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Mechanism of Thimerosal-Induced Structural Destabilization of a Recombinant Rotavirus P[4] Protein Antigen Formulated as a Multi-Dose Vaccine

In a companion paper, a two-step developability assessment is presented to rapidly evaluate low-cost formulations (multi-dose, aluminum-adjuvanted) for new subunit vaccine candidates. As a case study, a non-replicating rotavirus (NRRV) recombinant protein antigen P[4] was found to be destabilized by...

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Autores principales: Kaur, Kawaljit, Xiong, Jian, Sawant, Nishant, Agarwal, Sanjeev, Hickey, John M., Holland, David A., Mukhopadhyay, Tarit K., Brady, Joseph R., Dalvie, Neil C., Tracey, Mary Kate, Love, Kerry R., Love, J. Christopher, Weis, David D., Joshi, Sangeeta B., Volkin, David B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7884053/
https://www.ncbi.nlm.nih.gov/pubmed/33278412
http://dx.doi.org/10.1016/j.xphs.2020.11.033
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author Kaur, Kawaljit
Xiong, Jian
Sawant, Nishant
Agarwal, Sanjeev
Hickey, John M.
Holland, David A.
Mukhopadhyay, Tarit K.
Brady, Joseph R.
Dalvie, Neil C.
Tracey, Mary Kate
Love, Kerry R.
Love, J. Christopher
Weis, David D.
Joshi, Sangeeta B.
Volkin, David B.
author_facet Kaur, Kawaljit
Xiong, Jian
Sawant, Nishant
Agarwal, Sanjeev
Hickey, John M.
Holland, David A.
Mukhopadhyay, Tarit K.
Brady, Joseph R.
Dalvie, Neil C.
Tracey, Mary Kate
Love, Kerry R.
Love, J. Christopher
Weis, David D.
Joshi, Sangeeta B.
Volkin, David B.
author_sort Kaur, Kawaljit
collection PubMed
description In a companion paper, a two-step developability assessment is presented to rapidly evaluate low-cost formulations (multi-dose, aluminum-adjuvanted) for new subunit vaccine candidates. As a case study, a non-replicating rotavirus (NRRV) recombinant protein antigen P[4] was found to be destabilized by the vaccine preservative thimerosal, and this effect was mitigated by modification of the free cysteine (C173S). In this work, the mechanism(s) of thimerosal-P[4] protein interactions, along with subsequent effects on the P[4] protein’s structural integrity, are determined. Reversible complexation of ethylmercury, a thimerosal degradation byproduct, with the single cysteine residue of P[4] protein is demonstrated by intact protein mass analysis and biophysical studies. A working mechanism involving a reversible S-Hg coordinate bond is presented based on the literature. This reaction increased the local backbone flexibility of P[4] within the helical region surrounding the cysteine residue and then caused more global destabilization, both as detected by HX-MS. These effects correlate with changes in antibody-P[4] binding parameters and alterations in P[4] conformational stability due to C173S modification. Epitope mapping by HX-MS demonstrated involvement of the same cysteine-containing helical region of P[4] in antibody-antigen binding. Future formulation challenges to develop low-cost, multi-dose formulations for new recombinant protein vaccine candidates are discussed.
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spelling pubmed-78840532021-03-01 Mechanism of Thimerosal-Induced Structural Destabilization of a Recombinant Rotavirus P[4] Protein Antigen Formulated as a Multi-Dose Vaccine Kaur, Kawaljit Xiong, Jian Sawant, Nishant Agarwal, Sanjeev Hickey, John M. Holland, David A. Mukhopadhyay, Tarit K. Brady, Joseph R. Dalvie, Neil C. Tracey, Mary Kate Love, Kerry R. Love, J. Christopher Weis, David D. Joshi, Sangeeta B. Volkin, David B. J Pharm Sci Research Article In a companion paper, a two-step developability assessment is presented to rapidly evaluate low-cost formulations (multi-dose, aluminum-adjuvanted) for new subunit vaccine candidates. As a case study, a non-replicating rotavirus (NRRV) recombinant protein antigen P[4] was found to be destabilized by the vaccine preservative thimerosal, and this effect was mitigated by modification of the free cysteine (C173S). In this work, the mechanism(s) of thimerosal-P[4] protein interactions, along with subsequent effects on the P[4] protein’s structural integrity, are determined. Reversible complexation of ethylmercury, a thimerosal degradation byproduct, with the single cysteine residue of P[4] protein is demonstrated by intact protein mass analysis and biophysical studies. A working mechanism involving a reversible S-Hg coordinate bond is presented based on the literature. This reaction increased the local backbone flexibility of P[4] within the helical region surrounding the cysteine residue and then caused more global destabilization, both as detected by HX-MS. These effects correlate with changes in antibody-P[4] binding parameters and alterations in P[4] conformational stability due to C173S modification. Epitope mapping by HX-MS demonstrated involvement of the same cysteine-containing helical region of P[4] in antibody-antigen binding. Future formulation challenges to develop low-cost, multi-dose formulations for new recombinant protein vaccine candidates are discussed. Elsevier 2021-03 /pmc/articles/PMC7884053/ /pubmed/33278412 http://dx.doi.org/10.1016/j.xphs.2020.11.033 Text en © 2020 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Kaur, Kawaljit
Xiong, Jian
Sawant, Nishant
Agarwal, Sanjeev
Hickey, John M.
Holland, David A.
Mukhopadhyay, Tarit K.
Brady, Joseph R.
Dalvie, Neil C.
Tracey, Mary Kate
Love, Kerry R.
Love, J. Christopher
Weis, David D.
Joshi, Sangeeta B.
Volkin, David B.
Mechanism of Thimerosal-Induced Structural Destabilization of a Recombinant Rotavirus P[4] Protein Antigen Formulated as a Multi-Dose Vaccine
title Mechanism of Thimerosal-Induced Structural Destabilization of a Recombinant Rotavirus P[4] Protein Antigen Formulated as a Multi-Dose Vaccine
title_full Mechanism of Thimerosal-Induced Structural Destabilization of a Recombinant Rotavirus P[4] Protein Antigen Formulated as a Multi-Dose Vaccine
title_fullStr Mechanism of Thimerosal-Induced Structural Destabilization of a Recombinant Rotavirus P[4] Protein Antigen Formulated as a Multi-Dose Vaccine
title_full_unstemmed Mechanism of Thimerosal-Induced Structural Destabilization of a Recombinant Rotavirus P[4] Protein Antigen Formulated as a Multi-Dose Vaccine
title_short Mechanism of Thimerosal-Induced Structural Destabilization of a Recombinant Rotavirus P[4] Protein Antigen Formulated as a Multi-Dose Vaccine
title_sort mechanism of thimerosal-induced structural destabilization of a recombinant rotavirus p[4] protein antigen formulated as a multi-dose vaccine
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7884053/
https://www.ncbi.nlm.nih.gov/pubmed/33278412
http://dx.doi.org/10.1016/j.xphs.2020.11.033
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