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Folic acid-modified Exosome-PH20 enhances the efficiency of therapy via modulation of the tumor microenvironment and directly inhibits tumor cell metastasis

High accumulation of hyaluronan (HA) in the tumor microenvironment leads to an increase in the interstitial pressure and reduction perfusion of drugs. Furthermore, high molecular-weight (HMW)-HA suppresses M1 macrophage polarization, enhances M2 polarization, and induces immunosuppression. Hyaluroni...

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Autores principales: Feng, Chunxiang, Xiong, Zhiyong, Wang, Cheng, Xiao, Wen, Xiao, Haibing, Xie, Kairu, Chen, Ke, Liang, Huageng, Zhang, Xiaoping, Yang, Hongmei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7560580/
https://www.ncbi.nlm.nih.gov/pubmed/33102939
http://dx.doi.org/10.1016/j.bioactmat.2020.09.014
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author Feng, Chunxiang
Xiong, Zhiyong
Wang, Cheng
Xiao, Wen
Xiao, Haibing
Xie, Kairu
Chen, Ke
Liang, Huageng
Zhang, Xiaoping
Yang, Hongmei
author_facet Feng, Chunxiang
Xiong, Zhiyong
Wang, Cheng
Xiao, Wen
Xiao, Haibing
Xie, Kairu
Chen, Ke
Liang, Huageng
Zhang, Xiaoping
Yang, Hongmei
author_sort Feng, Chunxiang
collection PubMed
description High accumulation of hyaluronan (HA) in the tumor microenvironment leads to an increase in the interstitial pressure and reduction perfusion of drugs. Furthermore, high molecular-weight (HMW)-HA suppresses M1 macrophage polarization, enhances M2 polarization, and induces immunosuppression. Hyaluronidase treatment have attempted to decrease the quantity of HA in tumors. However, hyaluronidase-driven HA degradation driven accelerates tumor cell metastasis, which is a major cause of mortality in cancer patients. Thus, we designed a novel exosome-based drug delivery system (DDS), named Exos-PH20-FA, using genetic engineering to express human hyaluronidase (PH20) and self-assembly techniques to modify the exosomes with folic acid (FA). Our results show that Exos-PH20-FA degraded HMW-HA to low-molecular-weight (LMW)-HA. Moreover, LMW-HA polarized macrophages to the M1 phenotype and reduced the number of relevant immunosuppressive immunocytes which changed the immune microenvironment from an immunosuppressive to immunosupportive phenotype. Furthermore, we demonstrated Exos-PH20-FA directly reduced hyaluronidase-induced metastasis of tumor cells. This tumor treatment also allowed an enhanced delivery of chemotherapy by tumor-targeting effect with FA modification. Our findings indicate that Exos-PH20-FA improves tumor treatment efficiency and reduces the side effects of hyaluronidase treatment, namely tumor cell metastasis. This all-in-one exosome-based HA targeting DDS maybe a promising treatment that yields more efficient and safer results.
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spelling pubmed-75605802020-10-23 Folic acid-modified Exosome-PH20 enhances the efficiency of therapy via modulation of the tumor microenvironment and directly inhibits tumor cell metastasis Feng, Chunxiang Xiong, Zhiyong Wang, Cheng Xiao, Wen Xiao, Haibing Xie, Kairu Chen, Ke Liang, Huageng Zhang, Xiaoping Yang, Hongmei Bioact Mater Article High accumulation of hyaluronan (HA) in the tumor microenvironment leads to an increase in the interstitial pressure and reduction perfusion of drugs. Furthermore, high molecular-weight (HMW)-HA suppresses M1 macrophage polarization, enhances M2 polarization, and induces immunosuppression. Hyaluronidase treatment have attempted to decrease the quantity of HA in tumors. However, hyaluronidase-driven HA degradation driven accelerates tumor cell metastasis, which is a major cause of mortality in cancer patients. Thus, we designed a novel exosome-based drug delivery system (DDS), named Exos-PH20-FA, using genetic engineering to express human hyaluronidase (PH20) and self-assembly techniques to modify the exosomes with folic acid (FA). Our results show that Exos-PH20-FA degraded HMW-HA to low-molecular-weight (LMW)-HA. Moreover, LMW-HA polarized macrophages to the M1 phenotype and reduced the number of relevant immunosuppressive immunocytes which changed the immune microenvironment from an immunosuppressive to immunosupportive phenotype. Furthermore, we demonstrated Exos-PH20-FA directly reduced hyaluronidase-induced metastasis of tumor cells. This tumor treatment also allowed an enhanced delivery of chemotherapy by tumor-targeting effect with FA modification. Our findings indicate that Exos-PH20-FA improves tumor treatment efficiency and reduces the side effects of hyaluronidase treatment, namely tumor cell metastasis. This all-in-one exosome-based HA targeting DDS maybe a promising treatment that yields more efficient and safer results. KeAi Publishing 2020-10-09 /pmc/articles/PMC7560580/ /pubmed/33102939 http://dx.doi.org/10.1016/j.bioactmat.2020.09.014 Text en © 2020 [The Author/The Authors] http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Feng, Chunxiang
Xiong, Zhiyong
Wang, Cheng
Xiao, Wen
Xiao, Haibing
Xie, Kairu
Chen, Ke
Liang, Huageng
Zhang, Xiaoping
Yang, Hongmei
Folic acid-modified Exosome-PH20 enhances the efficiency of therapy via modulation of the tumor microenvironment and directly inhibits tumor cell metastasis
title Folic acid-modified Exosome-PH20 enhances the efficiency of therapy via modulation of the tumor microenvironment and directly inhibits tumor cell metastasis
title_full Folic acid-modified Exosome-PH20 enhances the efficiency of therapy via modulation of the tumor microenvironment and directly inhibits tumor cell metastasis
title_fullStr Folic acid-modified Exosome-PH20 enhances the efficiency of therapy via modulation of the tumor microenvironment and directly inhibits tumor cell metastasis
title_full_unstemmed Folic acid-modified Exosome-PH20 enhances the efficiency of therapy via modulation of the tumor microenvironment and directly inhibits tumor cell metastasis
title_short Folic acid-modified Exosome-PH20 enhances the efficiency of therapy via modulation of the tumor microenvironment and directly inhibits tumor cell metastasis
title_sort folic acid-modified exosome-ph20 enhances the efficiency of therapy via modulation of the tumor microenvironment and directly inhibits tumor cell metastasis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7560580/
https://www.ncbi.nlm.nih.gov/pubmed/33102939
http://dx.doi.org/10.1016/j.bioactmat.2020.09.014
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