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Effective transvascular delivery of nanoparticles across the blood-brain tumor barrier into malignant glioma cells

BACKGROUND: Effective transvascular delivery of nanoparticle-based chemotherapeutics across the blood-brain tumor barrier of malignant gliomas remains a challenge. This is due to our limited understanding of nanoparticle properties in relation to the physiologic size of pores within the blood-brain...

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Autores principales: Sarin, Hemant, Kanevsky, Ariel S, Wu, Haitao, Brimacombe, Kyle R, Fung, Steve H, Sousa, Alioscka A, Auh, Sungyoung, Wilson, Colin M, Sharma, Kamal, Aronova, Maria A, Leapman, Richard D, Griffiths, Gary L, Hall, Matthew D
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2639552/
https://www.ncbi.nlm.nih.gov/pubmed/19094226
http://dx.doi.org/10.1186/1479-5876-6-80
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author Sarin, Hemant
Kanevsky, Ariel S
Wu, Haitao
Brimacombe, Kyle R
Fung, Steve H
Sousa, Alioscka A
Auh, Sungyoung
Wilson, Colin M
Sharma, Kamal
Aronova, Maria A
Leapman, Richard D
Griffiths, Gary L
Hall, Matthew D
author_facet Sarin, Hemant
Kanevsky, Ariel S
Wu, Haitao
Brimacombe, Kyle R
Fung, Steve H
Sousa, Alioscka A
Auh, Sungyoung
Wilson, Colin M
Sharma, Kamal
Aronova, Maria A
Leapman, Richard D
Griffiths, Gary L
Hall, Matthew D
author_sort Sarin, Hemant
collection PubMed
description BACKGROUND: Effective transvascular delivery of nanoparticle-based chemotherapeutics across the blood-brain tumor barrier of malignant gliomas remains a challenge. This is due to our limited understanding of nanoparticle properties in relation to the physiologic size of pores within the blood-brain tumor barrier. Polyamidoamine dendrimers are particularly small multigenerational nanoparticles with uniform sizes within each generation. Dendrimer sizes increase by only 1 to 2 nm with each successive generation. Using functionalized polyamidoamine dendrimer generations 1 through 8, we investigated how nanoparticle size influences particle accumulation within malignant glioma cells. METHODS: Magnetic resonance and fluorescence imaging probes were conjugated to the dendrimer terminal amines. Functionalized dendrimers were administered intravenously to rodents with orthotopically grown malignant gliomas. Transvascular transport and accumulation of the nanoparticles in brain tumor tissue was measured in vivo with dynamic contrast-enhanced magnetic resonance imaging. Localization of the nanoparticles within glioma cells was confirmed ex vivo with fluorescence imaging. RESULTS: We found that the intravenously administered functionalized dendrimers less than approximately 11.7 to 11.9 nm in diameter were able to traverse pores of the blood-brain tumor barrier of RG-2 malignant gliomas, while larger ones could not. Of the permeable functionalized dendrimer generations, those that possessed long blood half-lives could accumulate within glioma cells. CONCLUSION: The therapeutically relevant upper limit of blood-brain tumor barrier pore size is approximately 11.7 to 11.9 nm. Therefore, effective transvascular drug delivery into malignant glioma cells can be accomplished by using nanoparticles that are smaller than 11.7 to 11.9 nm in diameter and possess long blood half-lives.
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spelling pubmed-26395522009-02-11 Effective transvascular delivery of nanoparticles across the blood-brain tumor barrier into malignant glioma cells Sarin, Hemant Kanevsky, Ariel S Wu, Haitao Brimacombe, Kyle R Fung, Steve H Sousa, Alioscka A Auh, Sungyoung Wilson, Colin M Sharma, Kamal Aronova, Maria A Leapman, Richard D Griffiths, Gary L Hall, Matthew D J Transl Med Research BACKGROUND: Effective transvascular delivery of nanoparticle-based chemotherapeutics across the blood-brain tumor barrier of malignant gliomas remains a challenge. This is due to our limited understanding of nanoparticle properties in relation to the physiologic size of pores within the blood-brain tumor barrier. Polyamidoamine dendrimers are particularly small multigenerational nanoparticles with uniform sizes within each generation. Dendrimer sizes increase by only 1 to 2 nm with each successive generation. Using functionalized polyamidoamine dendrimer generations 1 through 8, we investigated how nanoparticle size influences particle accumulation within malignant glioma cells. METHODS: Magnetic resonance and fluorescence imaging probes were conjugated to the dendrimer terminal amines. Functionalized dendrimers were administered intravenously to rodents with orthotopically grown malignant gliomas. Transvascular transport and accumulation of the nanoparticles in brain tumor tissue was measured in vivo with dynamic contrast-enhanced magnetic resonance imaging. Localization of the nanoparticles within glioma cells was confirmed ex vivo with fluorescence imaging. RESULTS: We found that the intravenously administered functionalized dendrimers less than approximately 11.7 to 11.9 nm in diameter were able to traverse pores of the blood-brain tumor barrier of RG-2 malignant gliomas, while larger ones could not. Of the permeable functionalized dendrimer generations, those that possessed long blood half-lives could accumulate within glioma cells. CONCLUSION: The therapeutically relevant upper limit of blood-brain tumor barrier pore size is approximately 11.7 to 11.9 nm. Therefore, effective transvascular drug delivery into malignant glioma cells can be accomplished by using nanoparticles that are smaller than 11.7 to 11.9 nm in diameter and possess long blood half-lives. BioMed Central 2008-12-18 /pmc/articles/PMC2639552/ /pubmed/19094226 http://dx.doi.org/10.1186/1479-5876-6-80 Text en Copyright © 2008 Sarin et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( (http://creativecommons.org/licenses/by/2.0) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Sarin, Hemant
Kanevsky, Ariel S
Wu, Haitao
Brimacombe, Kyle R
Fung, Steve H
Sousa, Alioscka A
Auh, Sungyoung
Wilson, Colin M
Sharma, Kamal
Aronova, Maria A
Leapman, Richard D
Griffiths, Gary L
Hall, Matthew D
Effective transvascular delivery of nanoparticles across the blood-brain tumor barrier into malignant glioma cells
title Effective transvascular delivery of nanoparticles across the blood-brain tumor barrier into malignant glioma cells
title_full Effective transvascular delivery of nanoparticles across the blood-brain tumor barrier into malignant glioma cells
title_fullStr Effective transvascular delivery of nanoparticles across the blood-brain tumor barrier into malignant glioma cells
title_full_unstemmed Effective transvascular delivery of nanoparticles across the blood-brain tumor barrier into malignant glioma cells
title_short Effective transvascular delivery of nanoparticles across the blood-brain tumor barrier into malignant glioma cells
title_sort effective transvascular delivery of nanoparticles across the blood-brain tumor barrier into malignant glioma cells
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2639552/
https://www.ncbi.nlm.nih.gov/pubmed/19094226
http://dx.doi.org/10.1186/1479-5876-6-80
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