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Lopez Palomera, F.

Publications and source records attributed to Lopez Palomera, F..

2 recordsLinked to original sources

New genetic tools in Finegoldia magna identify a conserved adhesin required for the formation of stress-tolerant aggregates

The Gram-positive obligate anaerobe Finegoldia magna is a member of the healthy human microbiota, but also acts as an opportunistic pathogen to cause persistent, biofilm-associated infections. Despite its prevalence on the human host, little is known about F. magna biology or the mechanisms underlying its clinically relevant phenotypes, partly due to the lack of genetic tools. We address this gap by establishing genetic approaches for investigating gene function in F. magna, which we apply to identify genetic determinants of aggregate biofilm formation. We found that F. magna isolates are naturally competent, allowing for targeted chromosomal integration of linear DNA constructs via homologous recombination. Transformation frequency varied substantially among strains and was also affected by factors such as homologous flank length, DNA concentration, and incubation method. To identify genes that mediate aggregate biofilm formation, we used experimental evolution to select for F. magna mutants that had lost the ability to aggregate. This approach identified a conserved locus encoding a putative adhesin that we named FafA (Finegoldia adhesion factor A). Next, we applied targeted mutagenesis tools to show that deletion of fafA markedly reduced autoaggregation but does not impair other modes of biofilm formation, including surface attachment or aggregation during agitation. Finally, we demonstrate that FafA-mediated aggregation protects F. magna from antibiotic and oxidative stress. Together, these findings establish a genetic framework for mechanistic studies in F. magna and identify FafA as a conserved adhesin that promotes aggregation and stress tolerance in this anaerobic pathobiont.

microbiology↗

Host nutrients drive paired-substrate growth and distinct biofilm lifestyles in Finegoldia magna

Host-associated bacteria navigate complex nutrient landscapes where metabolites act as both growth substrates and cues that shape behavior. Yet, for most commensal and pathogenic bacteria, the nutrients and metabolisms that support persistence in the host remain unknown. Finegoldia magna is an obligate anaerobe that normally colonizes human skin and mucosal surfaces but also causes persistent biofilm-associated infections on implanted medical devices and in chronic wounds. Here, we developed a defined medium to investigate how nutrients influence F. magna physiology. We found that F. magna has a remarkably restricted metabolism that is specialized to use a limited set of host-relevant nutrients, including glycine, fructose, nucleosides, and betaine. Carbon-source screens showed glycine was the only substrate that supported growth as a sole carbon source. Instead, growth typically required two carbon substrates: a compatible electron donor-acceptor pair, suggesting redox balance imposes major constraints on its metabolism. To determine whether these constraints extend to host environments, we cultured F. magna in media derived from human chronic wound tissue. Despite its chemical complexity, F. magna displayed a similarly restricted metabolic profile, primarily consuming peptides, nucleosides, and betaine. These nutrients also directed biofilm behavior, with different metabolites promoting surface attachment or aggregation. Our findings show that although F. magna lacks metabolic flexibility, this opportunistic pathogen appears specialized to exploit host-derived products of skin physiology, tissue damage, and inflammation. This work suggests that host-associated bacteria with highly specialized metabolisms may be especially responsive to nutrient availability, linking local metabolite composition to key persistence behaviors like biofilm formation.

microbiology↗