bioRxiv · 10.1101/2024.03.22.586261
Signal-independent activation reveals two-component regulatory networks
Abstract
Each bacterial species has specific regulatory systems to control physiology, adaptation, and host interactions. One challenge posed by this diversity is to define the evolving gene regulatory networks. This study aims to characterise two-component systems (TCS) in Streptococcus agalactiae, the main cause of neonatal meningitis. Here we demonstrate signal-independent activation of signalling pathways by systematically targeting the conserved mechanism of phosphatase activity of the 14 histidine kinases of the two main TCS families. Transcriptomic analysis resolves most pathways with high resolution, encompassing specialized, connected, and global regulatory systems. The activated network notably reveals the connection between CovRS and SaeRS signaling through the adhesin PbsP, linking the main regulators of host interactions to balance pathogenicity. Additionally, constitutive activation of the BceRS system reveals its role in cell envelope homeostasis beyond antimicrobial resistance. Overall, this study demonstrates the generalizability and versatility of TCS genetic activation to uncover regulatory logics and biological processes.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Claverie, C., Coppolino, F., Mazzuoli, M.-V., Guyonnet, C., Jacquemet, E., Legendre, R., Sismeiro, O., De Gaetano, G. V., Teti, G., Trieu-Cuot, P., Tazi, A., Beninati, C., Firon, A.. 2024-03-24. Signal-independent activation reveals two-component regulatory networks. https://doi.org/10.1101/2024.03.22.586261
Cite the original work for its findings. Save a collection to share your selection of sources.