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Akbari, M. S.

Publications and source records attributed to Akbari, M. S..

3 recordsLinked to original sources

Global genome analysis identifies glycolipids and lipoteichoic acid alanylation as contributors to Group B streptococcal diabetic wound infection

Individuals with diabetes frequently develop chronic, hyper-inflammatory, non-healing wounds, which are the leading cause of all non-traumatic amputations. Group B Streptococcus (GBS) is a prominent bacterium isolated from diabetic wound infections and in a murine model of diabetic wound infection, GBS stimulates an influx of neutrophils into the wound. Utilizing a transposon mutant screen, we identified 291 bacterial genes required for fitness during diabetic wound infection including enzymes involved in glycolipid biosynthesis and lipoteichoic acid (LTA) alanylation. GBS mutants lacking either LTA alanylation ({Delta}dltA) or all glycolipids ({Delta}iagB) are attenuated in a murine diabetic wound infection. GBS induces primary and secondary degranulation in primary human neutrophils and the {Delta}iagB mutant is significantly more susceptible to neutrophil killing by cationic antimicrobial peptides and reactive oxygen species than {Delta}dltA. Finally, we found that depletion of neutrophils led to significantly greater bacterial recovery, highlighting the importance of neutrophil defense during diabetic wound infection.

microbiology↗

Identification of Glyoxalase A in Group B Streptococcus and its contribution to methylglyoxal tolerance and virulence

Group B Streptococcus (GBS) is a Gram-positive pathobiont that commonly colonizes the gastrointestinal and lower female genital tracts but can cause sepsis and pneumonia in newborns and is a leading cause of neonatal meningitis. Despite the resulting disease severity, the pathogenesis of GBS is not completely understood, especially during the early phases of infection. To investigate GBS factors necessary for blood stream survival, we performed a transposon (Tn) mutant screen in our bacteremia infection model using a GBS mariner transposon mutant library previously developed by our group. We identified significantly underrepresented mutations in 623 genes that contribute to survival in the blood, including those encoding known virulence factors such as capsule, the {beta}-hemolysin, and inorganic metal ion transport systems. Most of the underrepresented genes have not been previously characterized or studied in GBS, including gloA and gloB, which are homologs for genes involved in methylglyoxal (MG) detoxification. MG is a byproduct of glycolysis and a highly reactive toxic aldehyde that is elevated in immune cells during infection. Here, we observed MG sensitivity across multiple GBS isolates and confirm that gloA contributes to MG tolerance and invasive GBS infection. We show specifically that gloA contributes to GBS survival in the presence of neutrophils and depleting neutrophils in mice abrogates the decreased survival and infection of the gloA mutant. The requirement of the glyoxalase pathway during GBS infection suggests that MG detoxification is important for bacterial survival during host-pathogen interactions.

microbiology↗

Secondary metabolite profiling of Pseudomonas aeruginosa isolates reveals rare genomic traits

Pseudomonas aeruginosa is a ubiquitous gram-negative opportunistic pathogen with remarkable phylogenetic and phenotypic variability. In this work, we applied classical molecular networking analysis to secondary metabolite profiling data from seven Pseudomonas aeruginosa strains, including five clinical isolates from the lung secretions of people with cystic fibrosis. Combined with whole-genome sequencing, we show that some P. aeruginosa isolates, including nmFLRO1, produce a previously unreported class of acyl putrescines, isolate SH3A does not produce di-rhamnolipids because its genome belongs to phylogenetic clade 5, and the secondary metabolite profile of isolate SH1B reflects a frame-shift mutation in the quorum sensing regulator rhlR. This study highlights for the first time that secondary metabolite profiling provides unique insight into genetic variation of P. aeruginosa. ImportanceSecondary metabolite profiling of Pseudomonas aeruginosa isolates can be used to identify rare genomic variants that impact quorum sensing and metabolite biosynthesis that underlie virulence.

microbiology↗