Novel Strategy To Protect against Influenza Virus-Induced Pneumococcal Disease without Interfering with Commensal
Christopher J Greene1, Laura R Marks1, John C Hu1
1The Department of Microbiology and Immunology, The University at Buffalo, Buffalo, New York, USA.
Abstract:
Streptococcus pneumoniae commonly inhabits the nasopharynx as a member of the commensal biofilm. Infection with respiratory viruses, such as influenza A virus, induces commensal S. pneumoniae to disseminate beyond the nasopharynx and to elicit severe infections of the middle ears, lungs, and blood that are associated with high rates of morbidity and mortality. Current preventive strategies, including the polysaccharide conjugate vaccines, aim to eliminate asymptomatic carriage with vaccine-type pneumococci. However, this has resulted in serotype replacement with, so far, less fit pneumococcal strains, which has changed the nasopharyngeal flora, opening the niche for entry of other virulent pathogens (e.g., Streptococcus pyogenes, Staphylococcus aureus, and potentially Haemophilus influenzae). The long-term effects of these changes are unknown. Here, we present an attractive, alternative preventive approach where we subvert virus-induced pneumococcal disease without interfering with commensal colonization, thus specifically targeting disease-causing organisms. In that regard, pneumococcal surface protein A (PspA), a major surface protein of pneumococci, is a promising vaccine target. Intradermal (i.d.) immunization of mice with recombinant PspA in combination with LT-IIb(T13I), a novel i.d. adjuvant of the type II heat-labile enterotoxin family, elicited strong systemic PspA-specific IgG responses without inducing mucosal anti-PspA IgA responses. This response protected mice from otitis media, pneumonia, and septicemia and averted the cytokine storm associated with septic infection but had no effect on asymptomatic colonization. Our results firmly demonstrated that this immunization strategy against virally induced pneumococcal disease can be conferred without disturbing the desirable preexisting commensal colonization of the nasopharynx.
Insights
A new vaccine strategy targeting pneumococcal surface protein A (PspA) prevents severe pneumococcal infections like pneumonia and sepsis without disrupting beneficial nasopharyngeal colonization. This approach avoids altering the natural bacterial flora, offering a promising alternative to current vaccines.
Area of Science:
- * Microbiology and Immunology
- * Vaccine Development
- * Bacterial Pathogenesis
Background:
- * *Streptococcus pneumoniae* is a common nasopharyngeal commensal, but viral infections can trigger invasive diseases with high morbidity and mortality.
- * Current vaccines eliminate carriage but lead to serotype replacement and potential colonization by other pathogens.
- * This creates a need for strategies that prevent disease without disrupting the commensal flora.
Purpose of the Study:
- * To develop an alternative preventive strategy against virally induced pneumococcal disease.
- * To target disease-causing *S. pneumoniae* without interfering with commensal colonization.
- * To evaluate pneumococcal surface protein A (PspA) as a vaccine target.
Main Methods:
- * Intradermal (i.d.) immunization of mice with recombinant PspA and a novel i.d. adjuvant (LT-IIb(T13I)).
- * Assessment of systemic PspA-specific IgG and mucosal anti-PspA IgA responses.
- * Evaluation of protection against otitis media, pneumonia, septicemia, and impact on asymptomatic colonization.
Main Results:
- * i.d. PspA immunization induced strong systemic IgG but not mucosal IgA responses.
- * Protected mice from otitis media, pneumonia, and septicemia, averting cytokine storm.
- * The immunization strategy did not affect asymptomatic *S. pneumoniae* colonization.
Conclusions:
- * PspA-based i.d. immunization is a viable strategy to prevent severe pneumococcal infections.
- * This approach successfully targets disease without disrupting the protective commensal nasopharyngeal flora.
- * Offers a promising alternative to current vaccines, mitigating risks of serotype replacement and secondary pathogen invasion.
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