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Pharmacodynamic Modeling of Anti-Cancer Activity of Tetraiodothyroacetic Acid in a Perfused Cell Culture System

Unmodified or as a poly[lactide-co-glycolide] nanoparticle, tetraiodothyroacetic acid (tetrac) acts at the integrin αvβ3 receptor on human cancer cells to inhibit tumor cell proliferation and xenograft growth. To study in vitro the pharmacodynamics of tetrac formulations in the absence of and in con...

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Autores principales: Lin, Hung-Yun, Landersdorfer, Cornelia B., London, David, Meng, Ran, Lim, Chang-Uk, Lin, Cassie, Lin, Sharon, Tang, Heng-Yuan, Brown, David, Van Scoy, Brian, Kulawy, Robert, Queimado, Lurdes, Drusano, George L., Louie, Arnold, Davis, Faith B., Mousa, Shaker A., Davis, Paul J.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3033367/
https://www.ncbi.nlm.nih.gov/pubmed/21304935
http://dx.doi.org/10.1371/journal.pcbi.1001073
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author Lin, Hung-Yun
Landersdorfer, Cornelia B.
London, David
Meng, Ran
Lim, Chang-Uk
Lin, Cassie
Lin, Sharon
Tang, Heng-Yuan
Brown, David
Van Scoy, Brian
Kulawy, Robert
Queimado, Lurdes
Drusano, George L.
Louie, Arnold
Davis, Faith B.
Mousa, Shaker A.
Davis, Paul J.
author_facet Lin, Hung-Yun
Landersdorfer, Cornelia B.
London, David
Meng, Ran
Lim, Chang-Uk
Lin, Cassie
Lin, Sharon
Tang, Heng-Yuan
Brown, David
Van Scoy, Brian
Kulawy, Robert
Queimado, Lurdes
Drusano, George L.
Louie, Arnold
Davis, Faith B.
Mousa, Shaker A.
Davis, Paul J.
author_sort Lin, Hung-Yun
collection PubMed
description Unmodified or as a poly[lactide-co-glycolide] nanoparticle, tetraiodothyroacetic acid (tetrac) acts at the integrin αvβ3 receptor on human cancer cells to inhibit tumor cell proliferation and xenograft growth. To study in vitro the pharmacodynamics of tetrac formulations in the absence of and in conjunction with other chemotherapeutic agents, we developed a perfusion bellows cell culture system. Cells were grown on polymer flakes and exposed to various concentrations of tetrac, nano-tetrac, resveratrol, cetuximab, or a combination for up to 18 days. Cells were harvested and counted every one or two days. Both NONMEM VI and the exact Monte Carlo parametric expectation maximization algorithm in S-ADAPT were utilized for mathematical modeling. Unmodified tetrac inhibited the proliferation of cancer cells and did so with differing potency in different cell lines. The developed mechanism-based model included two effects of tetrac on different parts of the cell cycle which could be distinguished. For human breast cancer cells, modeling suggested a higher sensitivity (lower IC50) to the effect on success rate of replication than the effect on rate of growth, whereas the capacity (Imax) was larger for the effect on growth rate. Nanoparticulate tetrac (nano-tetrac), which does not enter into cells, had a higher potency and a larger anti-proliferative effect than unmodified tetrac. Fluorescence-activated cell sorting analysis of harvested cells revealed tetrac and nano-tetrac induced concentration-dependent apoptosis that was correlated with expression of pro-apoptotic proteins, such as p53, p21, PIG3 and BAD for nano-tetrac, while unmodified tetrac showed a different profile. Approximately additive anti-proliferative effects were found for the combinations of tetrac and resveratrol, tetrac and cetuximab (Erbitux), and nano-tetrac and cetuximab. Our in vitro perfusion cancer cell system together with mathematical modeling successfully described the anti-proliferative effects over time of tetrac and nano-tetrac and may be useful for dose-finding and studying the pharmacodynamics of other chemotherapeutic agents or their combinations.
