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Applying Fluorescence Resonance Energy Transfer FRET to Examine Effector Translocation Efficiency by Coxiella burnetii during siRNA Silencing
Published on: July 6, 2016
Identification of ElpA, a Coxiella burnetii pathotype-specific Dot/Icm type IV secretion system substrate
Joseph G Graham1, Caylin G Winchell1, Uma M Sharma1
1Department of Microbiology and Immunology, University of Arkansas for Medical Sciences, Little Rock, Arkansas, USA.
Abstract:
Coxiella burnetii causes human Q fever, a zoonotic disease that presents with acute flu-like symptoms and can result in chronic life-threatening endocarditis. In human alveolar macrophages, C. burnetii uses a Dot/Icm type IV secretion system (T4SS) to generate a phagolysosome-like parasitophorous vacuole (PV) in which to replicate. The T4SS translocates effector proteins, or substrates, into the host cytosol, where they mediate critical cellular events, including interaction with autophagosomes, PV formation, and prevention of apoptosis. Over 100 C. burnetii Dot/Icm substrates have been identified, but the function of most remains undefined. Here, we identified a novel Dot/Icm substrate-encoding open reading frame (CbuD1884) present in all C. burnetii isolates except the Nine Mile reference isolate, where the gene is disrupted by a frameshift mutation, resulting in a pseudogene. The CbuD1884 protein contains two transmembrane helices (TMHs) and a coiled-coil domain predicted to mediate protein-protein interactions. The C-terminal region of the protein contains a predicted Dot/Icm translocation signal and was secreted by the T4SS, while the N-terminal portion of the protein was not secreted. When ectopically expressed in eukaryotic cells, the TMH-containing N-terminal region of the CbuD1884 protein trafficked to the endoplasmic reticulum (ER), with the C terminus dispersed nonspecifically in the host cytoplasm. This new Dot/Icm substrate is now termed ElpA (ER-localizing protein A). Full-length ElpA triggered substantial disruption of ER structure and host cell secretory transport. These results suggest that ElpA is a pathotype-specific T4SS effector that influences ER function during C. burnetii infection.
Insights
A novel Coxiella burnetii protein, ElpA, disrupts endoplasmic reticulum function. This pathotype-specific effector influences host cell transport, offering insights into Q fever pathogenesis.
Area of Science:
- Microbiology
- Cell Biology
- Pathogenesis
Background:
- Coxiella burnetii causes Q fever, utilizing a Dot/Icm type IV secretion system (T4SS) to establish intracellular replication vacuoles.
- The T4SS translocates effector proteins into host cells, modulating cellular processes like apoptosis and vacuole formation.
- The functions of most of the over 100 identified C. burnetii Dot/Icm substrates remain unknown.
Purpose of the Study:
- To identify and characterize novel Dot/Icm substrates of Coxiella burnetii.
- To investigate the function and cellular localization of a newly identified effector protein, ElpA.
Main Methods:
- Identification of a novel Dot/Icm substrate-encoding gene (CbuD1884) absent in the Nine Mile reference strain.
- Analysis of protein domains, including transmembrane helices and coiled-coil regions.
- Ectopic expression in eukaryotic cells to determine protein localization and cellular effects.
- Assessment of endoplasmic reticulum (ER) structure and secretory transport disruption.
Main Results:
- A novel Dot/Icm substrate, ElpA, was identified, encoded by CbuD1884, which is absent in the reference strain.
- ElpA contains transmembrane helices and localizes to the ER upon ectopic expression.
- Full-length ElpA expression caused significant disruption of ER structure and host cell secretory transport.
- ElpA is secreted via the T4SS, with its N-terminal portion localizing to the ER.
Conclusions:
- ElpA is a pathotype-specific Dot/Icm substrate that targets the host ER.
- ElpA disrupts ER structure and secretory transport, suggesting a role in modulating host cell function during C. burnetii infection.
- This finding provides new insights into the molecular mechanisms of Q fever pathogenesis.
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