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Aeromonas hydrophila OmpW PLGA Nanoparticle Oral Vaccine Shows a Dose-Dependent Protective Immunity in Rohu (Labeo rohita)

Aeromonas hydrophila is a Gram-negative bacterium that causes high mortality in different fish species and at different growth stages. Although vaccination has significantly contributed to the decline of disease outbreaks in aquaculture, the use of oral vaccines has lagged behind the injectable vacc...

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Autores principales: Dubey, Saurabh, Avadhani, Kiran, Mutalik, Srinivas, Sivadasan, Sangeetha Madambithara, Maiti, Biswajit, Paul, Joydeb, Girisha, Shivani Kallappa, Venugopal, Moleyur Nagarajappa, Mutoloki, Stephen, Evensen, Øystein, Karunasagar, Indrani, Munang’andu, Hetron Mweemba
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4931638/
https://www.ncbi.nlm.nih.gov/pubmed/27258315
http://dx.doi.org/10.3390/vaccines4020021
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author Dubey, Saurabh
Avadhani, Kiran
Mutalik, Srinivas
Sivadasan, Sangeetha Madambithara
Maiti, Biswajit
Paul, Joydeb
Girisha, Shivani Kallappa
Venugopal, Moleyur Nagarajappa
Mutoloki, Stephen
Evensen, Øystein
Karunasagar, Indrani
Munang’andu, Hetron Mweemba
author_facet Dubey, Saurabh
Avadhani, Kiran
Mutalik, Srinivas
Sivadasan, Sangeetha Madambithara
Maiti, Biswajit
Paul, Joydeb
Girisha, Shivani Kallappa
Venugopal, Moleyur Nagarajappa
Mutoloki, Stephen
Evensen, Øystein
Karunasagar, Indrani
Munang’andu, Hetron Mweemba
author_sort Dubey, Saurabh
collection PubMed
description Aeromonas hydrophila is a Gram-negative bacterium that causes high mortality in different fish species and at different growth stages. Although vaccination has significantly contributed to the decline of disease outbreaks in aquaculture, the use of oral vaccines has lagged behind the injectable vaccines due to lack of proven efficacy, that being from primary immunization or by use of boost protocols. In this study, the outer membrane protein W (OmpW) of A. hydrophila was cloned, purified, and encapsulated in poly d,l-lactide-co-glycolic acid (PLGA) nanoparticles (NPs) for oral vaccination of rohu (Labeo rohita Hamilton). The physical properties of PLGA NPs encapsulating the recombinant OmpW (rOmpW) was characterized as having a diameter of 370–375 nm, encapsulation efficiency of 53% and −19.3 mV zeta potential. In vitro release of rOmpW was estimated at 34% within 48 h of incubation in phosphate-buffered saline. To evaluate the efficacy of the NP-rOmpW oral vaccine, two antigen doses were orally administered in rohu with a high antigen (HiAg) dose that had twice the amount of antigens compared to the low antigen (LoAg) dose. Antibody levels obtained after vaccination showed an antigen dose dependency in which fish from the HiAg group had higher antibody levels than those from the LoAg group. The antibody levels corresponded with post challenge survival proportions (PCSPs) and relative percent survival (RPS) in which the HiAg group had a higher PCSP and RPS than the LoAg group. Likewise, the ability to inhibit A. hydrophila growth on trypticase soy agar (TSA) by sera obtained from the HiAg group was higher than that from the LoAg group. Overall, data presented here shows that OmpW orally administered using PLGA NPs is protective against A. hydrophila infection with the level of protective immunity induced by oral vaccination being antigen dose-dependent. Future studies should seek to optimize the antigen dose and duration of oral immunization in rohu in order to induce the highest protection in vaccinated fish.
