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Using Microtiter Dish Radiolabeling for Multiple In Vivo Measurements Of Escherichia coli (p)ppGpp Followed by Thin Layer Chromatography
Published on: June 4, 2019
Iron limitation induces SpoT-dependent accumulation of ppGpp in Escherichia coli
Daniel Vinella1, Christian Albrecht, Michael Cashel
1Institut Jacques Monod (C.N.R.S., Université Paris 6, Université Paris 7), 2 place Jussieu, 75251 Paris Cedex 05, France. vinella@ijm.jussieu.fr
Abstract:
In Escherichia coli the beta-lactam mecillinam specifically inhibits penicillin-binding protein 2 (PBP2), a peptidoglycan transpeptidase essential for maintaining rod shape. We have previously shown that PBP2 inactivation results in a cell division block and that an increased concentration of the nucleotide ppGpp, effector of the RelA-dependent stringent response, confers mecillinam resistance and allows cells to divide as spheres in the absence of PBP2 activity. In this study we have characterized an insertion mutation which confers mecillinam resistance in wild-type and DeltarelA strains but not in DeltarelADeltaspoT strains, devoid of ppGpp. The mutant has an insertion in the fes gene, coding for enterochelin esterase. This cytoplasmic enzyme hydrolyses enterochelin-Fe(3+) complexes, making the scavenged iron available to the cells. We show that inactivation of the fes gene causes iron limitation on rich medium plates and a parallel SpoT-dependent increase of the ppGpp pool, as judged by the induction of the iron-regulated fiu::lacZ fusion and the repression of the stringently controlled P1(rrnB)::lacZ fusion respectively. We further show, by direct ppGpp assays, that iron starvation in liquid medium produces a SpoT-dependent increase of the ppGpp pool, strongly suggesting a role for iron in the balance of the two activities of SpoT, synthesis and hydrolysis of (p)ppGpp. Finally, we present evidence that ppGpp exerts direct or indirect positive control on iron uptake, suggesting a simple homeostatic regulatory circuit: iron limitation leads to an increased ppGpp pool, which increases the expression of iron uptake genes, thereby alleviating the limitation.
Insights
Iron limitation triggers increased ppGpp levels in E. coli, mediated by the SpoT enzyme. This rise in guanosine tetraphosphate (ppGpp) enhances iron uptake, creating a regulatory circuit to manage nutrient availability.
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Physiology
Background:
- Mecillinam targets penicillin-binding protein 2 (PBP2) in Escherichia coli, essential for maintaining cell shape.
- Elevated levels of the nucleotide guanosine tetraphosphate (ppGpp) confer resistance to mecillinam and alter cell morphology.
Purpose of the Study:
- To investigate a mutation conferring mecillinam resistance.
- To elucidate the role of iron availability and ppGpp in bacterial response.
Main Methods:
- Characterization of an insertion mutation in the fes gene.
- Analysis of ppGpp levels using reporter gene fusions (fiu::lacZ, P1(rrnB)::lacZ).
- Direct ppGpp assays and iron uptake measurements.
Main Results:
- A fes gene insertion mutation confers mecillinam resistance dependent on ppGpp.
- Inactivation of fes leads to iron limitation and a SpoT-dependent increase in ppGpp.
- Iron starvation increases ppGpp levels via SpoT activity, suggesting iron's role in ppGpp metabolism.
- ppGpp positively regulates iron uptake gene expression.
Conclusions:
- A novel regulatory circuit links iron availability to bacterial cell physiology via ppGpp.
- Iron homeostasis is maintained through a feedback loop involving ppGpp and iron uptake.
- SpoT enzyme plays a critical role in sensing iron levels and modulating ppGpp production.
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