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Selective Blood Cell Hitchhiking in Whole Blood with Ionic Liquid-Coated PLGA Nanoparticles to Redirect Biodistribution After Intravenous Injection

Less than 5% of intravenously-injected nanoparticles (NPs) reach destined sites in the body due to opsonization and immune-based clearance in vascular circulation. By hitchhiking in situ onto specific blood components post-injection, NPs can selectively target tissue sites for unprecedentedly high d...

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Autores principales: Hamadani, Christine M., Dasanayake, Gaya S., Chism, Claylee M., Gorniak, Meghan E., Monroe, Wake G., Merrell, Anya, Pride, Mercedes C., Heintz, Rebekah, Wong, Karen, Hossain, Mehjabeen, Taylor, George, Edgecomb, Sara X., Jones, Deauntaye, Dhar, Joy, Banka, Alison, Singh, Gagandeep, Vashisth, Priyavrat, Randall, Joh'nis, Darlington, Donovan S., Everett, Jaylon, Jarrett, Ethan, Werfel, Thomas A., Eniola-Adefeso, Omolola, Tanner, Eden E. L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Journal Experts 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10371090/
https://www.ncbi.nlm.nih.gov/pubmed/37502854
http://dx.doi.org/10.21203/rs.3.rs-3146716/v1
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author Hamadani, Christine M.
Dasanayake, Gaya S.
Chism, Claylee M.
Gorniak, Meghan E.
Monroe, Wake G.
Merrell, Anya
Pride, Mercedes C.
Heintz, Rebekah
Wong, Karen
Hossain, Mehjabeen
Taylor, George
Edgecomb, Sara X.
Jones, Deauntaye
Dhar, Joy
Banka, Alison
Singh, Gagandeep
Vashisth, Priyavrat
Randall, Joh'nis
Darlington, Donovan S.
Everett, Jaylon
Jarrett, Ethan
Werfel, Thomas A.
Eniola-Adefeso, Omolola
Tanner, Eden E. L.
author_facet Hamadani, Christine M.
Dasanayake, Gaya S.
Chism, Claylee M.
Gorniak, Meghan E.
Monroe, Wake G.
Merrell, Anya
Pride, Mercedes C.
Heintz, Rebekah
Wong, Karen
Hossain, Mehjabeen
Taylor, George
Edgecomb, Sara X.
Jones, Deauntaye
Dhar, Joy
Banka, Alison
Singh, Gagandeep
Vashisth, Priyavrat
Randall, Joh'nis
Darlington, Donovan S.
Everett, Jaylon
Jarrett, Ethan
Werfel, Thomas A.
Eniola-Adefeso, Omolola
Tanner, Eden E. L.
author_sort Hamadani, Christine M.
collection PubMed
description Less than 5% of intravenously-injected nanoparticles (NPs) reach destined sites in the body due to opsonization and immune-based clearance in vascular circulation. By hitchhiking in situ onto specific blood components post-injection, NPs can selectively target tissue sites for unprecedentedly high drug delivery rates. Choline carboxylate ionic liquids (ILs) are biocompatible liquid salts <100X composed of bulky asymmetric cations and anions. This class of ILs has been previously shown to significantly extend circulation time and redirect biodistribution in BALB/c mice post-IV injection via hitchhiking on red blood cell (RBC) membranes. Herein, we synthesized & screened 60 choline carboxylic acid-based ILs to coat PLGA NPs and present the impact of structurally engineering the coordinated anion identity to selectively interface and hitchhike lymphocytes, monocytes, granulocytes, platelets, and RBCs in whole mouse blood for in situ targeted drug delivery. Furthermore, we find this nanoparticle platform to be biocompatible (non-cytotoxic), translate to human whole blood by resisting serum uptake and maintaining modest hitchhiking, and also significantly extend circulation retention over 24 hours in BALB/c healthy adult mice after IV injection. Because of their altered circulation profiles, we additionally observe dramatically different organ accumulation profiles compared to bare PLGA NPs. This study establishes an initial breakthrough platform for a modular and transformative targeting technology to hitchhike onto blood components with high efficacy and safety in the bloodstream post-IV administration.