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spelling pubmed-49316382016-07-08 Aeromonas hydrophila OmpW PLGA Nanoparticle Oral Vaccine Shows a Dose-Dependent Protective Immunity in Rohu (Labeo rohita) Dubey, Saurabh Avadhani, Kiran Mutalik, Srinivas Sivadasan, Sangeetha Madambithara Maiti, Biswajit Paul, Joydeb Girisha, Shivani Kallappa Venugopal, Moleyur Nagarajappa Mutoloki, Stephen Evensen, Øystein Karunasagar, Indrani Munang’andu, Hetron Mweemba Vaccines (Basel) Article Aeromonas hydrophila is a Gram-negative bacterium that causes high mortality in different fish species and at different growth stages. Although vaccination has significantly contributed to the decline of disease outbreaks in aquaculture, the use of oral vaccines has lagged behind the injectable vaccines due to lack of proven efficacy, that being from primary immunization or by use of boost protocols. In this study, the outer membrane protein W (OmpW) of A. hydrophila was cloned, purified, and encapsulated in poly d,l-lactide-co-glycolic acid (PLGA) nanoparticles (NPs) for oral vaccination of rohu (Labeo rohita Hamilton). The physical properties of PLGA NPs encapsulating the recombinant OmpW (rOmpW) was characterized as having a diameter of 370–375 nm, encapsulation efficiency of 53% and −19.3 mV zeta potential. In vitro release of rOmpW was estimated at 34% within 48 h of incubation in phosphate-buffered saline. To evaluate the efficacy of the NP-rOmpW oral vaccine, two antigen doses were orally administered in rohu with a high antigen (HiAg) dose that had twice the amount of antigens compared to the low antigen (LoAg) dose. Antibody levels obtained after vaccination showed an antigen dose dependency in which fish from the HiAg group had higher antibody levels than those from the LoAg group. The antibody levels corresponded with post challenge survival proportions (PCSPs) and relative percent survival (RPS) in which the HiAg group had a higher PCSP and RPS than the LoAg group. Likewise, the ability to inhibit A. hydrophila growth on trypticase soy agar (TSA) by sera obtained from the HiAg group was higher than that from the LoAg group. Overall, data presented here shows that OmpW orally administered using PLGA NPs is protective against A. hydrophila infection with the level of protective immunity induced by oral vaccination being antigen dose-dependent. Future studies should seek to optimize the antigen dose and duration of oral immunization in rohu in order to induce the highest protection in vaccinated fish. MDPI 2016-06-01 /pmc/articles/PMC4931638/ /pubmed/27258315 http://dx.doi.org/10.3390/vaccines4020021 Text en © 2016 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Dubey, Saurabh
Avadhani, Kiran
Mutalik, Srinivas
Sivadasan, Sangeetha Madambithara
Maiti, Biswajit
Paul, Joydeb
Girisha, Shivani Kallappa
Venugopal, Moleyur Nagarajappa
Mutoloki, Stephen
Evensen, Øystein
Karunasagar, Indrani
Munang’andu, Hetron Mweemba
Aeromonas hydrophila OmpW PLGA Nanoparticle Oral Vaccine Shows a Dose-Dependent Protective Immunity in Rohu (Labeo rohita)
title Aeromonas hydrophila OmpW PLGA Nanoparticle Oral Vaccine Shows a Dose-Dependent Protective Immunity in Rohu (Labeo rohita)
title_full Aeromonas hydrophila OmpW PLGA Nanoparticle Oral Vaccine Shows a Dose-Dependent Protective Immunity in Rohu (Labeo rohita)
title_fullStr Aeromonas hydrophila OmpW PLGA Nanoparticle Oral Vaccine Shows a Dose-Dependent Protective Immunity in Rohu (Labeo rohita)
title_full_unstemmed Aeromonas hydrophila OmpW PLGA Nanoparticle Oral Vaccine Shows a Dose-Dependent Protective Immunity in Rohu (Labeo rohita)
title_short Aeromonas hydrophila OmpW PLGA Nanoparticle Oral Vaccine Shows a Dose-Dependent Protective Immunity in Rohu (Labeo rohita)
title_sort aeromonas hydrophila ompw plga nanoparticle oral vaccine shows a dose-dependent protective immunity in rohu (labeo rohita)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4931638/
https://www.ncbi.nlm.nih.gov/pubmed/27258315
http://dx.doi.org/10.3390/vaccines4020021
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