Abstract
Background: Present technology uses mostly chimeric proteins as regulators and hormones or antibiotics as signals to induce spatial and temporal gene expression. Methodology/Principal Findings: Here, we show that a chromosomally integrated yeast 'Leu3p-a-IRM' system constitutes a ligand-inducible regulatory "off-on" genetic switch with an extensively dynamic action area. We find that Leu3p acts as an active transcriptional repressor in the absence and as an activator in the presence of a-isopropylmalate (a-IRM) in primary fibroblasts isolated from double transgenic mouse embryos bearing ubiquitously expressing Leu3p and a Leu3p regulated GFP reporter. In the absence of the branched amino acid biosynthetic pathway in animals, metabolically stable α-IPM presents an EC50 equal to 0.8837 mM and fast "OFF-ON" kinetics (t50ON = 43 min, t50OFF = 2.18 h), it enters the cells via passive diffusion, while it is non-toxic to mammalian cells and to fertilized mouse eggs cultured ex vivo. Conclusions/Significance: Our results demonstrate that the 'Leu3p-α-IPM' constitutes a simpler and safer system for inducible gene exprssion in biomedical applications. © 2010 Poulou et al.
Cite
CITATION STYLE
Poulou, M., Bell, D., Bozonelos, K., Alexiou, M., Gavalas, A., Lovell-Badge, R., & Remboutsika, E. (2010). Development of a chromosomally integrated metabolite-inducible leu3p-α-IPM “OFF-ON” gene switch. PLoS ONE, 5(8). https://doi.org/10.1371/journal.pone.0012488
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.