Lipids play a crucial role in the initiation and establishment of plant defense responses, however, the mechanisms underlying the links between lipid dynamics and downstream transcriptional events against pathogens remain largely unclear. Here, we conducted a lipidomic analysis to investigate the lipid profile of Arabidopsis seedlings in response to Verticillium dahliae. Our results revealed that V. dahliae infection triggered profound lipid metabolism and transcriptional reprogramming in Arabidopsis. Comprehensive profiling showed extensive remodeling of lipid-associated metabolic pathways, characterized by the significant accumulation of lysophospholipids (LysoPLs) in infected seedlings. This lipid perturbation was mechanistically linked to the transcriptional activation of phospholipase A (PLA) coding genes such as PLA2A, PLA-Iβ2 and PLP5. Genetic evidence has demonstrated that these PLAs are required for disease resistance because their loss-of-function mutants exhibit incresed susceptibility to V. dahliae and compromise the expression of defense-related genes. Furthermore, the PLAs acted as the central regulatory nodes in modulating multiple defense-related signal axes, including SA, JA and ROS, as well as differentially regulating the expression of defense-related genes in response to LysoPLs signal. Together, these findings uncovered an integrated lipid-based and transcription regulatory network, wherein PLA-mediated LysoPLs dynamics served as a critical determinant of plant immunity against V. dahliae.
Fengning Wang, Minying Xie, Xueping Xu et al.· Journal of Experimental Bota...· 0 citations
Simple Summary Cotton is one of the world’s most important fiber and oil crops, but drought and salty soils strongly reduce its growth and yield. Enzymes of the BXL family help remodel plant cell walls and are thought to contribute to a plant’s ability to cope with environmental stress. In this study, we searched the cotton genome and identified 25 BXL genes, and we examined their evolutionary relationships, gene structures, and the regulatory regions that control their activity. We then tested how these genes respond when cotton seedlings are exposed to drought-like and salt-like conditions. Several BXL genes were strongly activated under both treatments, and three in particular were identified as central “hub” genes within networks of stress-responsive genes. These results indicate that specific BXL genes may help cotton survive dry or salty conditions, and they provide candidate targets for future efforts to improve cotton’s tolerance to drought and salinity. Such improvements could help stabilize cotton production under increasingly challenging environmental conditions.
Zhenzhen Wei, An-Xing Zhu, Yang Liu et al.· Biology· 0 citations