Microencapsulation of vaccine provides the advantages of controlled and targeted release for the enhancement of the immune response. For the majority of the pathogens listed in this RFA, the respiratory and gastrointestinal tracts represent the site of infection on portal of entry. Both influenze virus and Streptococcus pneumoniae primarily exert their pathophysiologic effects through acute, localized infections of the respiratory epithelium. The antibodies present in the mucus which bathes the nasopharynx and bronchial tree are predominated by secretory IgA which is locally produced by plasma cells within the pulmonary lamina propria. In contrast, the normally sterile bronchial and alveoli predominantly contain IgG antibodies which are passively derived from the intravascular pool. Although sIgA antibodies are effective in virus neutralization, the prevention of bacterial adherence to epithelia, and are correlated with resistance to influenza challenge, parenteral immunization is not effective at inducing sIgA antibody production. However, our preliminary studies show that oral immunization stimulates antibody production not only in the gut, but serum, saliva and bronchial- alveolar wash (BAW) fluids. In addition, we have found that oral administration of microcapsules to mice results in their rapid and selective uptake by the Peyer's patches. We will investigate the effectiveness or oral, as compared to systemic, immunization with microencapsulated and nonencapsulated pneumococcal and influenza virus vaccines in order to determine the ability of targeted delivery and controlled release to potentiate the systemic and pulmonary mucosal immune responses. RIAs will be used to quantitate the vaccine-specific antibodies of the IgM, IgG and IgA isotypes in the serum, saliva and gut and BAW fluids. PCA will be employed to determine the potential for these immunization methods to potentiate immediate hypersensitivity. The relative efficacy of these various immunization methods to confer protection against pulmonary disease will be evaluated in aerosol challenge studies with viable pneumococci and influenza virus.

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project--Cooperative Agreements (U01)
Project #
5U01AI024772-03
Application #
3546712
Study Section
Microbiology and Infectious Diseases Research Committee (MID)
Project Start
1987-04-01
Project End
1991-03-31
Budget Start
1989-04-01
Budget End
1991-03-31
Support Year
3
Fiscal Year
1989
Total Cost
Indirect Cost
Name
Southern Research Institute
Department
Type
DUNS #
006900526
City
Birmingham
State
AL
Country
United States
Zip Code
35205
Moldoveanu, Z; Novak, M; Huang, W Q et al. (1993) Oral immunization with influenza virus in biodegradable microspheres. J Infect Dis 167:84-90
Eldridge, J H; Staas, J K; Meulbroek, J A et al. (1991) Biodegradable and biocompatible poly(DL-lactide-co-glycolide) microspheres as an adjuvant for staphylococcal enterotoxin B toxoid which enhances the level of toxin-neutralizing antibodies. Infect Immun 59:2978-86
Eldridge, J H; Staas, J K; Meulbroek, J A et al. (1991) Biodegradable microspheres as a vaccine delivery system. Mol Immunol 28:287-94
Eldridge, J H; Gilley, R M; Staas, J K et al. (1989) Biodegradable microspheres: vaccine delivery system for oral immunization. Curr Top Microbiol Immunol 146:59-66
Beagley, K W; Eldridge, J H; Lee, F et al. (1989) Interleukins and IgA synthesis. Human and murine interleukin 6 induce high rate IgA secretion in IgA-committed B cells. J Exp Med 169:2133-48
Moldoveanu, Z; Staas, J K; Gilley, R M et al. (1989) Immune responses to influenza virus in orally and systemically immunized mice. Curr Top Microbiol Immunol 146:91-9
Eldridge, J H; Meulbroek, J A; Staas, J K et al. (1989) Vaccine-containing biodegradable microspheres specifically enter the gut-associated lymphoid tissue following oral administration and induce a disseminated mucosal immune response. Adv Exp Med Biol 251:191-202
Eldridge, J H; Beagley, K W; McGhee, J R (1987) Immunoregulation in the Peyer's patch microenvironment. Cellular basis for the enhanced responses by the B cells of X-linked immunodeficient CBA/N mice. J Immunol 139:2255-62