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spelling pubmed-30333672011-02-08 Pharmacodynamic Modeling of Anti-Cancer Activity of Tetraiodothyroacetic Acid in a Perfused Cell Culture System Lin, Hung-Yun Landersdorfer, Cornelia B. London, David Meng, Ran Lim, Chang-Uk Lin, Cassie Lin, Sharon Tang, Heng-Yuan Brown, David Van Scoy, Brian Kulawy, Robert Queimado, Lurdes Drusano, George L. Louie, Arnold Davis, Faith B. Mousa, Shaker A. Davis, Paul J. PLoS Comput Biol Research Article Unmodified or as a poly[lactide-co-glycolide] nanoparticle, tetraiodothyroacetic acid (tetrac) acts at the integrin αvβ3 receptor on human cancer cells to inhibit tumor cell proliferation and xenograft growth. To study in vitro the pharmacodynamics of tetrac formulations in the absence of and in conjunction with other chemotherapeutic agents, we developed a perfusion bellows cell culture system. Cells were grown on polymer flakes and exposed to various concentrations of tetrac, nano-tetrac, resveratrol, cetuximab, or a combination for up to 18 days. Cells were harvested and counted every one or two days. Both NONMEM VI and the exact Monte Carlo parametric expectation maximization algorithm in S-ADAPT were utilized for mathematical modeling. Unmodified tetrac inhibited the proliferation of cancer cells and did so with differing potency in different cell lines. The developed mechanism-based model included two effects of tetrac on different parts of the cell cycle which could be distinguished. For human breast cancer cells, modeling suggested a higher sensitivity (lower IC50) to the effect on success rate of replication than the effect on rate of growth, whereas the capacity (Imax) was larger for the effect on growth rate. Nanoparticulate tetrac (nano-tetrac), which does not enter into cells, had a higher potency and a larger anti-proliferative effect than unmodified tetrac. Fluorescence-activated cell sorting analysis of harvested cells revealed tetrac and nano-tetrac induced concentration-dependent apoptosis that was correlated with expression of pro-apoptotic proteins, such as p53, p21, PIG3 and BAD for nano-tetrac, while unmodified tetrac showed a different profile. Approximately additive anti-proliferative effects were found for the combinations of tetrac and resveratrol, tetrac and cetuximab (Erbitux), and nano-tetrac and cetuximab. Our in vitro perfusion cancer cell system together with mathematical modeling successfully described the anti-proliferative effects over time of tetrac and nano-tetrac and may be useful for dose-finding and studying the pharmacodynamics of other chemotherapeutic agents or their combinations. Public Library of Science 2011-02-03 /pmc/articles/PMC3033367/ /pubmed/21304935 http://dx.doi.org/10.1371/journal.pcbi.1001073 Text en Lin 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
Lin, Hung-Yun
Landersdorfer, Cornelia B.
London, David
Meng, Ran
Lim, Chang-Uk
Lin, Cassie
Lin, Sharon
Tang, Heng-Yuan
Brown, David
Van Scoy, Brian
Kulawy, Robert
Queimado, Lurdes
Drusano, George L.
Louie, Arnold
Davis, Faith B.
Mousa, Shaker A.
Davis, Paul J.
Pharmacodynamic Modeling of Anti-Cancer Activity of Tetraiodothyroacetic Acid in a Perfused Cell Culture System
title Pharmacodynamic Modeling of Anti-Cancer Activity of Tetraiodothyroacetic Acid in a Perfused Cell Culture System
title_full Pharmacodynamic Modeling of Anti-Cancer Activity of Tetraiodothyroacetic Acid in a Perfused Cell Culture System
title_fullStr Pharmacodynamic Modeling of Anti-Cancer Activity of Tetraiodothyroacetic Acid in a Perfused Cell Culture System
title_full_unstemmed Pharmacodynamic Modeling of Anti-Cancer Activity of Tetraiodothyroacetic Acid in a Perfused Cell Culture System
title_short Pharmacodynamic Modeling of Anti-Cancer Activity of Tetraiodothyroacetic Acid in a Perfused Cell Culture System
title_sort pharmacodynamic modeling of anti-cancer activity of tetraiodothyroacetic acid in a perfused cell culture system
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3033367/
https://www.ncbi.nlm.nih.gov/pubmed/21304935
http://dx.doi.org/10.1371/journal.pcbi.1001073
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