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Label-Free Quantitative Proteomics Workflow for Discovery-Driven Host-Pathogen Interactions
Published on: October 20, 2020
Proteomics of Mycobacterium Infection: Moving towards a Better Understanding of Pathogen-Driven Immunomodulation
Eik Hoffmann1, Arnaud Machelart1, Ok-Ryul Song1
1CNRS, INSERM, CHU Lille, U1019, UMR8204, Centre d'Infection et d'Immunité de Lille (CIIL), Institut Pasteur de Lille, Université de Lille, Lille, France.
Abstract:
Intracellular bacteria are responsible for many infectious diseases in humans and have developed diverse mechanisms to interfere with host defense pathways. In particular, intracellular vacuoles are an essential niche used by pathogens to alter cellular and organelle functions, which facilitate replication and survival. Mycobacterium tuberculosis (Mtb), the pathogen causing tuberculosis in humans, is not only able to modulate its intraphagosomal fate by blocking phagosome maturation but has also evolved strategies to successfully prevent clearance by immune cells and to establish long-term survival in the host. Mass spectrometry (MS)-based proteomics allows the identification and quantitative analysis of complex protein mixtures and is increasingly employed to investigate host-pathogen interactions. Major challenges are limited availability and purity of pathogen-containing compartments as well as the asymmetric ratio in protein abundance when comparing bacterial and host proteins during the infection. Recent advances in purification techniques and MS technology helped to overcome previous difficulties and enable the detailed proteomic characterization of infected host cells and their pathogen-containing vacuoles. Here, we summarize current findings of the proteomic analysis of Mycobacterium-infected host cells and highlight progress that has been made to study the protein composition of mycobacterial vacuoles. Current investigations focus on the pathogenicity during Mtb infection, which will allow to better understand pathogen-induced changes and immunomodulation of infected host cells. Consequently, future research in this field will have important implications on host response, pathogen survival, and persistence, induced adaptive immunity and metabolic changes of immune cells promoting the development of novel host-directed therapies in tuberculosis.
Insights
Mass spectrometry proteomics reveals how Mycobacterium tuberculosis manipulates host cells. Understanding these pathogen-host interactions is key to developing new tuberculosis treatments.
Area of Science:
- Microbiology
- Immunology
- Proteomics
Background:
- Intracellular bacteria like Mycobacterium tuberculosis (Mtb) cause infectious diseases by interfering with host defenses.
- Pathogens utilize intracellular vacuoles to alter host cell functions, aiding their replication and survival.
- Mtb blocks phagosome maturation and employs strategies for immune evasion and long-term host survival.
Purpose of the Study:
- To summarize proteomic analyses of Mtb-infected host cells and mycobacterial vacuoles.
- To highlight advancements in studying host-pathogen interactions using mass spectrometry.
- To understand Mtb pathogenicity, host cell immunomodulation, and host response.
Main Methods:
- Mass spectrometry (MS)-based proteomics for identifying and quantifying proteins in host-pathogen interactions.
- Advances in purification techniques for isolating pathogen-containing compartments.
- Proteomic characterization of infected host cells and mycobacterial vacuoles.
Main Results:
- Proteomics enables detailed analysis of protein composition in Mtb-infected cells and vacuoles.
- Overcoming challenges like limited compartment purity and asymmetric protein ratios.
- Current research focuses on Mtb pathogenicity and host cell immunomodulation.
Conclusions:
- Proteomic studies provide insights into Mtb's impact on host cells and immune responses.
- Understanding these interactions is crucial for pathogen survival and persistence mechanisms.
- Future research will inform the development of novel host-directed therapies for tuberculosis.
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