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Asghar, F.

Publications and source records attributed to Asghar, F..

3 recordsLinked to original sources

The lipid A acylation pattern of Coxiella burnetii prevents detection and clearance by the non-canonical inflammasome in primary murine macrophages

C. burnetii is a Gram-negative, obligate intracellular bacterium and the causative agent of Q fever. The disease is either asymptomatic or manifests as a mild flu-like illness, but pneumonia or hepatitis might also occur. In most cases, the infection is self-limiting and the pathogen is cleared. In a small percentage of patients, the host immune system fails to eliminate the pathogen, potentially allowing the development of chronic Q fever months or even years after primary infection. The elimination of the bacteria, and thereby prevention of disease onset, would require an inflammatory response. Inflammasomes are multimeric protein complexes that induce a pro-inflammatory response to combat pathogens. Here we show that C. burnetii fails to induce a strong activation of the non-canonical inflammasome, independently of its type IVB secretion system. However, the pathogen is unable to prevent external activation of the non-canonical inflammasome, which subsequently results in a reduction of the bacterial burden. Importantly, the acylation pattern of lipid A was identified to be involved in avoiding the activation of the non-canonical inflammasome. C. burnetii harbors a tetra-acylated lipid A. Modification of the C. burnetii lipid A to penta-/hexa-acylation resulted in increased secretion of IL1{beta} and reduced bacterial load. Together, these results suggest that the acylation pattern of lipid A constitutes an important immune evasion strategy of C. burnetii by failing to activate the non-canonical inflammasome. In addition, evidence was provided that oxygen limitation arrests activation of the NLRP3 inflammasome in murine BMDM, which might prevent efficient elimination of bacteria under hypoxic conditions, such as in granulomas or in inflamed tissue. AUTHOR SUMMARYSeveral pathogens have evolved mechanisms to persist in the human host, which allows reoccurring or late onset of infection. The human innate immune system has therefore established several pathways, including the inflammasome, to prevent bacterial survival. Here we show that the obligate intracellular pathogen Coxiella burnetii, the causative agent of Q fever, prevents detection by the non-canonical NLRP3 inflammasome. This is mediated by the acylation pattern of its lipid A. Altering this acylation pattern allows activation of the inflammasome and, consequently, improved clearance of the pathogen. This information opens new avenues to target the immune response to C. burnetii infection with the goal to eliminate the bacteria and thereby prevent disease.

immunology↗

Coxiella burnetii infects osteoclasts and alters their differentiation and function in a type IV secretion system-dependent manner

1Chronic Q fever is caused by persistent infection with the Gram-negative bacterium Coxiella burnetii. The mechanisms underlying this persistence remain elusive, but the presence of the bacteria in the bone marrow of C. burnetii-infected patients has been demonstrated. Therefore, we investigated the potential role of osteoclasts, the bone-resorbing cells, in harboring C. burnetii during the infection. The histological analysis of bones from a murine model of Q fever revealed the presence of C. burnetii inside osteoclasts. In vitro infection assays confirmed that osteoclasts can be infected with C. burnetii and supported bacterial replication in a type IVB secretion system (T4BSS)-dependent manner. Wild-type C. burnetii infection inhibited osteoclast differentiation and bone-resorbing activity, while the T4BSS mutant enhanced the differentiation and bone-degrading function of osteoclasts. Taken together, our findings identify osteoclasts as a potential host cell for C. burnetii, opening new perspectives on mechanisms that may underlie chronic Q fever. Additionally, infection-induced alterations in osteoclast function raise the possibility of alterations of the bone structure in affected patients.

immunology↗

Coxiella burnetii establishes a small cell variant (SCV)-like persistent form to survive adverse intracellular conditions

Coxiella burnetii is an obligate intracellular zoonotic bacterium that causes Q fever. Infections can be either acute or chronic. Of note, chronic Q fever develops months or years after primary infection without clinical symptoms, suggesting bacterial persistence. Yet, information about the induction, regulation and/or location of C. burnetii persistence is rare. We have shown that during infection of primary macrophages, hypoxia-induced citrate limitation results in inhibition of C. burnetii replication without affecting viability. Here, primary murine macrophages were infected with C. burnetii under normoxic (21% O2) and hypoxic (0.5% O2) conditions to clarify how C. burnetii survives this environmental stress condition. Our data suggests that under hypoxic conditions C. burnetii does not undergo stringent response, but instead enters a SCV-like form, which is smaller in size and possesses condensed chromatin material and a thicker cell wall. These changes have functional consequences, as the SCV-like persistent form of C. burnetii is more infectious, more tolerant to antibiotics and less sensitive to clearance by IFN{gamma} activated macrophages. Hence, the development of the SCV-like persistent form of C. burnetii prevents elimination of the pathogen, which in turn allows the pathogen to thrive once the conditions again change in its favor.

microbiology↗