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Synergistic Effects of Secretory Phospholipase A(2) from the Venom of Agkistrodon piscivorus piscivorus with Cancer Chemotherapeutic Agents

Healthy cells typically resist hydrolysis catalyzed by snake venom secretory phospholipase A(2). However, during various forms of programmed cell death, they become vulnerable to attack by the enzyme. This observation raises the question of whether the specificity of the enzyme for dying cells could...

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Autores principales: Nelson, Jennifer, Barlow, Kristen, Beck, D. Olin, Berbert, Amanda, Eshenroder, Nathan, Francom, Lyndee, Pruitt, Mark, Thompson, Kina, Thompson, Kyle, Thurber, Brian, Yeung, Celestine H.-Y., Judd, Allan M., Bell, John D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3591165/
https://www.ncbi.nlm.nih.gov/pubmed/23509743
http://dx.doi.org/10.1155/2013/565287
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author Nelson, Jennifer
Barlow, Kristen
Beck, D. Olin
Berbert, Amanda
Eshenroder, Nathan
Francom, Lyndee
Pruitt, Mark
Thompson, Kina
Thompson, Kyle
Thurber, Brian
Yeung, Celestine H.-Y.
Judd, Allan M.
Bell, John D.
author_facet Nelson, Jennifer
Barlow, Kristen
Beck, D. Olin
Berbert, Amanda
Eshenroder, Nathan
Francom, Lyndee
Pruitt, Mark
Thompson, Kina
Thompson, Kyle
Thurber, Brian
Yeung, Celestine H.-Y.
Judd, Allan M.
Bell, John D.
author_sort Nelson, Jennifer
collection PubMed
description Healthy cells typically resist hydrolysis catalyzed by snake venom secretory phospholipase A(2). However, during various forms of programmed cell death, they become vulnerable to attack by the enzyme. This observation raises the question of whether the specificity of the enzyme for dying cells could be used as a strategy to eliminate tumor cells that have been intoxicated but not directly killed by chemotherapeutic agents. This idea was tested with S49 lymphoma cells and a broad range of antineoplastic drugs: methotrexate, daunorubicin, actinomycin D, and paclitaxel. In each case, a substantial population of treated cells was still alive yet vulnerable to attack by the enzyme. Induction of cell death by these agents also perturbed the biophysical properties of the membrane as detected by merocyanine 540 and trimethylammonium-diphenylhexatriene. These results suggest that exposure of lymphoma cells to these drugs universally causes changes to the cell membrane that render it susceptible to enzymatic attack. The data also argue that the snake venom enzyme is not only capable of clearing cell corpses but can aid in the demise of tumor cells that have initiated but not yet completed the death process.
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spelling pubmed-35911652013-03-18 Synergistic Effects of Secretory Phospholipase A(2) from the Venom of Agkistrodon piscivorus piscivorus with Cancer Chemotherapeutic Agents Nelson, Jennifer Barlow, Kristen Beck, D. Olin Berbert, Amanda Eshenroder, Nathan Francom, Lyndee Pruitt, Mark Thompson, Kina Thompson, Kyle Thurber, Brian Yeung, Celestine H.-Y. Judd, Allan M. Bell, John D. Biomed Res Int Research Article Healthy cells typically resist hydrolysis catalyzed by snake venom secretory phospholipase A(2). However, during various forms of programmed cell death, they become vulnerable to attack by the enzyme. This observation raises the question of whether the specificity of the enzyme for dying cells could be used as a strategy to eliminate tumor cells that have been intoxicated but not directly killed by chemotherapeutic agents. This idea was tested with S49 lymphoma cells and a broad range of antineoplastic drugs: methotrexate, daunorubicin, actinomycin D, and paclitaxel. In each case, a substantial population of treated cells was still alive yet vulnerable to attack by the enzyme. Induction of cell death by these agents also perturbed the biophysical properties of the membrane as detected by merocyanine 540 and trimethylammonium-diphenylhexatriene. These results suggest that exposure of lymphoma cells to these drugs universally causes changes to the cell membrane that render it susceptible to enzymatic attack. The data also argue that the snake venom enzyme is not only capable of clearing cell corpses but can aid in the demise of tumor cells that have initiated but not yet completed the death process. Hindawi Publishing Corporation 2013 2012-12-27 /pmc/articles/PMC3591165/ /pubmed/23509743 http://dx.doi.org/10.1155/2013/565287 Text en Copyright © 2013 Jennifer Nelson et al. https://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Nelson, Jennifer
Barlow, Kristen
Beck, D. Olin
Berbert, Amanda
Eshenroder, Nathan
Francom, Lyndee
Pruitt, Mark
Thompson, Kina
Thompson, Kyle
Thurber, Brian
Yeung, Celestine H.-Y.
Judd, Allan M.
Bell, John D.
Synergistic Effects of Secretory Phospholipase A(2) from the Venom of Agkistrodon piscivorus piscivorus with Cancer Chemotherapeutic Agents
title Synergistic Effects of Secretory Phospholipase A(2) from the Venom of Agkistrodon piscivorus piscivorus with Cancer Chemotherapeutic Agents
title_full Synergistic Effects of Secretory Phospholipase A(2) from the Venom of Agkistrodon piscivorus piscivorus with Cancer Chemotherapeutic Agents
title_fullStr Synergistic Effects of Secretory Phospholipase A(2) from the Venom of Agkistrodon piscivorus piscivorus with Cancer Chemotherapeutic Agents
title_full_unstemmed Synergistic Effects of Secretory Phospholipase A(2) from the Venom of Agkistrodon piscivorus piscivorus with Cancer Chemotherapeutic Agents
title_short Synergistic Effects of Secretory Phospholipase A(2) from the Venom of Agkistrodon piscivorus piscivorus with Cancer Chemotherapeutic Agents
title_sort synergistic effects of secretory phospholipase a(2) from the venom of agkistrodon piscivorus piscivorus with cancer chemotherapeutic agents
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3591165/
https://www.ncbi.nlm.nih.gov/pubmed/23509743
http://dx.doi.org/10.1155/2013/565287
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