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Label-Free Quantitative Proteomics Workflow for Discovery-Driven Host-Pathogen Interactions
Published on: October 20, 2020
A Pathogen and a Non-pathogen Spotted Fever Group Rickettsia Trigger Differential Proteome Signatures in Macrophages
Pedro Curto1,2,3,4, Cátia Santa2,3, Paige Allen4
1PhD Programme in Experimental Biology and Biomedicine, Center for Neuroscience and Cell Biology, University of Coimbra, Coimbra, Portugal.
Abstract:
We have previously reported that Rickettsia conorii and Rickettsia montanensis have distinct intracellular fates within THP-1 macrophages, suggesting that the ability to proliferate within macrophages may be a distinguishable factor between pathogenic and non-pathogenic Spotted fever group (SFG) members. To start unraveling the molecular mechanisms underlying the capacity (or not) of SFG Rickettsia to establish their replicative niche in macrophages, we have herein used quantitative proteomics by SWATH-MS to profile the alterations resulted by the challenge of THP-1 macrophages with R. conorii and R. montanensis. We show that the pathogenic, R. conorii, and the non-pathogenic, R. montanensis, member of SFG Rickettsia trigger differential proteomic signatures in macrophage-like cells upon infection. R. conorii specifically induced the accumulation of several enzymes of the tricarboxylic acid cycle, oxidative phosphorylation, fatty acid β-oxidation, and glutaminolysis, as well as of several inner and outer membrane mitochondrial transporters. These results suggest a profound metabolic rewriting of macrophages by R. conorii toward a metabolic signature of an M2-like, anti-inflammatory activation program. Moreover, several subunits forming the proteasome and immunoproteasome are found in lower abundance upon infection with both rickettsial species, which may help bacteria to escape immune surveillance. R. conorii-infection specifically induced the accumulation of several host proteins implicated in protein processing and quality control in ER, suggesting that this pathogenic Rickettsia may be able to increase the ER protein folding capacity. This work reveals novel aspects of macrophage-Rickettsia interactions, expanding our knowledge of how pathogenic rickettsiae explore host cells to their advantage.
Insights
Pathogenic Rickettsia conorii rewrites macrophage metabolism for replication, unlike non-pathogenic Rickettsia montanensis. This study reveals how Rickettsia manipulates host cells for survival and proliferation.
Area of Science:
- Microbiology
- Immunology
- Proteomics
Background:
- Spotted fever group (SFG) Rickettsia species exhibit distinct intracellular behaviors in macrophages.
- The capacity for macrophage proliferation may differentiate pathogenic from non-pathogenic SFG Rickettsia.
Purpose of the Study:
- To investigate the molecular mechanisms behind Rickettsia's ability to replicate within macrophages.
- To compare the proteomic alterations induced by pathogenic R. conorii and non-pathogenic R. montanensis in THP-1 macrophages.
Main Methods:
- Quantitative proteomics using SWATH-MS to profile protein expression changes.
- Infection of THP-1 macrophage-like cells with R. conorii and R. montanensis.
Main Results:
- R. conorii and R. montanensis induced differential proteomic signatures in macrophages.
- R. conorii promoted metabolic reprogramming towards an M2-like anti-inflammatory signature, upregulating enzymes in the TCA cycle, oxidative phosphorylation, fatty acid beta-oxidation, and glutaminolysis.
- Both species decreased proteasome and immunoproteasome subunits, potentially aiding immune evasion.
- R. conorii specifically increased host proteins involved in ER protein processing and quality control.
Conclusions:
- Pathogenic R. conorii significantly alters macrophage metabolism and function to facilitate its intracellular replication.
- Non-pathogenic R. montanensis elicits a different host response.
- Understanding these host-pathogen interactions provides insights into Rickettsia pathogenesis and immune evasion strategies.
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