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Lipid-Iron Nanoparticle with a Cell Stress Release Mechanism Combined with a Local Alternating Magnetic Field Enables Site-Activated Drug Release
SIMPLE SUMMARY: A novel active release system magnetic sphingomyelin-containing liposome encapsulated with indocyanine green, fluorescent marker, or the anticancer drug cisplatin was evaluated. The liposomal sphingomyelin is a target for the sphingomyelinase enzyme, which is released by stressed cel...
Autores principales: | , , , , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2020
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7765112/ https://www.ncbi.nlm.nih.gov/pubmed/33327621 http://dx.doi.org/10.3390/cancers12123767 |
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author | Peñate Medina, Tuula Gerle, Mirko Humbert, Jana Chu, Hanwen Köpnick, Anna-Lena Barkmann, Reinhard Garamus, Vasil M. Sanz, Beatriz Purcz, Nicolai Will, Olga Appold, Lia Damm, Timo Suojanen, Juho Arnold, Philipp Lucius, Ralph Willumeit-Römer, Regina Açil, Yahya Wiltfang, Joerg Goya, Gerardo F. Glüer, Claus C. Peñate Medina, Oula |
author_facet | Peñate Medina, Tuula Gerle, Mirko Humbert, Jana Chu, Hanwen Köpnick, Anna-Lena Barkmann, Reinhard Garamus, Vasil M. Sanz, Beatriz Purcz, Nicolai Will, Olga Appold, Lia Damm, Timo Suojanen, Juho Arnold, Philipp Lucius, Ralph Willumeit-Römer, Regina Açil, Yahya Wiltfang, Joerg Goya, Gerardo F. Glüer, Claus C. Peñate Medina, Oula |
author_sort | Peñate Medina, Tuula |
collection | PubMed |
description | SIMPLE SUMMARY: A novel active release system magnetic sphingomyelin-containing liposome encapsulated with indocyanine green, fluorescent marker, or the anticancer drug cisplatin was evaluated. The liposomal sphingomyelin is a target for the sphingomyelinase enzyme, which is released by stressed cells. Thus, sphingomyelin containing liposomes behave as a sensitizer for biological stress situations. In addition, the liposomes were engineered by adding paramagnetic beads to act as a receiver of outside given magnetic energy. The enzymatic activity towards liposomes and destruction caused by the applied magnetic field caused the release of the content from the liposomes. By using these novel liposomes, we could improve the drug release feature of liposomes. The improved targeting and drug-release were shown in vitro and the orthotopic tongue cancer model in mice optical imaging. The increased delivery of cisplatin prolonged the survival of the targeted delivery group versus free cisplatin. ABSTRACT: Most available cancer chemotherapies are based on systemically administered small organic molecules, and only a tiny fraction of the drug reaches the disease site. The approach causes significant side effects and limits the outcome of the therapy. Targeted drug delivery provides an alternative to improve the situation. However, due to the poor release characteristics of the delivery systems, limitations remain. This report presents a new approach to address the challenges using two fundamentally different mechanisms to trigger the release from the liposomal carrier. We use an endogenous disease marker, an enzyme, combined with an externally applied magnetic field, to open the delivery system at the correct time only in the disease site. This site-activated release system is a novel two-switch nanomachine that can be regulated by a cell stress-induced enzyme at the cellular level and be remotely controlled using an applied magnetic field. We tested the concept using sphingomyelin-containing liposomes encapsulated with indocyanine green, fluorescent marker, or the anticancer drug cisplatin. We engineered the liposomes by adding paramagnetic beads to act as a receiver of outside magnetic energy. The developed multifunctional liposomes were characterized in vitro in leakage studies and cell internalization studies. The release system was further studied in vivo in imaging and therapy trials using a squamous cell carcinoma tumor in the mouse as a disease model. In vitro studies showed an increased release of loaded material when stress-related enzyme and magnetic field was applied to the carrier liposomes. The theranostic liposomes were found in tumors, and the improved therapeutic effect was shown in the survival studies. |
format | Online Article Text |
