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Adjuvant Chemotherapy for Brain Tumors Delivered via a Novel Intra-Cavity Moldable Polymer Matrix

INTRODUCTION: Polymer-based delivery systems offer innovative intra-cavity administration of drugs, with the potential to better target micro-deposits of cancer cells in brain parenchyma beyond the resected cavity. Here we evaluate clinical utility, toxicity and sustained drug release capability of...

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Autores principales: Rahman, Cheryl V., Smith, Stuart J., Morgan, Paul S., Langmack, Keith A., Clarke, Phil A., Ritchie, Alison A., Macarthur, Donald C., Rose, Felicity R., Shakesheff, Kevin M., Grundy, Richard G., Ruman Rahman
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3796488/
https://www.ncbi.nlm.nih.gov/pubmed/24155955
http://dx.doi.org/10.1371/journal.pone.0077435
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author Rahman, Cheryl V.
Smith, Stuart J.
Morgan, Paul S.
Langmack, Keith A.
Clarke, Phil A.
Ritchie, Alison A.
Macarthur, Donald C.
Rose, Felicity R.
Shakesheff, Kevin M.
Grundy, Richard G.
Ruman Rahman,
author_facet Rahman, Cheryl V.
Smith, Stuart J.
Morgan, Paul S.
Langmack, Keith A.
Clarke, Phil A.
Ritchie, Alison A.
Macarthur, Donald C.
Rose, Felicity R.
Shakesheff, Kevin M.
Grundy, Richard G.
Ruman Rahman,
author_sort Rahman, Cheryl V.
collection PubMed
description INTRODUCTION: Polymer-based delivery systems offer innovative intra-cavity administration of drugs, with the potential to better target micro-deposits of cancer cells in brain parenchyma beyond the resected cavity. Here we evaluate clinical utility, toxicity and sustained drug release capability of a novel formulation of poly(lactic-co-glycolic acid) (PLGA)/poly(ethylene glycol) (PEG) microparticles. METHODS: PLGA/PEG microparticle-based matrices were molded around an ex vivo brain pseudo-resection cavity and analyzed using magnetic resonance imaging and computerized tomography. In vitro toxicity of the polymer was assessed using tumor and endothelial cells and drug release from trichostatin A-, etoposide- and methotrexate-loaded matrices was determined. To verify activity of released agents, tumor cells were seeded onto drug-loaded matrices and viability assessed. RESULTS: PLGA/PEG matrices can be molded around a pseudo-resection cavity wall with no polymer-related artifact on clinical scans. The polymer withstands fractionated radiotherapy, with no disruption of microparticle structure. No toxicity was evident when tumor or endothelial cells were grown on control matrices in vitro. Trichostatin A, etoposide and methotrexate were released from the matrices over a 3-4 week period in vitro and etoposide released over 3 days in vivo, with released agents retaining cytotoxic capabilities. PLGA/PEG microparticle-based matrices molded around a resection cavity wall are distinguishable in clinical scanning modalities. Matrices are non-toxic in vitro suggesting good biocompatibility in vivo. Active trichostatin A, etoposide and methotrexate can be incorporated and released gradually from matrices, with radiotherapy unlikely to interfere with release. CONCLUSION: The PLGA/PEG delivery system offers an innovative intra-cavity approach to administer chemotherapeutics for improved local control of malignant brain tumors.
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spelling pubmed-37964882013-10-23 Adjuvant Chemotherapy for Brain Tumors Delivered via a Novel Intra-Cavity Moldable Polymer Matrix Rahman, Cheryl V. Smith, Stuart J. Morgan, Paul S. Langmack, Keith A. Clarke, Phil A. Ritchie, Alison A. Macarthur, Donald C. Rose, Felicity R. Shakesheff, Kevin M. Grundy, Richard G. Ruman Rahman, PLoS One Research Article INTRODUCTION: Polymer-based delivery systems offer innovative intra-cavity administration of drugs, with the potential to better target micro-deposits of cancer cells in brain parenchyma beyond the resected cavity. Here we evaluate clinical utility, toxicity and sustained drug release capability of a novel formulation of poly(lactic-co-glycolic acid) (PLGA)/poly(ethylene glycol) (PEG) microparticles. METHODS: PLGA/PEG microparticle-based matrices were molded around an ex vivo brain pseudo-resection cavity and analyzed using magnetic resonance imaging and computerized tomography. In vitro toxicity of the polymer was assessed using tumor and endothelial cells and drug release from trichostatin A-, etoposide- and methotrexate-loaded matrices was determined. To verify activity of released agents, tumor cells were seeded onto drug-loaded matrices and viability assessed. RESULTS: PLGA/PEG matrices can be molded around a pseudo-resection cavity wall with no polymer-related artifact on clinical scans. The polymer withstands fractionated radiotherapy, with no disruption of microparticle structure. No toxicity was evident when tumor or endothelial cells were grown on control matrices in vitro. Trichostatin A, etoposide and methotrexate were released from the matrices over a 3-4 week period in vitro and etoposide released over 3 days in vivo, with released agents retaining cytotoxic capabilities. PLGA/PEG microparticle-based matrices molded around a resection cavity wall are distinguishable in clinical scanning modalities. Matrices are non-toxic in vitro suggesting good biocompatibility in vivo. Active trichostatin A, etoposide and methotrexate can be incorporated and released gradually from matrices, with radiotherapy unlikely to interfere with release. CONCLUSION: The PLGA/PEG delivery system offers an innovative intra-cavity approach to administer chemotherapeutics for improved local control of malignant brain tumors. Public Library of Science 2013-10-14 /pmc/articles/PMC3796488/ /pubmed/24155955 http://dx.doi.org/10.1371/journal.pone.0077435 Text en © 2013 Rahman 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
Rahman, Cheryl V.
Smith, Stuart J.
Morgan, Paul S.
Langmack, Keith A.
Clarke, Phil A.
Ritchie, Alison A.
Macarthur, Donald C.
Rose, Felicity R.
Shakesheff, Kevin M.
Grundy, Richard G.
Ruman Rahman,
Adjuvant Chemotherapy for Brain Tumors Delivered via a Novel Intra-Cavity Moldable Polymer Matrix
title Adjuvant Chemotherapy for Brain Tumors Delivered via a Novel Intra-Cavity Moldable Polymer Matrix
title_full Adjuvant Chemotherapy for Brain Tumors Delivered via a Novel Intra-Cavity Moldable Polymer Matrix
title_fullStr Adjuvant Chemotherapy for Brain Tumors Delivered via a Novel Intra-Cavity Moldable Polymer Matrix
title_full_unstemmed Adjuvant Chemotherapy for Brain Tumors Delivered via a Novel Intra-Cavity Moldable Polymer Matrix
title_short Adjuvant Chemotherapy for Brain Tumors Delivered via a Novel Intra-Cavity Moldable Polymer Matrix
title_sort adjuvant chemotherapy for brain tumors delivered via a novel intra-cavity moldable polymer matrix
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3796488/
https://www.ncbi.nlm.nih.gov/pubmed/24155955
http://dx.doi.org/10.1371/journal.pone.0077435
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