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Generation and Multi-phenotypic High-content Screening of Coxiella burnetii Transposon Mutants
Published on: May 13, 2015
Altering lipid droplet homeostasis affects Coxiella burnetii intracellular growth
Minal Mulye1, Brianne Zapata1,2, Stacey D Gilk1
1Department of Microbiology and Immunology, Indiana University School of Medicine, Indianapolis, Indiana, United States of America.
Abstract:
Coxiella burnetii is an obligate intracellular bacterial pathogen and a causative agent of culture-negative endocarditis. While C. burnetii initially infects alveolar macrophages, it has also been found in lipid droplet (LD)-containing foamy macrophages in the cardiac valves of endocarditis patients. In addition, transcriptional studies of C. burnetii-infected macrophages reported differential regulation of the LD coat protein-encoding gene perilipin 2 (plin-2). To further investigate the relationship between LDs and C. burnetii, we compared LD numbers using fluorescence microscopy in mock-infected and C. burnetii-infected alveolar macrophages. On average, C. burnetii-infected macrophages contained twice as many LDs as mock-infected macrophages. LD numbers increased as early as 24 hours post-infection, an effect reversed by blocking C. burnetii protein synthesis. The observed LD accumulation was dependent on the C. burnetii Type 4B Secretion System (T4BSS), a major virulence factor that manipulates host cellular processes by secreting bacterial effector proteins into the host cell cytoplasm. To determine the importance of LDs during C. burnetii infection, we manipulated LD homeostasis and assessed C. burnetii intracellular growth. Surprisingly, blocking LD formation with the pharmacological inhibitors triacsin C or T863, or knocking out acyl-CoA transferase-1 (acat-1) in alveolar macrophages, increased C. burnetii growth at least 2-fold. Conversely, preventing LD lipolysis by inhibiting adipose triglyceride lipase (ATGL) with atglistatin almost completely blocked bacterial growth, suggesting LD breakdown is essential for C. burnetii. Together these data suggest that maintenance of LD homeostasis, possibly via the C. burnetii T4BSS, is critical for bacterial growth.
Insights
Coxiella burnetii infection increases lipid droplets (LDs) in macrophages, dependent on the Type 4B Secretion System. Blocking LD breakdown hinders bacterial growth, suggesting LD homeostasis is critical for C. burnetii.
Area of Science:
- Bacteriology
- Cell Biology
- Infectious Diseases
Background:
- Coxiella burnetii causes culture-negative endocarditis and infects macrophages.
- C. burnetii resides in foamy macrophages containing lipid droplets (LDs).
- Perilipin 2 (plin-2), an LD coat protein, is differentially regulated during C. burnetii infection.
Purpose of the Study:
- To investigate the relationship between LDs and C. burnetii infection.
- To determine the role of LD homeostasis in C. burnetii intracellular growth.
Main Methods:
- Fluorescence microscopy to quantify LDs in C. burnetii-infected macrophages.
- Inhibition of C. burnetii protein synthesis and Type 4B Secretion System (T4BSS).
- Pharmacological inhibition of LD formation and lipolysis, and genetic knockout of acyl-CoA transferase-1 (acat-1).
Main Results:
- C. burnetii infection doubled LD numbers in macrophages, dependent on the T4BSS.
- Blocking LD formation increased C. burnetii growth.
- Inhibiting LD breakdown (lipolysis) significantly blocked bacterial growth.
Conclusions:
- LD accumulation is manipulated by C. burnetii via its T4BSS.
- LD breakdown is essential for C. burnetii intracellular growth.
- Maintaining LD homeostasis is critical for C. burnetii survival and proliferation.
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