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Mononuclear phagocyte system blockade improves therapeutic exosome delivery to the myocardium

Rationale: Exosomes are emerging as a promising drug delivery carrier. However, rapid uptake of exosomes by the mononuclear phagocyte system (MPS) remains an obstacle for drug delivery into other targeted organs, including the heart. We hypothesized that prior blocking of uptake of exosomes by the M...

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Autores principales: Wan, Zhuo, Zhao, Lianbi, Lu, Fan, Gao, Xiaotong, Dong, Yan, Zhao, Yingxin, Wei, Mengying, Yang, Guodong, Xing, Changyang, Liu, Li
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6929612/
https://www.ncbi.nlm.nih.gov/pubmed/31903116
http://dx.doi.org/10.7150/thno.38198
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author Wan, Zhuo
Zhao, Lianbi
Lu, Fan
Gao, Xiaotong
Dong, Yan
Zhao, Yingxin
Wei, Mengying
Yang, Guodong
Xing, Changyang
Liu, Li
author_facet Wan, Zhuo
Zhao, Lianbi
Lu, Fan
Gao, Xiaotong
Dong, Yan
Zhao, Yingxin
Wei, Mengying
Yang, Guodong
Xing, Changyang
Liu, Li
author_sort Wan, Zhuo
collection PubMed
description Rationale: Exosomes are emerging as a promising drug delivery carrier. However, rapid uptake of exosomes by the mononuclear phagocyte system (MPS) remains an obstacle for drug delivery into other targeted organs, including the heart. We hypothesized that prior blocking of uptake of exosomes by the MPS would improve their delivery to the targeted organs. Methods: Exosomes were isolated from the cell culture medium. Fluorescence-labeled exosomes were tracked in vitro and in vivo by fluorescence imaging. The expression of clathrin heavy chain (Cltc), cavolin1, Pak1 and Rhoa, known genes for endocytosis, were profiled in various cell lines and organs by qPCR. The knockdown efficiency of siRNA against Cltc was analyzed by Western blotting. Exosome(control) and exosome(blocking) were constructed by encapsulating isolated exosomes with siControl or siClathrin via electroporation, while exosome(therapeutic) was constructed by encapsulating isolated exosomes with miR-21a. Doxorubicin-induced cardiotoxicity model was used to verify the therapeutic efficiency of the exosome-based miR-21a delivery by echocardiography. Results: Exosomes were preferentially accumulated in the liver and spleen, mainly due to the presence of abundant macrophages. Besides the well-known phagocytic effect, efficient endocytosis also contributes to the uptake of exosomes by macrophages. Cltc was found to be highly expressed in the macrophages compared with other endocytosis-associated genes. Accordingly, knockdown of Cltc significantly decreased the uptake of exosomes by macrophages in vitro and in vivo. Moreover, prior injection of exosome(blocking) strikingly improved the delivery efficiency of exosomes to organs other than spleen and liver. Consistently, compared with the direct injection of exosome(therapeutic), prior injection of exosome(blocking) produced a much better therapeutic effect on cardiac function in the doxorubicin-induced cardiotoxicity mouse model. Conclusions: Prior blocking of endocytosis of exosomes by macrophages with exosome(blocking) successfully and efficiently improves the distribution of following exosome(therapeutic) in targeted organs, like the heart. The established two-step exosome delivery strategy (blocking the uptake of exosomes first followed by delivery of therapeutic exosomes) would be a promising method for gene therapy.
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spelling pubmed-69296122020-01-04 Mononuclear phagocyte system blockade improves therapeutic exosome delivery to the myocardium Wan, Zhuo Zhao, Lianbi Lu, Fan Gao, Xiaotong Dong, Yan Zhao, Yingxin Wei, Mengying Yang, Guodong Xing, Changyang Liu, Li Theranostics Research Paper Rationale: Exosomes are emerging as a promising drug delivery carrier. However, rapid uptake of exosomes by the mononuclear phagocyte system (MPS) remains an obstacle for drug delivery into other targeted organs, including the heart. We hypothesized that prior blocking of uptake of exosomes by the MPS would improve their delivery to the targeted organs. Methods: Exosomes were isolated from the cell culture medium. Fluorescence-labeled exosomes were tracked in vitro and in vivo by fluorescence imaging. The expression of clathrin heavy chain (Cltc), cavolin1, Pak1 and Rhoa, known genes for endocytosis, were profiled in various cell lines and organs by qPCR. The knockdown efficiency of siRNA against Cltc was analyzed by Western blotting. Exosome(control) and exosome(blocking) were constructed by encapsulating isolated exosomes with siControl or siClathrin via electroporation, while exosome(therapeutic) was constructed by encapsulating isolated exosomes with miR-21a. Doxorubicin-induced cardiotoxicity model was used to verify the therapeutic efficiency of the exosome-based miR-21a delivery by echocardiography. Results: Exosomes were preferentially accumulated in the liver and spleen, mainly due to the presence of abundant macrophages. Besides the well-known phagocytic effect, efficient endocytosis also contributes to the uptake of exosomes by macrophages. Cltc was found to be highly expressed in the macrophages compared with other endocytosis-associated genes. Accordingly, knockdown of Cltc significantly decreased the uptake of exosomes by macrophages in vitro and in vivo. Moreover, prior injection of exosome(blocking) strikingly improved the delivery efficiency of exosomes to organs other than spleen and liver. Consistently, compared with the direct injection of exosome(therapeutic), prior injection of exosome(blocking) produced a much better therapeutic effect on cardiac function in the doxorubicin-induced cardiotoxicity mouse model. Conclusions: Prior blocking of endocytosis of exosomes by macrophages with exosome(blocking) successfully and efficiently improves the distribution of following exosome(therapeutic) in targeted organs, like the heart. The established two-step exosome delivery strategy (blocking the uptake of exosomes first followed by delivery of therapeutic exosomes) would be a promising method for gene therapy. Ivyspring International Publisher 2020-01-01 /pmc/articles/PMC6929612/ /pubmed/31903116 http://dx.doi.org/10.7150/thno.38198 Text en © The author(s) This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Wan, Zhuo
Zhao, Lianbi
Lu, Fan
Gao, Xiaotong
Dong, Yan
Zhao, Yingxin
Wei, Mengying
Yang, Guodong
Xing, Changyang
Liu, Li
Mononuclear phagocyte system blockade improves therapeutic exosome delivery to the myocardium
title Mononuclear phagocyte system blockade improves therapeutic exosome delivery to the myocardium
title_full Mononuclear phagocyte system blockade improves therapeutic exosome delivery to the myocardium
title_fullStr Mononuclear phagocyte system blockade improves therapeutic exosome delivery to the myocardium
title_full_unstemmed Mononuclear phagocyte system blockade improves therapeutic exosome delivery to the myocardium
title_short Mononuclear phagocyte system blockade improves therapeutic exosome delivery to the myocardium
title_sort mononuclear phagocyte system blockade improves therapeutic exosome delivery to the myocardium
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6929612/
https://www.ncbi.nlm.nih.gov/pubmed/31903116
http://dx.doi.org/10.7150/thno.38198
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