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Published on: August 21, 2019
Stable Recombinant Invasion Plasmid Antigen C (IpaC)-Based Single Dose Nanovaccine for Shigellosis
Namrata Baruah1,2, Prolay Halder3, Hemanta Koley3
1Department of Biological Sciences and Bioengineering, Indian Institute of Technology Kanpur, Kanpur, Uttar Pradesh 208016, India.
Insights
A novel nanovaccine using stabilized invasion plasmid antigen C (IpaC) from Shigella dysenteriae serotype 1 offers a single-dose intranasal immunization against shigellosis. This single-dose nanovaccine demonstrated significant protection in mice against a heterologous Shigella challenge.
Area of Science:
- Immunology
- Vaccinology
- Nanotechnology
Background:
- Shigellosis is a major cause of bacterial diarrhea and mortality in young children.
- Antibiotic resistance and lack of a commercial vaccine pose significant challenges in controlling shigellosis.
- Previous studies showed intranasal administration of recombinant Shigella dysenteriae serotype 1 invasion plasmid antigen C (Sd1 IpaC) induced immune responses.
Purpose of the Study:
- To develop a single-dose intranasal nanovaccine using stabilized Sd1 IpaC to improve patient compliance.
- To evaluate the immunogenicity and protective efficacy of the developed nanovaccine against heterologous Shigella challenge.
Main Methods:
- Stabilized Sd1 IpaC (20 μg) was encapsulated in poly(lactide-co-glycolide) nanoparticles (∼370 nm).
- BALB/c mice received a single intranasal dose of the nanovaccine.
- Immunized mice were challenged intraperitoneally with a high dose of Shigella flexneri 2a.
Main Results:
- A single intranasal dose of the nanovaccine elicited enhanced antibody and cytokine responses compared to multiple doses of free IpaC.
- Immunized mice showed protection against diarrhea, lethargy, and weight loss, with approximately 67% survival.
- Control animals all died within 36 hours of challenge.
Conclusions:
- The developed nanovaccine represents a promising noninvasive, cross-protective, single-dose strategy for Shigella immunization.
- The nanovaccine formulation is amenable for scale-up and potential mass immunization campaigns.
- Further exploration of this nanovaccine is warranted for effective shigellosis control.
Abstract:
Shigellosis, caused by the bacteria Shigella, is the leading cause of bacterial diarrhea and the second leading cause of diarrheal death among children under the age of five. Unfortunately, Shigella strains have acquired resistance to antibiotics, and a commercial vaccine is yet to be available. We have previously demonstrated that Shigella dysenteriae serotype 1 (Sd1)-based recombinant, stabilized, "invasion plasmid antigen C" (IpaC; 42 kDa) protein can induce robust immune responses in BALB/c mice against a challenge of a high dose of heterologous Shigella when immunized via three intranasal doses of IpaC without an adjuvant. In this work, in order to reduce the frequency of dosing and increase possible patient compliance, based on our previous screening, the minimum protective dose of stabilized IpaC (20 μg) was encapsulated in biodegradable polymeric poly(lactide-co-glycolide) nanoparticles (∼370 nm) and intranasally administered in BALB/c mice in a single dose. Interestingly, a single intranasal dose of the developed vaccine particles encapsulating only 20 μg of Sd1 IpaC led to a temporal increase in the antibody production with an improved cytokine response compared to free IpaC administered three times as described in our previous report. Upon intraperitoneal challenge with a high dose of heterologous Shigella flexneri 2a (common in circulation), the immunized animals were protected from diarrhea, lethargy, and weight loss with ∼67% survival, while all the control animals died by 36 h of the challenge. Overall, the developed nanovaccine could be explored as a potential noninvasive, cross-protective, single-dose, single-antigen Shigella vaccine amenable for scale-up and eventual mass immunization.

