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Biomimetic Acoustically-Responsive Vesicles for Theranostic Applications

In recent years, biomimetic cell membrane-derived particles have emerged as a new class of drug delivery system with advantages of biocompatibility, ease of isolation and long circulation profile. Here we report the development and potential theranostic applications of a new biomimetic acoustically-...

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Autores principales: Hsieh, Chen-Chan, Kang, Shih-Tsung, Lin, Yee-Hsien, Ho, Yi-Ju, Wang, Chung-Hsin, Yeh, Chih-Kuang, Chang, Chien-Wen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4568453/
https://www.ncbi.nlm.nih.gov/pubmed/26379791
http://dx.doi.org/10.7150/thno.11848
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author Hsieh, Chen-Chan
Kang, Shih-Tsung
Lin, Yee-Hsien
Ho, Yi-Ju
Wang, Chung-Hsin
Yeh, Chih-Kuang
Chang, Chien-Wen
author_facet Hsieh, Chen-Chan
Kang, Shih-Tsung
Lin, Yee-Hsien
Ho, Yi-Ju
Wang, Chung-Hsin
Yeh, Chih-Kuang
Chang, Chien-Wen
author_sort Hsieh, Chen-Chan
collection PubMed
description In recent years, biomimetic cell membrane-derived particles have emerged as a new class of drug delivery system with advantages of biocompatibility, ease of isolation and long circulation profile. Here we report the development and potential theranostic applications of a new biomimetic acoustically-responsive droplet system derived from mammalian red blood cell membrane (RBCM). We hypothesized that drug-loaded RBCM droplets (RBCMDs) would undergo a transition from liquid (droplets) to gas (bubbles) upon high intensity focused ultrasound (HIFU) insonation, resulting in on-demand drug release. The generated microbubbles could also serve as a contrast agent to enhance ultrasound imaging. As-synthesized RBCMDs exhibited uniform size, good dispersity and preservation of RBCM-associated proteins that prevented uptake by macrophages. Camptothecin (CPT), an anti-cancer drug, was successfully loaded in the RBCMDs with a loading efficiency of 2-3% and an encapsulation efficiency of 62-97%. A short (3 min) exposure to HIFU irradiation triggered release of CPT from the RBCMDs and the physical explosion of droplets damaged nearby cancer cells resulting in significant cell death. In addition, the acoustically vaporized RBCMDs significantly increased the ultrasound echo signal to 30 dB. Lastly, we demonstrated that RBCMDs could be acoustically vaporized in vivo in target tissues, and enhancing ultrasound imaging. Taken together, we have developed a new class of naturally derived RBCMDs which show great potential for future application in remotely triggered drug delivery and ultrasound imaging enhancement.
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spelling pubmed-45684532015-09-15 Biomimetic Acoustically-Responsive Vesicles for Theranostic Applications Hsieh, Chen-Chan Kang, Shih-Tsung Lin, Yee-Hsien Ho, Yi-Ju Wang, Chung-Hsin Yeh, Chih-Kuang Chang, Chien-Wen Theranostics Research Paper In recent years, biomimetic cell membrane-derived particles have emerged as a new class of drug delivery system with advantages of biocompatibility, ease of isolation and long circulation profile. Here we report the development and potential theranostic applications of a new biomimetic acoustically-responsive droplet system derived from mammalian red blood cell membrane (RBCM). We hypothesized that drug-loaded RBCM droplets (RBCMDs) would undergo a transition from liquid (droplets) to gas (bubbles) upon high intensity focused ultrasound (HIFU) insonation, resulting in on-demand drug release. The generated microbubbles could also serve as a contrast agent to enhance ultrasound imaging. As-synthesized RBCMDs exhibited uniform size, good dispersity and preservation of RBCM-associated proteins that prevented uptake by macrophages. Camptothecin (CPT), an anti-cancer drug, was successfully loaded in the RBCMDs with a loading efficiency of 2-3% and an encapsulation efficiency of 62-97%. A short (3 min) exposure to HIFU irradiation triggered release of CPT from the RBCMDs and the physical explosion of droplets damaged nearby cancer cells resulting in significant cell death. In addition, the acoustically vaporized RBCMDs significantly increased the ultrasound echo signal to 30 dB. Lastly, we demonstrated that RBCMDs could be acoustically vaporized in vivo in target tissues, and enhancing ultrasound imaging. Taken together, we have developed a new class of naturally derived RBCMDs which show great potential for future application in remotely triggered drug delivery and ultrasound imaging enhancement. Ivyspring International Publisher 2015-09-08 /pmc/articles/PMC4568453/ /pubmed/26379791 http://dx.doi.org/10.7150/thno.11848 Text en © 2015 Ivyspring International Publisher. Reproduction is permitted for personal, noncommercial use, provided that the article is in whole, unmodified, and properly cited. See http://ivyspring.com/terms for terms and conditions.
spellingShingle Research Paper
Hsieh, Chen-Chan
Kang, Shih-Tsung
Lin, Yee-Hsien
Ho, Yi-Ju
Wang, Chung-Hsin
Yeh, Chih-Kuang
Chang, Chien-Wen
Biomimetic Acoustically-Responsive Vesicles for Theranostic Applications
title Biomimetic Acoustically-Responsive Vesicles for Theranostic Applications
title_full Biomimetic Acoustically-Responsive Vesicles for Theranostic Applications
title_fullStr Biomimetic Acoustically-Responsive Vesicles for Theranostic Applications
title_full_unstemmed Biomimetic Acoustically-Responsive Vesicles for Theranostic Applications
title_short Biomimetic Acoustically-Responsive Vesicles for Theranostic Applications
title_sort biomimetic acoustically-responsive vesicles for theranostic applications
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4568453/
https://www.ncbi.nlm.nih.gov/pubmed/26379791
http://dx.doi.org/10.7150/thno.11848
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