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High-efficiency liposomal encapsulation of a tyrosine kinase inhibitor leads to improved in vivo toxicity and tumor response profile

Staurosporine (STS) is a potent pan-kinase inhibitor with marked activity against several chemotherapy-resistant tumor types in vitro. The translational progress of this compound has been hindered by poor pharmacokinetics and toxicity. We sought to determine whether liposomal encapsulation of STS wo...

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Autores principales: Mukthavaram, Rajesh, Jiang, Pengfei, Saklecha, Rohit, Simberg, Dmitri, Bharati, Ila Sri, Nomura, Natsuko, Chao, Ying, Pastorino, Sandra, Pingle, Sandeep C, Fogal, Valentina, Wrasidlo, Wolf, Makale, Milan, Kesari, Santosh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3808212/
https://www.ncbi.nlm.nih.gov/pubmed/24174874
http://dx.doi.org/10.2147/IJN.S51949
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author Mukthavaram, Rajesh
Jiang, Pengfei
Saklecha, Rohit
Simberg, Dmitri
Bharati, Ila Sri
Nomura, Natsuko
Chao, Ying
Pastorino, Sandra
Pingle, Sandeep C
Fogal, Valentina
Wrasidlo, Wolf
Makale, Milan
Kesari, Santosh
author_facet Mukthavaram, Rajesh
Jiang, Pengfei
Saklecha, Rohit
Simberg, Dmitri
Bharati, Ila Sri
Nomura, Natsuko
Chao, Ying
Pastorino, Sandra
Pingle, Sandeep C
Fogal, Valentina
Wrasidlo, Wolf
Makale, Milan
Kesari, Santosh
author_sort Mukthavaram, Rajesh
collection PubMed
description Staurosporine (STS) is a potent pan-kinase inhibitor with marked activity against several chemotherapy-resistant tumor types in vitro. The translational progress of this compound has been hindered by poor pharmacokinetics and toxicity. We sought to determine whether liposomal encapsulation of STS would enhance antitumor efficacy and reduce toxicity, thereby supporting the feasibility of further preclinical development. We developed a novel reverse pH gradient liposomal loading method for STS, with an optimal buffer type and drug-to-lipid ratio. Our approach produced 70% loading efficiency with good retention, and we provide, for the first time, an assessment of the in vivo antitumor activity of STS. A low intravenous dose (0.8 mg/kg) inhibited U87 tumors in a murine flank model. Biodistribution showed preferential tumor accumulation, and body weight data, a sensitive index of STS toxicity, was unaffected by liposomal STS, but did decline with the free compound. In vitro experiments revealed that liposomal STS blocked Akt phosphorylation, induced poly(ADP-ribose) polymerase cleavage, and produced cell death via apoptosis. This study provides a basis to explore further the feasibility of liposomally encapsulated STS, and potentially related compounds for the management of resistant solid tumors.
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spelling pubmed-38082122013-10-30 High-efficiency liposomal encapsulation of a tyrosine kinase inhibitor leads to improved in vivo toxicity and tumor response profile Mukthavaram, Rajesh Jiang, Pengfei Saklecha, Rohit Simberg, Dmitri Bharati, Ila Sri Nomura, Natsuko Chao, Ying Pastorino, Sandra Pingle, Sandeep C Fogal, Valentina Wrasidlo, Wolf Makale, Milan Kesari, Santosh Int J Nanomedicine Original Research Staurosporine (STS) is a potent pan-kinase inhibitor with marked activity against several chemotherapy-resistant tumor types in vitro. The translational progress of this compound has been hindered by poor pharmacokinetics and toxicity. We sought to determine whether liposomal encapsulation of STS would enhance antitumor efficacy and reduce toxicity, thereby supporting the feasibility of further preclinical development. We developed a novel reverse pH gradient liposomal loading method for STS, with an optimal buffer type and drug-to-lipid ratio. Our approach produced 70% loading efficiency with good retention, and we provide, for the first time, an assessment of the in vivo antitumor activity of STS. A low intravenous dose (0.8 mg/kg) inhibited U87 tumors in a murine flank model. Biodistribution showed preferential tumor accumulation, and body weight data, a sensitive index of STS toxicity, was unaffected by liposomal STS, but did decline with the free compound. In vitro experiments revealed that liposomal STS blocked Akt phosphorylation, induced poly(ADP-ribose) polymerase cleavage, and produced cell death via apoptosis. This study provides a basis to explore further the feasibility of liposomally encapsulated STS, and potentially related compounds for the management of resistant solid tumors. Dove Medical Press 2013 2013-10-21 /pmc/articles/PMC3808212/ /pubmed/24174874 http://dx.doi.org/10.2147/IJN.S51949 Text en © 2013 Mukthavaram et al. This work is published by Dove Medical Press Limited, and licensed under Creative Commons Attribution – Non Commercial (unported, v3.0) License The full terms of the License are available at http://creativecommons.org/licenses/by-nc/3.0/. Non-commercial uses of the work are permitted without any further permission from Dove Medical Press Limited, provided the work is properly attributed.
spellingShingle Original Research
Mukthavaram, Rajesh
Jiang, Pengfei
Saklecha, Rohit
Simberg, Dmitri
Bharati, Ila Sri
Nomura, Natsuko
Chao, Ying
Pastorino, Sandra
Pingle, Sandeep C
Fogal, Valentina
Wrasidlo, Wolf
Makale, Milan
Kesari, Santosh
High-efficiency liposomal encapsulation of a tyrosine kinase inhibitor leads to improved in vivo toxicity and tumor response profile
title High-efficiency liposomal encapsulation of a tyrosine kinase inhibitor leads to improved in vivo toxicity and tumor response profile
title_full High-efficiency liposomal encapsulation of a tyrosine kinase inhibitor leads to improved in vivo toxicity and tumor response profile
title_fullStr High-efficiency liposomal encapsulation of a tyrosine kinase inhibitor leads to improved in vivo toxicity and tumor response profile
title_full_unstemmed High-efficiency liposomal encapsulation of a tyrosine kinase inhibitor leads to improved in vivo toxicity and tumor response profile
title_short High-efficiency liposomal encapsulation of a tyrosine kinase inhibitor leads to improved in vivo toxicity and tumor response profile
title_sort high-efficiency liposomal encapsulation of a tyrosine kinase inhibitor leads to improved in vivo toxicity and tumor response profile
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3808212/
https://www.ncbi.nlm.nih.gov/pubmed/24174874
http://dx.doi.org/10.2147/IJN.S51949
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