
4. Integration of reactive oxygen species and hormone signaling during abiotic stress;Devireddy;Plant J.,2021
5. Reproductive water supply is prioritized during drought in tomato;Brodribb;Plant Cell Environ.,2022