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Biomimetic nanoparticles with enhanced affinity towards activated endothelium as versatile tools for theranostic drug delivery

Activation of the vascular endothelium is characterized by increased expression of vascular adhesion molecules and chemokines. This activation occurs early in the progression of several diseases and triggers the recruitment of leukocytes. Inspired by the tropism of leukocytes, we investigated leukoc...

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Autores principales: Martinez, Jonathan O., Molinaro, Roberto, Hartman, Kelly A., Boada, Christian, Sukhovershin, Roman, De Rosa, Enrica, Kirui, Dickson, Zhang, Shanrong, Evangelopoulos, Michael, Carter, Angela M., Bibb, James A., Cooke, John P., Tasciotti, Ennio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5817115/
https://www.ncbi.nlm.nih.gov/pubmed/29464004
http://dx.doi.org/10.7150/thno.22078
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author Martinez, Jonathan O.
Molinaro, Roberto
Hartman, Kelly A.
Boada, Christian
Sukhovershin, Roman
De Rosa, Enrica
Kirui, Dickson
Zhang, Shanrong
Evangelopoulos, Michael
Carter, Angela M.
Bibb, James A.
Cooke, John P.
Tasciotti, Ennio
author_facet Martinez, Jonathan O.
Molinaro, Roberto
Hartman, Kelly A.
Boada, Christian
Sukhovershin, Roman
De Rosa, Enrica
Kirui, Dickson
Zhang, Shanrong
Evangelopoulos, Michael
Carter, Angela M.
Bibb, James A.
Cooke, John P.
Tasciotti, Ennio
author_sort Martinez, Jonathan O.
collection PubMed
description Activation of the vascular endothelium is characterized by increased expression of vascular adhesion molecules and chemokines. This activation occurs early in the progression of several diseases and triggers the recruitment of leukocytes. Inspired by the tropism of leukocytes, we investigated leukocyte-based biomimetic nanoparticles (i.e., leukosomes) as a novel theranostic platform for inflammatory diseases. Methods: Leukosomes were assembled by combining phospholipids and membrane proteins from leukocytes. For imaging applications, phospholipids modified with rhodamine and gadolinium were used. Leukosomes incubated with antibodies blocking lymphocyte function-associated antigen 1 (LFA-1) and CD45 were administered to explore their roles in targeting inflammation. In addition, relaxometric assessment of NPs was evaluated. Results: Liposomes and leukosomes were both spherical in shape with sizes ranging from 140-170 nm. Both NPs successfully integrated 8 and 13 µg of rhodamine and gadolinium, respectively, and demonstrated less than 4% variation in physicochemical features. Leukosomes demonstrated a 16-fold increase in breast tumor accumulation relative to liposomes. Furthermore, quantification of leukosomes in tumor vessels demonstrated a 4.5-fold increase in vessel lumens and a 14-fold increase in vessel walls. Investigating the targeting mechanism of action revealed that blockage of LFA-1 on leukosomes resulted in a 95% decrease in tumor accumulation. Whereas blockage of CD45 yielded a 60% decrease in targeting and significant increases in liver and spleen accumulation. In addition, when administered in mice with atherosclerotic plaques, leukosomes exhibited a 4-fold increase in the targeting of inflammatory vascular lesions. Lastly, relaxometric assessment of NPs demonstrated that the incorporation of membrane proteins into leukosomes did not impact the r(1) and r(2) relaxivities of the NPs, demonstrating 6 and 30 mM(-1)s(-1), respectively. Conclusion: Our study demonstrates the ability of leukosomes to target activated vasculature and exhibit superior accumulation in tumors and vascular lesions. The versatility of the phospholipid backbone within leukosomes permits the incorporation of various contrast agents. Furthermore, leukosomes can potentially be loaded with therapeutics possessing diverse physical properties and thus warrant further investigation toward the development of powerful theranostic agents.
