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Irradiation Enhances the Ability of Monocytes as Nanoparticle Carrier for Cancer Therapy

The tumor-homing ability of monocytes renders them a potential cellular delivery system for alternative cancer therapies, although their migratory ability can be impaired following reagent uptake. Approaches that enhance monocyte tumor homing and promote their migration will improve the clinical val...

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Autores principales: Jiang, Pei-Shin, Yu, Ching-Fang, Yen, Chia-Yi, Woo, Christopher William, Lo, Shao-Hua, Huang, Yu-Kuan, Hong, Ji-Hong, Chiang, Chi-Shiun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4587928/
https://www.ncbi.nlm.nih.gov/pubmed/26418962
http://dx.doi.org/10.1371/journal.pone.0139043
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author Jiang, Pei-Shin
Yu, Ching-Fang
Yen, Chia-Yi
Woo, Christopher William
Lo, Shao-Hua
Huang, Yu-Kuan
Hong, Ji-Hong
Chiang, Chi-Shiun
author_facet Jiang, Pei-Shin
Yu, Ching-Fang
Yen, Chia-Yi
Woo, Christopher William
Lo, Shao-Hua
Huang, Yu-Kuan
Hong, Ji-Hong
Chiang, Chi-Shiun
author_sort Jiang, Pei-Shin
collection PubMed
description The tumor-homing ability of monocytes renders them a potential cellular delivery system for alternative cancer therapies, although their migratory ability can be impaired following reagent uptake. Approaches that enhance monocyte tumor homing and promote their migration will improve the clinical value of these cells as cellular carriers. Previous studies have shown that irradiation (IR) can promote macrophage aggregation in hypoxic regions. To investigate whether IR enhances the infiltration of bone marrow-derived monocytes (BMDMs) into tumors, the infiltration of BMDMs from GFP-transgenic mice in a murine prostate adenocarcinoma TRAMP-C1 model was examined by fluorescence microscopy. IR did not increase the number of BMDMs that infiltrated initially, but did increase monocyte retention within IR-treated tumors for up to 2 weeks. We also showed that BMDMs can take up various imaging and therapeutic agents, although the mobility of BMDMs decreased with increasing load. When BMDMs were differentiated in IR-treated tumor-conditioned medium (IR-CM) in vitro, the nanoparticle load-mediated inhibition of migration was attenuated. These IR-CM-differentiated BMDMs delivered polymer vesicles encapsulating doxorubicin to radiation therapy (RT)-induced hypoxic tumor regions, and enhanced the efficacy of RT. The prolonged retention of monocytes within irradiated tumor tissues and the ability of IR-CM to enhance the migratory ability of cargo-laden BMDMs suggest that monocytes pre-conditioned by IR-CM can potentially act as cellular carriers for targeted therapy following conventional RT.
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spelling pubmed-45879282015-10-02 Irradiation Enhances the Ability of Monocytes as Nanoparticle Carrier for Cancer Therapy Jiang, Pei-Shin Yu, Ching-Fang Yen, Chia-Yi Woo, Christopher William Lo, Shao-Hua Huang, Yu-Kuan Hong, Ji-Hong Chiang, Chi-Shiun PLoS One Research Article The tumor-homing ability of monocytes renders them a potential cellular delivery system for alternative cancer therapies, although their migratory ability can be impaired following reagent uptake. Approaches that enhance monocyte tumor homing and promote their migration will improve the clinical value of these cells as cellular carriers. Previous studies have shown that irradiation (IR) can promote macrophage aggregation in hypoxic regions. To investigate whether IR enhances the infiltration of bone marrow-derived monocytes (BMDMs) into tumors, the infiltration of BMDMs from GFP-transgenic mice in a murine prostate adenocarcinoma TRAMP-C1 model was examined by fluorescence microscopy. IR did not increase the number of BMDMs that infiltrated initially, but did increase monocyte retention within IR-treated tumors for up to 2 weeks. We also showed that BMDMs can take up various imaging and therapeutic agents, although the mobility of BMDMs decreased with increasing load. When BMDMs were differentiated in IR-treated tumor-conditioned medium (IR-CM) in vitro, the nanoparticle load-mediated inhibition of migration was attenuated. These IR-CM-differentiated BMDMs delivered polymer vesicles encapsulating doxorubicin to radiation therapy (RT)-induced hypoxic tumor regions, and enhanced the efficacy of RT. The prolonged retention of monocytes within irradiated tumor tissues and the ability of IR-CM to enhance the migratory ability of cargo-laden BMDMs suggest that monocytes pre-conditioned by IR-CM can potentially act as cellular carriers for targeted therapy following conventional RT. Public Library of Science 2015-09-29 /pmc/articles/PMC4587928/ /pubmed/26418962 http://dx.doi.org/10.1371/journal.pone.0139043 Text en © 2015 Jiang et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Jiang, Pei-Shin
Yu, Ching-Fang
Yen, Chia-Yi
Woo, Christopher William
Lo, Shao-Hua
Huang, Yu-Kuan
Hong, Ji-Hong
Chiang, Chi-Shiun
Irradiation Enhances the Ability of Monocytes as Nanoparticle Carrier for Cancer Therapy
title Irradiation Enhances the Ability of Monocytes as Nanoparticle Carrier for Cancer Therapy
title_full Irradiation Enhances the Ability of Monocytes as Nanoparticle Carrier for Cancer Therapy
title_fullStr Irradiation Enhances the Ability of Monocytes as Nanoparticle Carrier for Cancer Therapy
title_full_unstemmed Irradiation Enhances the Ability of Monocytes as Nanoparticle Carrier for Cancer Therapy
title_short Irradiation Enhances the Ability of Monocytes as Nanoparticle Carrier for Cancer Therapy
title_sort irradiation enhances the ability of monocytes as nanoparticle carrier for cancer therapy
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4587928/
https://www.ncbi.nlm.nih.gov/pubmed/26418962
http://dx.doi.org/10.1371/journal.pone.0139043
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