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Odile B Harrison

Publications and source records attributed to Odile B Harrison.

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Genomic analysis of Neisseria gonorrhoeae strains from disseminated, urogenital, and rectal infections reveals differences in genes for iron acquisition and type IV secretion.

Neisseria gonorrhoeae, an obligate human pathogen, causes the sexually transmitted infection gonorrhea. Delayed treatment or immunodeficiencies can result in a higher risk of disseminated gonococcal infection (DGI), where the infection spreads to normally sterile anatomic sites, including the bloodstream. The gonococcus produces TonB-dependent transporters (TdTs) to sequester metals from host nutritional immunity proteins. These transporters are critical for survival and are important virulence factors. We characterized genes encoding iron-regulated TdTs in the genomes of strains from disseminated (n = 47), urogenital (n = 86), and rectal (n = 12) infections. We found that gonococcal strains isolated from DGI infections were more likely to express a functional hemoglobin-iron utilization operon (hpuAB wild type and phase on [32%, n = 15/47]), to harbor nonsense mutations in tdfF (57%, n = 27/47), and were predicted to express low levels of fetA (43%, n = 20/47) when compared to strains from urogenital or rectal infections. In contrast, gonococcal strains from localized urogenital infections were associated with a higher frequency of functional tdfF genes (66%, n = 57/86) and high fetA expression (30%, n = 26/86). Additionally, strains from rectal infections were more frequently found to have high fetA expression (33%, n = 4/12) and a functional tdfF (75%, n = 9/12). Furthermore, we identified associations between the presence and absence of tdfF and the gonococcal genetic island, which encodes a type IV secretion system. These findings inform our evolving understanding of the molecular mechanisms underlying disseminated gonococcal infections.IMPORTANCEGonorrhea is an emerging, global health threat, with over 100 million new cases each year. Delayed treatment, immunosuppressive medications, and immunodeficiencies can contribute to the spread of infection to the blood, presenting as a serious disseminated manifestation. With rising antimicrobial resistance and no licensed preventative vaccine, untreatable gonorrhea is a possibility in the near future. TonB-dependent transporters are highly conserved and vital for metal acquisition and survival, making them promising targets for therapeutic or preventative strategies. Associated surface-exposed lipoproteins display greater sequence variation but contribute to metal acquisition. We analyzed the genes encoding TonB-dependent transporters and associated lipoproteins from strains associated with distinct disease manifestations. We conclude that gonococci isolated from disseminated, urogenital, and rectal sites demonstrate different phase and allelic variations in genes encoding iron transport systems and the gonococcal genetic island.

Humans

Investigating genetic, antigenic, and structural diversity in the Neisseria gonorrhoeae outer membrane protein, PorB: implications for vaccine design.

UNLABELLED: Vaccines targeting Neisseria gonorrhoeae are needed to reduce disease burden and help address the problem of antimicrobial resistance, with an understanding of relationships between gonococcal genetics and molecules influencing diversity, infection, and the immune response essential for developing effective vaccine formulations. Whole-genome sequence data can be used to investigate these relationships among thousands of gonococcal isolates, allowing the study of antigenic diversity on a population scale. Such analyses typically examine antigenic diversity occurring in complete protein sequences, generating mean diversity indices and phylogenetic analyses that can inform on vaccine potential; however, to detect and measure the immune responses elicited, epitope characterization within an antigen helps guide vaccine formulations, with epitopes commonly located in surface-exposed regions of a protein. Here, we analyzed the genetic diversity of the major gonococcal antigen, PorB, in WGS from 22,227 N. gonorrhoeae isolates. We characterized the diversity of all eight surface-exposed outer membrane loops, or variable regions (VRs), and generated a PorB VR subtyping scheme to facilitate the global and temporal detection of circulating PorB subtypes. These analyses identified the presence of dominant VR combinations that persisted over time, indicative of (i) epistatic interactions between VRs and (ii) positive selection. Strain-specific, anti-PorB IgG responses directed toward distinct VR subtypes were detected in sera obtained from participants vaccinated with 4CMenB. The deconstruction of PorB into each surface-exposed loop provides a powerful approach for evaluating vaccine candidates: the methods used here allow immunodominant regions to be detected, which is invaluable for further vaccine investigations. IMPORTANCE: In the context of rising global gonorrhea cases, the development of vaccines becomes a priority; however, N. gonorrhoeae antigenic diversity and its ability to evade the immune system complicate vaccine development. This study characterizes the genetic diversity of the outer membrane protein, PorB, a key component of the outer membrane and a major gonococcal antigen. Using genomics and machine-learning techniques, this research identified dominant PorB variants that drive the immune response, proposing potential vaccine candidates and improving our understanding of the evolutionary forces maintaining genome structure and biological fitness. Understanding these processes is crucial for designing vaccines that effectively target N. gonorrhoeae and combat the spread of multidrug-resistant gonococci.

Neisseria gonorrhoeae