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Optimization of Biocompatibility for a Hydrophilic Biological Molecule Encapsulation System

Despite considerable advances in recent years, challenges in delivery and storage of biological drugs persist and may delay or prohibit their clinical application. Though nanoparticle-based approaches for small molecule drug encapsulation are mature, encapsulation of proteins remains problematic due...

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Autores principales: Sanders, Alyssa B., Zangaro, Jacob T., Webber, Nakoa K., Calhoun, Ryan P., Richards, Elizabeth A., Ricci, Samuel L., Work, Hannah M., Yang, Daniel D., Casey, Kaitlyn R., Iovine, Joseph C., Baker, Gabriela, Douglas, Taylor V., Dutko, Sierra B., Fasano, Thomas J., Lofland, Sarah A., Rajan, Ashley A., Vasile, Mihaela A., Carone, Benjamin R., Nucci, Nathaniel V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8911823/
https://www.ncbi.nlm.nih.gov/pubmed/35268673
http://dx.doi.org/10.3390/molecules27051572
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author Sanders, Alyssa B.
Zangaro, Jacob T.
Webber, Nakoa K.
Calhoun, Ryan P.
Richards, Elizabeth A.
Ricci, Samuel L.
Work, Hannah M.
Yang, Daniel D.
Casey, Kaitlyn R.
Iovine, Joseph C.
Baker, Gabriela
Douglas, Taylor V.
Dutko, Sierra B.
Fasano, Thomas J.
Lofland, Sarah A.
Rajan, Ashley A.
Vasile, Mihaela A.
Carone, Benjamin R.
Nucci, Nathaniel V.
author_facet Sanders, Alyssa B.
Zangaro, Jacob T.
Webber, Nakoa K.
Calhoun, Ryan P.
Richards, Elizabeth A.
Ricci, Samuel L.
Work, Hannah M.
Yang, Daniel D.
Casey, Kaitlyn R.
Iovine, Joseph C.
Baker, Gabriela
Douglas, Taylor V.
Dutko, Sierra B.
Fasano, Thomas J.
Lofland, Sarah A.
Rajan, Ashley A.
Vasile, Mihaela A.
Carone, Benjamin R.
Nucci, Nathaniel V.
author_sort Sanders, Alyssa B.
collection PubMed
description Despite considerable advances in recent years, challenges in delivery and storage of biological drugs persist and may delay or prohibit their clinical application. Though nanoparticle-based approaches for small molecule drug encapsulation are mature, encapsulation of proteins remains problematic due to destabilization of the protein. Reverse micelles composed of decylmonoacyl glycerol (10MAG) and lauryldimethylamino-N-oxide (LDAO) in low-viscosity alkanes have been shown to preserve the structure and stability of a wide range of biological macromolecules. Here, we present a first step on developing this system as a future platform for storage and delivery of biological drugs by replacing the non-biocompatible alkane solvent with solvents currently used in small molecule delivery systems. Using a novel screening approach, we performed a comprehensive evaluation of the 10MAG/LDAO system using two preparation methods across seven biocompatible solvents with analysis of toxicity and encapsulation efficiency for each solvent. By using an inexpensive hydrophilic small molecule to test a wide range of conditions, we identify optimal solvent properties for further development. We validate the predictions from this screen with preliminary protein encapsulation tests. The insight provided lays the foundation for further development of this system toward long-term room-temperature storage of biologics or toward water-in-oil-in-water biologic delivery systems.
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spelling pubmed-89118232022-03-11 Optimization of Biocompatibility for a Hydrophilic Biological Molecule Encapsulation System Sanders, Alyssa B. Zangaro, Jacob T. Webber, Nakoa K. Calhoun, Ryan P. Richards, Elizabeth A. Ricci, Samuel L. Work, Hannah M. Yang, Daniel D. Casey, Kaitlyn R. Iovine, Joseph C. Baker, Gabriela Douglas, Taylor V. Dutko, Sierra B. Fasano, Thomas J. Lofland, Sarah A. Rajan, Ashley A. Vasile, Mihaela A. Carone, Benjamin R. Nucci, Nathaniel V. Molecules Article Despite considerable advances in recent years, challenges in delivery and storage of biological drugs persist and may delay or prohibit their clinical application. Though nanoparticle-based approaches for small molecule drug encapsulation are mature, encapsulation of proteins remains problematic due to destabilization of the protein. Reverse micelles composed of decylmonoacyl glycerol (10MAG) and lauryldimethylamino-N-oxide (LDAO) in low-viscosity alkanes have been shown to preserve the structure and stability of a wide range of biological macromolecules. Here, we present a first step on developing this system as a future platform for storage and delivery of biological drugs by replacing the non-biocompatible alkane solvent with solvents currently used in small molecule delivery systems. Using a novel screening approach, we performed a comprehensive evaluation of the 10MAG/LDAO system using two preparation methods across seven biocompatible solvents with analysis of toxicity and encapsulation efficiency for each solvent. By using an inexpensive hydrophilic small molecule to test a wide range of conditions, we identify optimal solvent properties for further development. We validate the predictions from this screen with preliminary protein encapsulation tests. The insight provided lays the foundation for further development of this system toward long-term room-temperature storage of biologics or toward water-in-oil-in-water biologic delivery systems. MDPI 2022-02-27 /pmc/articles/PMC8911823/ /pubmed/35268673 http://dx.doi.org/10.3390/molecules27051572 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sanders, Alyssa B.
Zangaro, Jacob T.
Webber, Nakoa K.
Calhoun, Ryan P.
Richards, Elizabeth A.
Ricci, Samuel L.
Work, Hannah M.
Yang, Daniel D.
Casey, Kaitlyn R.
Iovine, Joseph C.
Baker, Gabriela
Douglas, Taylor V.
Dutko, Sierra B.
Fasano, Thomas J.
Lofland, Sarah A.
Rajan, Ashley A.
Vasile, Mihaela A.
Carone, Benjamin R.
Nucci, Nathaniel V.
Optimization of Biocompatibility for a Hydrophilic Biological Molecule Encapsulation System
title Optimization of Biocompatibility for a Hydrophilic Biological Molecule Encapsulation System
title_full Optimization of Biocompatibility for a Hydrophilic Biological Molecule Encapsulation System
title_fullStr Optimization of Biocompatibility for a Hydrophilic Biological Molecule Encapsulation System
title_full_unstemmed Optimization of Biocompatibility for a Hydrophilic Biological Molecule Encapsulation System
title_short Optimization of Biocompatibility for a Hydrophilic Biological Molecule Encapsulation System
title_sort optimization of biocompatibility for a hydrophilic biological molecule encapsulation system
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8911823/
https://www.ncbi.nlm.nih.gov/pubmed/35268673
http://dx.doi.org/10.3390/molecules27051572
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