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Updated: Apr 21, 2026

Method for the Isolation of Francisella tularensis Outer Membranes
Published on: June 29, 2010
Importance of branched-chain amino acid utilization in Francisella intracellular adaptation
Gael Gesbert1, Elodie Ramond1, Fabiola Tros1
1Université Paris Descartes, Sorbonne Paris Cité, Paris, France INSERM U1151, CNRS UMR 8253, Institut Necker-Enfants Malades, Equipe 11, Pathogénie des Infections Systémiques, Paris, France.
Abstract:
Intracellular bacterial pathogens have adapted their metabolism to optimally utilize the nutrients available in infected host cells. We recently reported the identification of an asparagine transporter required specifically for cytosolic multiplication of Francisella. In the present work, we characterized a new member of the major super family (MSF) of transporters, involved in isoleucine uptake. We show that this transporter (here designated IleP) plays a critical role in intracellular metabolic adaptation of Francisella. Inactivation of IleP severely impaired intracellular F. tularensis subsp. novicida multiplication in all cell types tested and reduced bacterial virulence in the mouse model. To further establish the importance of the ileP gene in F. tularensis pathogenesis, we constructed a chromosomal deletion mutant of ileP (ΔFTL_1803) in the F. tularensis subsp. holarctica live vaccine strain (LVS). Inactivation of IleP in the F. tularensis LVS provoked comparable intracellular growth defects, confirming the critical role of this transporter in isoleucine uptake. The data presented establish, for the first time, the importance of isoleucine utilization for efficient phagosomal escape and cytosolic multiplication of Francisella and suggest that virulent F. tularensis subspecies have lost their branched-chain amino acid biosynthetic pathways and rely exclusively on dedicated uptake systems. This loss of function is likely to reflect an evolution toward a predominantly intracellular life style of the pathogen. Amino acid transporters should be thus considered major players in the adaptation of intracellular pathogens.
Insights
Francisella bacteria rely on the isoleucine transporter (IleP) for growth within host cells. This transporter is crucial for bacterial survival, phagosomal escape, and virulence, highlighting its role in pathogen adaptation.
Area of Science:
- Microbiology
- Pathogen Metabolism
- Bacterial Pathogenesis
Background:
- Intracellular bacteria adapt metabolism to host cell nutrients.
- Francisella utilizes specific transporters for nutrient acquisition.
- An asparagine transporter was previously identified for cytosolic growth.
Purpose of the Study:
- To characterize a novel major facilitator superfamily (MSF) transporter involved in isoleucine uptake in Francisella.
- To investigate the role of this isoleucine transporter (IleP) in intracellular bacterial multiplication and virulence.
- To understand the metabolic adaptation strategies of Francisella as an intracellular pathogen.
Main Methods:
- Identification and characterization of the IleP transporter.
- Construction of ileP deletion mutants in Francisella tularensis subsp. novicida and LVS strains.
- Assessment of intracellular bacterial growth in various cell types.
- Evaluation of bacterial virulence in a mouse model.
Main Results:
- The isoleucine transporter IleP is essential for intracellular multiplication of Francisella in host cells.
- Inactivation of IleP significantly impairs bacterial growth within cells and reduces virulence in vivo.
- IleP is critical for efficient phagosomal escape and cytosolic multiplication.
- Virulent Francisella strains have lost branched-chain amino acid biosynthesis, relying solely on uptake systems.
Conclusions:
- Isoleucine uptake via IleP is vital for Francisella intracellular survival and pathogenesis.
- Loss of amino acid biosynthesis pathways suggests evolutionary adaptation to an obligate intracellular lifestyle.
- Amino acid transporters are key players in the adaptation of intracellular pathogens.
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