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Blood exosomes regulate the tissue distribution of grapefruit-derived nanovector via CD36 and IGFR1 pathways

Tumor-specific delivery of therapeutics is challenging. One of the major hurdles for successfully delivering targeted agents by nanovectors is the filtering role of the liver in rapidly sequestering nanovectors from the circulation. Exosomes, a type of endogenous nanoparticle, circulate continuously...

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Autores principales: Wang, Qi-long, Zhuang, XiaoYing, Sriwastva, Mukesh K., Mu, Jingyao, Teng, Yun, Deng, Zhongbin, Zhang, Lifeng, Sundaram, Kumaran, Kumar, Anil, Miller, Donald, Yan, Jun, Zhang, Huang-Ge
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6217058/
https://www.ncbi.nlm.nih.gov/pubmed/30429877
http://dx.doi.org/10.7150/thno.27608
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author Wang, Qi-long
Zhuang, XiaoYing
Sriwastva, Mukesh K.
Mu, Jingyao
Teng, Yun
Deng, Zhongbin
Zhang, Lifeng
Sundaram, Kumaran
Kumar, Anil
Miller, Donald
Yan, Jun
Zhang, Huang-Ge
author_facet Wang, Qi-long
Zhuang, XiaoYing
Sriwastva, Mukesh K.
Mu, Jingyao
Teng, Yun
Deng, Zhongbin
Zhang, Lifeng
Sundaram, Kumaran
Kumar, Anil
Miller, Donald
Yan, Jun
Zhang, Huang-Ge
author_sort Wang, Qi-long
collection PubMed
description Tumor-specific delivery of therapeutics is challenging. One of the major hurdles for successfully delivering targeted agents by nanovectors is the filtering role of the liver in rapidly sequestering nanovectors from the circulation. Exosomes, a type of endogenous nanoparticle, circulate continuously in the peripheral blood and play a role in intercellular communication. The aim of this study was to determine whether the level of endogenous exosomes has an effect on nanovector delivery efficiency of targeted agents. Methods: Exosomes were isolated from peripheral blood and intravenously (I.V.) injected into tumor-bearing mice. Subsequently, 1,1-dioctadecyl-3,3,3'3'-tetramethylindotricarbocyanine-iodide (DiR) fluorescent dye-labeled nanoparticles, including grapefruit nanovectors (GNV) and standard liposomes, were I.V. injected in the mice. The efficiency of redirecting GNVs from liver to other organs of injected mice was further analyzed with in vivo imaging. The concentration of chemo drugs delivered by GNV was measured by HPLC and the anti-lung metastasis therapeutic effects of chemo drugs delivered by GNVs in mouse breast cancer and melanoma cancer models were evaluated. Results: We show that tail vein-injected exosomes isolated from mouse peripheral blood were predominately taken up by liver Kupffer cells. Injection of peripheral blood-derived exosomes before I.V. injection of grapefruit-derived nanovector (GNV) decreased the deposition of GNV in the liver and redirected the GNV to the lung and to the tumor in breast and melanoma tumor-bearing mouse models. Enhanced therapeutic efficiency of doxorubicin (Dox) or paclitaxel (PTX) carried by GNVs for lung metastases was demonstrated when there was an I.V. injection of exosomes before therapeutic treatment. Furthermore, we found that CD36 and IGFR1 receptor-mediated pathways played a critical role in the exosome-mediated inhibitory effect of GNV entry into liver macrophages. Conclusions: Collectively, our findings provide a foundation for using autologous exosomes to enhance therapeutic vector targeted delivery to the lung.
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spelling pubmed-62170582018-11-14 Blood exosomes regulate the tissue distribution of grapefruit-derived nanovector via CD36 and IGFR1 pathways Wang, Qi-long Zhuang, XiaoYing Sriwastva, Mukesh K. Mu, Jingyao Teng, Yun Deng, Zhongbin Zhang, Lifeng Sundaram, Kumaran Kumar, Anil Miller, Donald Yan, Jun Zhang, Huang-Ge Theranostics Research Paper Tumor-specific delivery of therapeutics is challenging. One of the major hurdles for successfully delivering targeted agents by nanovectors is the filtering role of the liver in rapidly sequestering nanovectors from the circulation. Exosomes, a type of endogenous nanoparticle, circulate continuously in the peripheral blood and play a role in intercellular communication. The aim of this study was to determine whether the level of endogenous exosomes has an effect on nanovector delivery efficiency of targeted agents. Methods: Exosomes were isolated from peripheral blood and intravenously (I.V.) injected into tumor-bearing mice. Subsequently, 1,1-dioctadecyl-3,3,3'3'-tetramethylindotricarbocyanine-iodide (DiR) fluorescent dye-labeled nanoparticles, including grapefruit nanovectors (GNV) and standard liposomes, were I.V. injected in the mice. The efficiency of redirecting GNVs from liver to other organs of injected mice was further analyzed with in vivo imaging. The concentration of chemo drugs delivered by GNV was measured by HPLC and the anti-lung metastasis therapeutic effects of chemo drugs delivered by GNVs in mouse breast cancer and melanoma cancer models were evaluated. Results: We show that tail vein-injected exosomes isolated from mouse peripheral blood were predominately taken up by liver Kupffer cells. Injection of peripheral blood-derived exosomes before I.V. injection of grapefruit-derived nanovector (GNV) decreased the deposition of GNV in the liver and redirected the GNV to the lung and to the tumor in breast and melanoma tumor-bearing mouse models. Enhanced therapeutic efficiency of doxorubicin (Dox) or paclitaxel (PTX) carried by GNVs for lung metastases was demonstrated when there was an I.V. injection of exosomes before therapeutic treatment. Furthermore, we found that CD36 and IGFR1 receptor-mediated pathways played a critical role in the exosome-mediated inhibitory effect of GNV entry into liver macrophages. Conclusions: Collectively, our findings provide a foundation for using autologous exosomes to enhance therapeutic vector targeted delivery to the lung. Ivyspring International Publisher 2018-09-09 /pmc/articles/PMC6217058/ /pubmed/30429877 http://dx.doi.org/10.7150/thno.27608 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
Wang, Qi-long
Zhuang, XiaoYing
Sriwastva, Mukesh K.
Mu, Jingyao
Teng, Yun
Deng, Zhongbin
Zhang, Lifeng
Sundaram, Kumaran
Kumar, Anil
Miller, Donald
Yan, Jun
Zhang, Huang-Ge
Blood exosomes regulate the tissue distribution of grapefruit-derived nanovector via CD36 and IGFR1 pathways
title Blood exosomes regulate the tissue distribution of grapefruit-derived nanovector via CD36 and IGFR1 pathways
title_full Blood exosomes regulate the tissue distribution of grapefruit-derived nanovector via CD36 and IGFR1 pathways
title_fullStr Blood exosomes regulate the tissue distribution of grapefruit-derived nanovector via CD36 and IGFR1 pathways
title_full_unstemmed Blood exosomes regulate the tissue distribution of grapefruit-derived nanovector via CD36 and IGFR1 pathways
title_short Blood exosomes regulate the tissue distribution of grapefruit-derived nanovector via CD36 and IGFR1 pathways
title_sort blood exosomes regulate the tissue distribution of grapefruit-derived nanovector via cd36 and igfr1 pathways
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6217058/
https://www.ncbi.nlm.nih.gov/pubmed/30429877
http://dx.doi.org/10.7150/thno.27608
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