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Elsherbini, A. M. A.

Publications and source records attributed to Elsherbini, A. M. A..

3 recordsLinked to original sources

Lipase-mediated detoxification of host-derived antimicrobial fatty acids by Staphylococcus aureus

Long-chain fatty acids with antimicrobial properties are abundant on the skin and mucosal surfaces, where they are essential to restrict the proliferation of opportunistic pathogens such as Staphylococcus aureus. These antimicrobial fatty acids (AFAs) elicit bacterial adaptation strategies, which have yet to be fully elucidated. Characterizing the pervasive mechanisms used by S. aureus to resist AFAs could open new avenues to prevent pathogen colonization. Here, we identify the S. aureus lipase Lip2 as a novel resistance factor against AFAs. Lip2 detoxifies AFAs via esterification with cholesterol. This is reminiscent of the activity of the fatty acid-modifying enzyme (FAME), whose identity has remained elusive for over three decades. In vitro, Lip2-dependent AFA-detoxification was apparent during planktonic growth and biofilm formation. Our genomic analysis revealed that prophage-mediated inactivation of Lip2 was more common in blood and nose isolates than in skin strains, suggesting a particularly important role of Lip2 for skin colonization. Accordingly, in a mouse model of S. aureus skin colonization, bacteria were protected from sapienic acid - a human-specific AFA - in a cholesterol- and lipase-dependent manner. These results suggest Lip2 is the long-sought FAME that exquisitely manipulates environmental lipids to promote bacterial growth. Our data support a model in which S. aureus exploits and/or exacerbates lipid disorders to colonize otherwise inhospitable niches.

microbiology↗

Targeting of the human nasal microbiota by secretory IgA antibodies

The human nasal microbiome is critical for health and disease, since it is associated with the occurrence of respiratory disorders and hosting of opportunistic pathogens. The host therefore protects this vulnerable mucosal barrier from infection and maintains homeostasis of the microbiota through various mechanisms, including the production of secretory IgA (sIgA) antibodies. However, we currently lack a comprehensive understanding of how sIgA affects the nasal microbiota. Through IgA-seq analysis of nasal microbiome samples and sIgA deposition experiments using nasal sIgA from healthy volunteers, we identified which bacterial genera and species are targeted by sIgA on the level of the individual host. We observed that the amount of sIgA secreted into the nasal mucosa by the host varied substantially and was negatively correlated with the bacterial density. The interaction between mucosal sIgA antibodies and the nasal microbiome was highly individual, and was not dependent on the microbiome composition, or the age or gender of the host. Importantly, we showed that for the clinically relevant opportunistic pathogen S. aureus, sIgA reactivity was in part the result of epitope-independent interaction of sIgA with the antibody binding protein SpA through binding of sIgA Fab regions. This study thereby offers a first comprehensive insight of targeting of nasal microbiota by sIgA antibodies, which may help to better understand the shaping and homeostasis of the nasal microbiome by the host and offer new targets for intervention in disease-associated microbiota.

microbiology↗

Horizontal transfer of bacteriocin biosynthesis genes requires metabolic adaptation to improve compound production and cellular fitness

Biosynthetic gene clusters (BGCs) encoding the production of bacteriocins are widespread amongst bacterial isolates and are important genetic determinants of competitive fitness within a given habitat. Staphylococci produce a tremendous diversity of compounds and the corresponding BGCs are frequently associated with mobile genetic elements, suggesting gain and loss of biosynthetic capacity. Pharmaceutical biology has shown that compound production in heterologous hosts is often challenging and many BGC recipients produce initially low compound amounts or show reduced growth rates. To assess whether transfer of BGCs between closely related S. aureus strains can be instantly effective or requires elaborate metabolic adaptation, we investigated the intra species transfer of a BGC encoding the ribosomally synthesized and post-translationally modified peptide (RiPP) micrococcin P1 (MP1). We found that acquisition of the BGC by S. aureus RN4220 enabled immediate MP1 production but also imposed a metabolic burden, which was relieved after prolonged cultivation by adaptive mutation. We used a multiomics approach to study this phenomenon and found adaptive evolution to select for strains with increased activity of the tricarboxylic acid cycle (TCA), which enhanced metabolic fitness and levels of compound production. Metabolome analysis revealed increases of central metabolites including citrate and -ketoglutarate in the adapted strain, suggesting metabolic adaptation to overcome the BGC-associated growth defects. Our results indicate that BCG acquisition requires genetic and metabolic predispositions allowing the integration of bacteriocin production into the cellular metabolism. Inappropriate metabolic characteristics of recipients can entail physiological burdens, negatively impacting the competitive fitness of recipients within natural bacterial communities. ImportanceHuman microbiomes are critically associated with human health and disease. Importantly, pathogenic bacteria can hide in human associated communities and can cause disease when the composition of the community becomes dysbalanced. Bacteriocin producing commensals are able to displace pathogens from microbial communities, suggesting that their targeted introduction in human microbiomes might prevent pathogen colonisation and infection. However, in view of future probiotic approaches, strains are needed that produce high levels of bioactive compounds and retain cellular fitness within mixed bacterial communities. Our work offers insights into the metabolic burdens associated with the production of the bacteriocin micrococcin P1 and highlights evolutionary strategies that increase cellular fitness in the context of production. Most likely metabolic adaptations are broadly relevant for bacteriocin producers and need to be considered for the future development of effective microbiome editing strategies.

microbiology↗