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Identification and Characterization of msf, a Novel Virulence Factor in Haemophilus influenzae
Jennifer M Kress-Bennett1,2, N Luisa Hiller1,3, Rory A Eutsey1
1Center for Genomic Sciences, Allegheny Singer Research Institute, Allegheny General Hospital, Pittsburgh, Pennsylvania, United States of America.
Abstract:
Haemophilus influenzae is an opportunistic pathogen. The emergence of virulent, non-typeable strains (NTHi) emphasizes the importance of developing new interventional targets. We screened the NTHi supragenome for genes encoding surface-exposed proteins suggestive of immune evasion, identifying a large family containing Sel1-like repeats (SLRs). Clustering identified ten SLR-containing gene subfamilies, each with various numbers of SLRs per gene. Individual strains also had varying numbers of SLR-containing genes from one or more of the subfamilies. Statistical genetic analyses of gene possession among 210 NTHi strains typed as either disease or carriage found a significant association between possession of the SlrVA subfamily (which we have termed, macrophage survival factor, msf) and the disease isolates. The PittII strain contains four chromosomally contiguous msf genes. Deleting all four of these genes (msfA1-4) (KO) resulted in a highly significant decrease in phagocytosis and survival in macrophages; which was fully complemented by a single copy of the msfA1 gene. Using the chinchilla model of otitis media and invasive disease, the KO strain displayed a significant decrease in fitness compared to the WT in co-infections; and in single infections, the KO lost its ability to invade the brain. The singly complemented strain showed only a partial ability to compete with the WT suggesting gene dosage is important in vivo. The transcriptional profiles of the KO and WT in planktonic growth were compared using the NTHi supragenome array, which revealed highly significant changes in the expression of operons involved in virulence and anaerobiosis. These findings demonstrate that the msfA1-4 genes are virulence factors for phagocytosis, persistence, and trafficking to non-mucosal sites.
Insights
Newly discovered macrophage survival factors (msf) in non-typeable Haemophilus influenzae (NTHi) are crucial for bacterial virulence. Deleting these msf genes significantly reduces NTHi
Area of Science:
- Microbiology
- Pathogen Biology
- Genetics
Background:
- Haemophilus influenzae is an opportunistic pathogen.
- Emergence of virulent, non-typeable strains (NTHi) necessitates new therapeutic targets.
- Surface-exposed proteins involved in immune evasion are key areas for investigation.
Purpose of the Study:
- To identify and characterize novel virulence factors in NTHi.
- To investigate the role of Sel1-like repeat (SLR) containing genes in NTHi pathogenesis.
- To determine the function of the SlrVA subfamily (macrophage survival factor, msf) in NTHi disease.
Main Methods:
- Screening the NTHi supragenome for SLR-containing genes.
- Statistical genetic analysis of gene possession in disease versus carriage isolates.
- Gene deletion and complementation studies in vitro and in vivo (chinchilla otitis media model).
- Transcriptional profiling using NTHi supragenome arrays.
Main Results:
- A significant association was found between the msf subfamily and NTHi disease isolates.
- Deletion of msfA1-4 genes drastically reduced bacterial phagocytosis and survival in macrophages.
- The msfA1-4 deletion mutant showed decreased fitness in vivo and lost the ability to invade the brain.
- Gene dosage of msf appears important for in vivo competitiveness.
Conclusions:
- The msfA1-4 genes are critical virulence factors for NTHi.
- These genes contribute to bacterial survival within macrophages, persistence, and invasion of non-mucosal sites.
- msf represents a promising new target for NTHi interventional strategies.
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