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Role of Glycosylation/Deglycolysation Processes in Francisella tularensis Pathogenesis
Monique Barel1, Alain Charbit1
1Sorbonne Paris Cité, Bâtiment Leriche, Université Paris DescartesParis, France; Institut National de la Santé et de la Recherche Médicale, Institut Necker-Enfants Malades, INSERM U1151 -Team 11, Pathogenesis of Systemic InfectionsParis, France; Centre National de la Recherche Scientifique, UMR8253Paris, France.
Abstract:
Francisella tularensis is able to invade, survive and replicate inside a variety of cell types. However, in vivo F. tularensis preferentially enters host macrophages where it rapidly escapes to the cytosol to avoid phagosomal stresses and to multiply to high numbers. We previously showed that human monocyte infection by F. tularensis LVS triggered deglycosylation of the glutamine transporter SLC1A5. However, this deglycosylation, specifically induced by Francisella infection, was not restricted to SLC1A5, suggesting that host protein deglycosylation processes in general might contribute to intracellular bacterial adaptation. Indeed, we later found that Francisella infection modulated the transcription of numerous glycosidase and glycosyltransferase genes in human macrophages and analysis of cell extracts revealed an important increase of N and O-protein glycosylation. In eukaryotic cells, glycosylation has significant effects on protein folding, conformation, distribution, stability, and activity and dysfunction of protein glycosylation may lead to development of diseases like cancer and pathogenesis of infectious diseases. Pathogenic bacteria have also evolved dedicated glycosylation machineries and have notably been shown to use these glycoconjugates as ligands to specifically interact with the host. In this review, we will focus on Francisella and summarize our current understanding of the importance of these post-translational modifications on its intracellular niche adaptation.
Insights
Francisella tularensis infection alters host cell protein glycosylation. This post-translational modification is crucial for the bacteria
Area of Science:
- Microbiology
- Cell Biology
- Biochemistry
Background:
- Francisella tularensis invades host cells, preferentially macrophages, escaping to the cytosol for replication.
- Host cell protein deglycosylation, specifically of SLC1A5, was previously observed during F. tularensis infection.
- Protein glycosylation impacts protein function, cellular processes, and disease pathogenesis.
Purpose of the Study:
- To review the role of protein glycosylation in Francisella tularensis intracellular adaptation.
- To explore how F. tularensis manipulates host glycosylation machinery for its benefit.
Main Methods:
- Analysis of gene expression for glycosidases and glycosyltransferases in infected macrophages.
- Examination of N- and O-protein glycosylation levels in host cell extracts.
Main Results:
- Francisella infection modulates the transcription of host glycosylation-related genes.
- A significant increase in N- and O-protein glycosylation was observed in infected cells.
- This suggests a broader role for host protein deglycosylation in bacterial adaptation.
Conclusions:
- Host protein glycosylation is significantly altered during Francisella tularensis infection.
- These modifications are likely essential for the bacteria's intracellular survival and replication.
- Understanding these host-pathogen interactions is key to developing therapeutic strategies.