id | pubmed-7765112 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-77651122020-12-27 Lipid-Iron Nanoparticle with a Cell Stress Release Mechanism Combined with a Local Alternating Magnetic Field Enables Site-Activated Drug Release Peñate Medina, Tuula Gerle, Mirko Humbert, Jana Chu, Hanwen Köpnick, Anna-Lena Barkmann, Reinhard Garamus, Vasil M. Sanz, Beatriz Purcz, Nicolai Will, Olga Appold, Lia Damm, Timo Suojanen, Juho Arnold, Philipp Lucius, Ralph Willumeit-Römer, Regina Açil, Yahya Wiltfang, Joerg Goya, Gerardo F. Glüer, Claus C. Peñate Medina, Oula Cancers (Basel) Article SIMPLE SUMMARY: A novel active release system magnetic sphingomyelin-containing liposome encapsulated with indocyanine green, fluorescent marker, or the anticancer drug cisplatin was evaluated. The liposomal sphingomyelin is a target for the sphingomyelinase enzyme, which is released by stressed cells. Thus, sphingomyelin containing liposomes behave as a sensitizer for biological stress situations. In addition, the liposomes were engineered by adding paramagnetic beads to act as a receiver of outside given magnetic energy. The enzymatic activity towards liposomes and destruction caused by the applied magnetic field caused the release of the content from the liposomes. By using these novel liposomes, we could improve the drug release feature of liposomes. The improved targeting and drug-release were shown in vitro and the orthotopic tongue cancer model in mice optical imaging. The increased delivery of cisplatin prolonged the survival of the targeted delivery group versus free cisplatin. ABSTRACT: Most available cancer chemotherapies are based on systemically administered small organic molecules, and only a tiny fraction of the drug reaches the disease site. The approach causes significant side effects and limits the outcome of the therapy. Targeted drug delivery provides an alternative to improve the situation. However, due to the poor release characteristics of the delivery systems, limitations remain. This report presents a new approach to address the challenges using two fundamentally different mechanisms to trigger the release from the liposomal carrier. We use an endogenous disease marker, an enzyme, combined with an externally applied magnetic field, to open the delivery system at the correct time only in the disease site. This site-activated release system is a novel two-switch nanomachine that can be regulated by a cell stress-induced enzyme at the cellular level and be remotely controlled using an applied magnetic field. We tested the concept using sphingomyelin-containing liposomes encapsulated with indocyanine green, fluorescent marker, or the anticancer drug cisplatin. We engineered the liposomes by adding paramagnetic beads to act as a receiver of outside magnetic energy. The developed multifunctional liposomes were characterized in vitro in leakage studies and cell internalization studies. The release system was further studied in vivo in imaging and therapy trials using a squamous cell carcinoma tumor in the mouse as a disease model. In vitro studies showed an increased release of loaded material when stress-related enzyme and magnetic field was applied to the carrier liposomes. The theranostic liposomes were found in tumors, and the improved therapeutic effect was shown in the survival studies. MDPI 2020-12-14 /pmc/articles/PMC7765112/ /pubmed/33327621 http://dx.doi.org/10.3390/cancers12123767 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Article Peñate Medina, Tuula Gerle, Mirko Humbert, Jana Chu, Hanwen Köpnick, Anna-Lena Barkmann, Reinhard Garamus, Vasil M. Sanz, Beatriz Purcz, Nicolai Will, Olga Appold, Lia Damm, Timo Suojanen, Juho Arnold, Philipp Lucius, Ralph Willumeit-Römer, Regina Açil, Yahya Wiltfang, Joerg Goya, Gerardo F. Glüer, Claus C. Peñate Medina, Oula Lipid-Iron Nanoparticle with a Cell Stress Release Mechanism Combined with a Local Alternating Magnetic Field Enables Site-Activated Drug Release |
title | Lipid-Iron Nanoparticle with a Cell Stress Release Mechanism Combined with a Local Alternating Magnetic Field Enables Site-Activated Drug Release |
title_full | Lipid-Iron Nanoparticle with a Cell Stress Release Mechanism Combined with a Local Alternating Magnetic Field Enables Site-Activated Drug Release |
title_fullStr | Lipid-Iron Nanoparticle with a Cell Stress Release Mechanism Combined with a Local Alternating Magnetic Field Enables Site-Activated Drug Release |
title_full_unstemmed | Lipid-Iron Nanoparticle with a Cell Stress Release Mechanism Combined with a Local Alternating Magnetic Field Enables Site-Activated Drug Release |
title_short | Lipid-Iron Nanoparticle with a Cell Stress Release Mechanism Combined with a Local Alternating Magnetic Field Enables Site-Activated Drug Release |
title_sort | lipid-iron nanoparticle with a cell stress release mechanism combined with a local alternating magnetic field enables site-activated drug release |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7765112/ https://www.ncbi.nlm.nih.gov/pubmed/33327621 http://dx.doi.org/10.3390/cancers12123767 |
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