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spelling pubmed-103710902023-07-27 Selective Blood Cell Hitchhiking in Whole Blood with Ionic Liquid-Coated PLGA Nanoparticles to Redirect Biodistribution After Intravenous Injection Hamadani, Christine M. Dasanayake, Gaya S. Chism, Claylee M. Gorniak, Meghan E. Monroe, Wake G. Merrell, Anya Pride, Mercedes C. Heintz, Rebekah Wong, Karen Hossain, Mehjabeen Taylor, George Edgecomb, Sara X. Jones, Deauntaye Dhar, Joy Banka, Alison Singh, Gagandeep Vashisth, Priyavrat Randall, Joh'nis Darlington, Donovan S. Everett, Jaylon Jarrett, Ethan Werfel, Thomas A. Eniola-Adefeso, Omolola Tanner, Eden E. L. Res Sq Article Less than 5% of intravenously-injected nanoparticles (NPs) reach destined sites in the body due to opsonization and immune-based clearance in vascular circulation. By hitchhiking in situ onto specific blood components post-injection, NPs can selectively target tissue sites for unprecedentedly high drug delivery rates. Choline carboxylate ionic liquids (ILs) are biocompatible liquid salts <100X composed of bulky asymmetric cations and anions. This class of ILs has been previously shown to significantly extend circulation time and redirect biodistribution in BALB/c mice post-IV injection via hitchhiking on red blood cell (RBC) membranes. Herein, we synthesized & screened 60 choline carboxylic acid-based ILs to coat PLGA NPs and present the impact of structurally engineering the coordinated anion identity to selectively interface and hitchhike lymphocytes, monocytes, granulocytes, platelets, and RBCs in whole mouse blood for in situ targeted drug delivery. Furthermore, we find this nanoparticle platform to be biocompatible (non-cytotoxic), translate to human whole blood by resisting serum uptake and maintaining modest hitchhiking, and also significantly extend circulation retention over 24 hours in BALB/c healthy adult mice after IV injection. Because of their altered circulation profiles, we additionally observe dramatically different organ accumulation profiles compared to bare PLGA NPs. This study establishes an initial breakthrough platform for a modular and transformative targeting technology to hitchhike onto blood components with high efficacy and safety in the bloodstream post-IV administration. American Journal Experts 2023-07-11 /pmc/articles/PMC10371090/ /pubmed/37502854 http://dx.doi.org/10.21203/rs.3.rs-3146716/v1 Text en https://creativecommons.org/licenses/by/4.0/This work is licensed under a Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0/) , which allows reusers to distribute, remix, adapt, and build upon the material in any medium or format, so long as attribution is given to the creator. The license allows for commercial use.
spellingShingle Article
Hamadani, Christine M.
Dasanayake, Gaya S.
Chism, Claylee M.
Gorniak, Meghan E.
Monroe, Wake G.
Merrell, Anya
Pride, Mercedes C.
Heintz, Rebekah
Wong, Karen
Hossain, Mehjabeen
Taylor, George
Edgecomb, Sara X.
Jones, Deauntaye
Dhar, Joy
Banka, Alison
Singh, Gagandeep
Vashisth, Priyavrat
Randall, Joh'nis
Darlington, Donovan S.
Everett, Jaylon
Jarrett, Ethan
Werfel, Thomas A.
Eniola-Adefeso, Omolola
Tanner, Eden E. L.
Selective Blood Cell Hitchhiking in Whole Blood with Ionic Liquid-Coated PLGA Nanoparticles to Redirect Biodistribution After Intravenous Injection
title Selective Blood Cell Hitchhiking in Whole Blood with Ionic Liquid-Coated PLGA Nanoparticles to Redirect Biodistribution After Intravenous Injection
title_full Selective Blood Cell Hitchhiking in Whole Blood with Ionic Liquid-Coated PLGA Nanoparticles to Redirect Biodistribution After Intravenous Injection
title_fullStr Selective Blood Cell Hitchhiking in Whole Blood with Ionic Liquid-Coated PLGA Nanoparticles to Redirect Biodistribution After Intravenous Injection
title_full_unstemmed Selective Blood Cell Hitchhiking in Whole Blood with Ionic Liquid-Coated PLGA Nanoparticles to Redirect Biodistribution After Intravenous Injection
title_short Selective Blood Cell Hitchhiking in Whole Blood with Ionic Liquid-Coated PLGA Nanoparticles to Redirect Biodistribution After Intravenous Injection
title_sort selective blood cell hitchhiking in whole blood with ionic liquid-coated plga nanoparticles to redirect biodistribution after intravenous injection
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10371090/
https://www.ncbi.nlm.nih.gov/pubmed/37502854
http://dx.doi.org/10.21203/rs.3.rs-3146716/v1
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