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spelling pubmed-58171152018-02-20 Biomimetic nanoparticles with enhanced affinity towards activated endothelium as versatile tools for theranostic drug delivery Martinez, Jonathan O. Molinaro, Roberto Hartman, Kelly A. Boada, Christian Sukhovershin, Roman De Rosa, Enrica Kirui, Dickson Zhang, Shanrong Evangelopoulos, Michael Carter, Angela M. Bibb, James A. Cooke, John P. Tasciotti, Ennio Theranostics Research Paper Activation of the vascular endothelium is characterized by increased expression of vascular adhesion molecules and chemokines. This activation occurs early in the progression of several diseases and triggers the recruitment of leukocytes. Inspired by the tropism of leukocytes, we investigated leukocyte-based biomimetic nanoparticles (i.e., leukosomes) as a novel theranostic platform for inflammatory diseases. Methods: Leukosomes were assembled by combining phospholipids and membrane proteins from leukocytes. For imaging applications, phospholipids modified with rhodamine and gadolinium were used. Leukosomes incubated with antibodies blocking lymphocyte function-associated antigen 1 (LFA-1) and CD45 were administered to explore their roles in targeting inflammation. In addition, relaxometric assessment of NPs was evaluated. Results: Liposomes and leukosomes were both spherical in shape with sizes ranging from 140-170 nm. Both NPs successfully integrated 8 and 13 µg of rhodamine and gadolinium, respectively, and demonstrated less than 4% variation in physicochemical features. Leukosomes demonstrated a 16-fold increase in breast tumor accumulation relative to liposomes. Furthermore, quantification of leukosomes in tumor vessels demonstrated a 4.5-fold increase in vessel lumens and a 14-fold increase in vessel walls. Investigating the targeting mechanism of action revealed that blockage of LFA-1 on leukosomes resulted in a 95% decrease in tumor accumulation. Whereas blockage of CD45 yielded a 60% decrease in targeting and significant increases in liver and spleen accumulation. In addition, when administered in mice with atherosclerotic plaques, leukosomes exhibited a 4-fold increase in the targeting of inflammatory vascular lesions. Lastly, relaxometric assessment of NPs demonstrated that the incorporation of membrane proteins into leukosomes did not impact the r(1) and r(2) relaxivities of the NPs, demonstrating 6 and 30 mM(-1)s(-1), respectively. Conclusion: Our study demonstrates the ability of leukosomes to target activated vasculature and exhibit superior accumulation in tumors and vascular lesions. The versatility of the phospholipid backbone within leukosomes permits the incorporation of various contrast agents. Furthermore, leukosomes can potentially be loaded with therapeutics possessing diverse physical properties and thus warrant further investigation toward the development of powerful theranostic agents. Ivyspring International Publisher 2018-01-05 /pmc/articles/PMC5817115/ /pubmed/29464004 http://dx.doi.org/10.7150/thno.22078 Text en © Ivyspring International Publisher This is an open access article distributed under the terms of the Creative Commons Attribution (CC BY-NC) license (https://creativecommons.org/licenses/by-nc/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Martinez, Jonathan O.
Molinaro, Roberto
Hartman, Kelly A.
Boada, Christian
Sukhovershin, Roman
De Rosa, Enrica
Kirui, Dickson
Zhang, Shanrong
Evangelopoulos, Michael
Carter, Angela M.
Bibb, James A.
Cooke, John P.
Tasciotti, Ennio
Biomimetic nanoparticles with enhanced affinity towards activated endothelium as versatile tools for theranostic drug delivery
title Biomimetic nanoparticles with enhanced affinity towards activated endothelium as versatile tools for theranostic drug delivery
title_full Biomimetic nanoparticles with enhanced affinity towards activated endothelium as versatile tools for theranostic drug delivery
title_fullStr Biomimetic nanoparticles with enhanced affinity towards activated endothelium as versatile tools for theranostic drug delivery
title_full_unstemmed Biomimetic nanoparticles with enhanced affinity towards activated endothelium as versatile tools for theranostic drug delivery
title_short Biomimetic nanoparticles with enhanced affinity towards activated endothelium as versatile tools for theranostic drug delivery
title_sort biomimetic nanoparticles with enhanced affinity towards activated endothelium as versatile tools for theranostic drug delivery
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5817115/
https://www.ncbi.nlm.nih.gov/pubmed/29464004
http://dx.doi.org/10.7150/thno.22078
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