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Goncalves, O.

Publications and source records attributed to Goncalves, O..

3 recordsLinked to original sources

Highly effective modulator therapy hinders the emergence of hyperbiofilm variants of Pseudomonas aeruginosa PA14 grown in a cystic fibrosis lung model

Pseudomonas aeruginosa is an opportunistic pathogen that often adopts persistent phenotypes -- such as biofilm formation-- that are associated with chronic infections including those observed in the cystic fibrosis (CF) lung Recently, highly effective modulator therapy (HEMT) such as elexacaftor/tezacaftor/ivacaftor (ETI) has significantly improved the quality of life of people with CF (pwCF). Yet a potential direct impact of ETI on the physiology of P. aeruginosa during growth to a remodeled CF lung environment has remained unexplored. To address this, we conducted an experimental evolution using P. aeruginosa PA14 grown in CF-like conditions in the presence or absence of ETI. We observed a marked reduction in biofilm formation and in the number of small colony variants (SCVs) for P. aeruginosa populations evolved under ETI treatment. Also, sequencing of specific evolved clones exhibiting distinct morphotypes revealed two major observations: (i) P. aeruginosa-evolved communities exposed to ETI retained a wild type-like morphotype and, (ii) P. aeruginosa populations evolved in the absence of ETI adopted a SCV-like phenotype with mutations acquired in the Wsp chemosensory pathway. Furthermore, analysis of evolved populations revealed that ETI treatment likely modulates c-di-GMP pools by driving mutations in an enzyme catalyzing the degradation of this second messenger. Overall, our work suggests that ETI has the potential to hinder the acute to chronic biofilm transition of P. aeruginosa thereby limiting the emergence of variants typically associated with long-term CF lung colonization.

microbiology↗

Micronuclear collapse under oxidative stress drives amphisome-mediated export of DNA in Parkinson disease

The diversity of extracellular vesicle (EV) subpopulations and their impact on intercellular communication are increasingly recognized, but how organelle dysfunction shapes EV content in neurodegenerative diseases remains unclear. Mitochondrial and lysosomal functional defects are hallmarks of Parkinsons disease (PD). Here we uncover a novel pathway linking this dysfunctional axis to EV remodeling and immune activation. We show that mitochondrial reactive oxygen species (ROS) induce genomic instability and micronuclei formation in PD fibroblasts, with ruptured micronuclei being sequestered into amphisomes and exported through small EVs. These EVs are enriched in oxidized mitochondrial and nuclear DNA, which potently stimulate microglial inflammatory responses. Mechanistically, this work identifies micronuclei not as passive byproducts of genome instability but as active intermediates in EV cargo loading. Importantly, treatment with the mitochondria-targeted antioxidant AntiOxCIN4 elicited a mitohormetic response, enhancing ATM-mediated DNA damage repair, restoring mitochondrial dynamics, and improving lysosomal function. This reduced the incorporation of oxidized DNA into EVs and blunted their pro-inflammatory activity. Together, our findings reveal a previously unrecognized mechanism by which mitochondrial-lysosomal dysfunction drives the release of DNA-enriched EVs that fuel neuroinflammation in a neurodegenerative context. Targeting mitochondrial quality control to limit oxidized cargo in EVs emerges as a potential strategy to mitigate early inflammatory events in PD.

neuroscience↗

Metabolic connections between folate and peptidoglycan pathways in Pseudomonas aeruginosa inform rational design of a dual-action inhibitor

Peptidoglycan is an important bacterial macromolecule that confers cell shape and structural integrity, and a key antibiotic target. The synthesis and turnover of peptidoglycan are carefully coordinated with other cellular processes and pathways. Although there are established connections between peptidoglycan and DNA replication or outer membrane biosynthesis, connections between peptidoglycan and folate metabolism are comparatively unexplored. Folate is an essential cofactor for bacterial growth and required for the synthesis of many important metabolites. Here we show that inhibition of folate synthesis in the important Gram-negative pathogen Pseudomonas aeruginosa has downstream effects on peptidoglycan metabolism and integrity. Folate inhibitors reduced expression of the AmpC {beta}-lactamase through perturbation of peptidoglycan recycling, potentiating the activity of {beta}-lactams normally cleaved by that resistance enzyme. Folate inhibitors also synergized with fosfomycin, which inhibits MurA - the first committed step in peptidoglycan synthesis - resulting in dose-dependent formation of round cells that underwent explosive lysis.The insights from this work were used to design a dual-active inhibitor that overcomes NDM-1-mediated meropenem resistance and synergizes with the folate inhibitor, trimethoprim. This work shows that folate and peptidoglycan metabolism are intimately connected and offers new opportunities to exploit this relationship in strategies to overcome antibiotic resistance in Gram-negative pathogens.

microbiology↗