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Gomez-Garzon, C.

Publications and source records attributed to Gomez-Garzon, C..

2 recordsLinked to original sources

Metaplasia Enables Stomach Colonization by Fusobacterium animalis

Infection with Helicobacter pylori is the major risk factor for gastric cancer worldwide; yet the exact mechanisms behind this link remain unclear. H. pylori-associated tissue changes often disrupt the gastric microbiome, enabling secondary gastric colonization by oral bacteria. Among these secondary colonizers, Fusobacterium species have documented associations with several gastrointestinal cancers. We found that both F. animalis and F. nucleatum invade cultured human gastric adenocarcinoma cells, but F. animalis exhibited higher adherence and invasion, and hypoxic conditions promoted higher bacterial survival. Both adherence and invasion were inhibited by exogenous GalNAc, a glycan commonly observed in membrane glycoproteins of adenocarcinoma cells, and a target of the fusobacterial adhesin Fap2. Using a mouse model of gastric metaplasia, we found that F. animalis colonized gastric tissue only after metaplasia onset, growing in multispecies biofilms in the mucus layer, while F. nucleatum colonized neither healthy nor metaplastic gastric tissue. Metaplasia led to upregulation of Gal-GalNAc in the stomach, and reduced gastric acidity allowed higher F. animalis loads in this model. By contrast, inflammation and the presence of H. pylori did not significantly influence stomach colonization by F. animalis. Overall, our data support a model in which H. pylori-induced metaplasia makes the stomach susceptible to secondary infection by another cancer-associated microbe, F. animalis.

microbiology↗

Structural Determinants of Vibrio cholerae FeoB Nucleotide Promiscuity

Ferrous iron (Fe2+) is required for the growth and virulence of many pathogenic bacteria, including Vibrio cholerae (Vc), the causative agent of the disease cholera. For this bacterium, Feo is the primary system that transports Fe2+ into the cytosol. FeoB, the main component of this system, is regulated by a soluble cytosolic domain termed NFeoB. Recent reanalysis has shown that NFeoBs can be classified as either GTP-specific or NTP-promiscuous, but the structural and mechanistic bases for these differences were not known. To explore this intriguing property of FeoB, we solved the X-ray crystal structures of VcNFeoB in both the apo and GDP-bound forms. Surprisingly, this promiscuous NTPase displayed a canonical NFeoB G-protein fold like GTP-specific NFeoBs. Using structural bioinformatics, we hypothesized that residues surrounding the nucleobase could be important for both nucleotide affinity and specificity. We then solved the X-ray crystal structures of N150T VcNFeoB in the apo and GDP-bound forms to reveal H-bonding differences surround the guanine nucleobase. Interestingly, isothermal titration calorimetry revealed similar binding thermodynamics of the WT and N150T proteins to guanine nucleotides, while the behavior in the presence of adenine nucleotides was dramatically different. AlphaFold models of VcNFeoB in the presence of ADP and ATP showed important conformational changes that contribute to nucleotide specificity among FeoBs. Combined, these results provide a structural framework for understanding FeoB nucleotide promiscuity, which could be an adaptive measure utilized by pathogens to ensure adequate levels of intracellular iron across multiple metabolic landscapes.

biochemistry↗