Assessing the efficiency of SBA-15 as a nanocarrier for diphtheria anatoxin

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dc.contributorCentro de Gestão da Qualidadept_BR
dc.contributorCentro Bioindustrialpt_BR
dc.contributorLab. Imunogenéticapt_BR
dc.contributor(LBI) Lab. Imunoquímicapt_BR
dc.contributor.authorRasmussen, Martin Kjærulfpt_BR
dc.contributor.authorBordallo, Heloisa N.pt_BR
dc.contributor.authorBordenalli, Marcela Aparecidapt_BR
dc.contributor.authorAkamatsu, Milena Apetitopt_BR
dc.contributor.authorTrezena, Aryene Góespt_BR
dc.contributor.authorDe Franco, Milene Tinopt_BR
dc.contributor.authorSant'Anna, Osvaldo Augusto Brazil Estevespt_BR
dc.date.accessioned2021-01-04T18:44:07Z-
dc.date.available2021-01-04T18:44:07Z-
dc.date.issued2021pt_BR
dc.identifier.citationRasmussen MK, Bordallo HN., Bordenalli MA, Akamatsu MA, Trezena AG, Tino-De-Franco M, et al. Assessing the efficiency of SBA-15 as a nanocarrier for diphtheria anatoxin. Microporous Mesoporous Mater.. 2021 Jan;312:110763. doi:10.1016/j.micromeso.2020.110763.pt_BR
dc.identifier.urihttps://repositorio.butantan.gov.br/handle/butantan/3424-
dc.description.abstractSBA-15 ordered mesoporous silica can be considered a promising inorganic nanocarrier with emerging potential as an oral vaccine adjuvant. In this study, we investigated its application in the encapsulation of the diphtheria anatoxin (dANA). We observed a considerable preservation of dANA secondary and tertiary structures, even after the drying process by means of Circular Dichroism (CD) and fluorescence spectroscopies. Antigen loading was assessed at a number of different ratios of adjuvant-to-antigen using a combination of nitrogen adsorption porosimetry and Small Angle X-ray Scattering (SAXS). Our data showed that the mass ratio of 1:10 (dANA:SBA-15) is recommended for total encapsulation of dANA in the mesopores, considering that at this relative mass concentration antigen clustering was avoided, which is deleterious effect for immunization purposes. dANA release in mimetic intestine fluid, at a pH equal to 6.8, was followed by in-situ SAXS measurements and shown to be slow, being more pronounced after 6 h and continuous up to 35 h. Finally, the immunogenic complex was tested in isogenic Balb C mice by oral and subcutaneous immunization routes, including a comparison with the only permitted adjuvant for human use, aluminum hydroxide. A higher antibody titer was obtained by subcutaneous and oral administration routes using SBA-15 as the vehicle of dANA, compared with the conventional aluminum hydroxide, demonstrating the viability to use this ordered mesoporous silica in the formulation of oral vaccines, as already proved for the Virus Like Particles (VLP) Hepatitis B (HBsAg) case.pt_BR
dc.description.sponsorshipInternational Network Programmept_BR
dc.description.sponsorship(CNPq) Conselho Nacional de Desenvolvimento Científico e Tecnológicopt_BR
dc.description.sponsorship(FAPESP) Fundação de Amparo à Pesquisa do Estado de São Paulopt_BR
dc.description.sponsorship(ESRF) European Synchrotron Radiation Facilitypt_BR
dc.description.sponsorship(BMBF) German Federal Ministry of Education and Researchpt_BR
dc.format.extent110763pt_BR
dc.language.isoEnglishpt_BR
dc.relation.ispartofMicroporous and Mesoporous Materialspt_BR
dc.rightsRestricted accesspt_BR
dc.titleAssessing the efficiency of SBA-15 as a nanocarrier for diphtheria anatoxinpt_BR
dc.typeArticlept_BR
dc.identifier.doi10.1016/j.micromeso.2020.110763pt_BR
dc.identifier.urlhttps://doi.org/10.1016/j.micromeso.2020.110763pt_BR
dc.contributor.externalUniversity of Copenhagenpt_BR
dc.contributor.externalUniversity of Denmarkpt_BR
dc.contributor.external(ESS) European Spallation Sourcept_BR
dc.contributor.external(UNIFESP) Universidade Federal de São Paulopt_BR
dc.contributor.external(USP) Universidade de São Paulopt_BR
dc.identifier.citationvolume312pt_BR
dc.subject.keywordDiphtheria anatoxinpt_BR
dc.subject.keywordOrdered mesoporous silicapt_BR
dc.subject.keywordOral vaccinept_BR
dc.relation.ispartofabbreviatedMicroporous Mesoporous Materpt_BR
dc.identifier.citationabntv. 312, 110763, jan. 2021pt_BR
dc.identifier.citationvancouver2021 Jan;312:110763pt_BR
dc.contributor.butantanBordenalli, Marcela Aparecida|:Técnico|:Centro de Gestão da Qualidadept_BR
dc.contributor.butantanAkamatsu, Milena Apetito|:Pesquisador|:Centro Bioindustrialpt_BR
dc.contributor.butantanTrezena, Aryene Góes|:Pesquisador|:Lab. Imunogenéticapt_BR
dc.contributor.butantanDe Franco, Milene Tino|:Pesquisador|:Lab. Imunogenéticapt_BR
dc.contributor.butantanSant'anna, Osvaldo Augusto|:Pesquisador|:Lab. Imunoquímicapt_BR
dc.sponsorship.butantanInternational Network Programme¦¦5132-00054Bpt_BR
dc.sponsorship.butantan(FAPESP) Fundação de Amparo à Pesquisa do Estado de São Paulo¦¦2017/17844–80pt_BR
dc.sponsorship.butantan(FAPESP) Fundação de Amparo à Pesquisa do Estado de São Paulo¦¦2018/19546–7pt_BR
dc.sponsorship.butantan(CNPq) Conselho Nacional de Desenvolvimento Científico e Tecnológico¦¦pt_BR
dc.sponsorship.butantan(ESRF) European Synchrotron Radiation Facility¦¦MA-3011pt_BR
dc.sponsorship.butantanGerman Federal Ministry of Education and Research (BMBF)¦¦05KS4WE1pt_BR
dc.sponsorship.butantanGerman Federal Ministry of Education and Research (BMBF)¦¦05KS7WE1pt_BR
dc.identifier.bvsccBR78.1pt_BR
dc.identifier.bvsdbIBProdpt_BR
dc.description.dbindexedYespt_BR
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item.openairetypeArticle-
item.languageiso639-1English-
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