Abstract
Long-term use of antibiotics has engendered a large number of resistant pathogens, which pose a serious threat to human health. Here, we investigated the mechanism of fusaricidin antibacterial activity toward Bacillus subtilis and characterized the pathways responsible for drug resistance. We found that σw, an extracytoplasmic function sigma factor, plays an important role in the resistance to fusaricidins during the initial 5 minutes of drug addition. Approximately 18 genes were induced more than 3-fold, of which 66.7% are known to be regulated by σw. Over the following 3 h, fusaricidins induced 194 genes more than three-fold, and most were associated with classes of antibiotic-responsive stimulons. Moreover, the fusaricidin treatment increased the catabolism of fatty and amino acids but strongly repressed glucose decomposition and gluconeogenesis. In summary, our data provide insight into the mechanism of fusaricidin activity, on which we based our suggested strategies for the development of novel antibiotic agents. © 2012 Yu et al.
Cite
CITATION STYLE
Yu, W. B., Yin, C. Y., Zhou, Y., & Ye, B. C. (2012). Prediction of the Mechanism of Action of Fusaricidin on Bacillus subtilis. PLoS ONE, 7(11). https://doi.org/10.1371/journal.pone.0050003
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.