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Paclitaxel-induced epithelial damage and ectopic MMP-13 expression promotes neurotoxicity in zebrafish

Paclitaxel is a microtubule-stabilizing chemotherapeutic agent that is widely used in cancer treatment and in a number of curative and palliative regimens. Despite its beneficial effects on cancer, paclitaxel also damages healthy tissues, most prominently the peripheral sensory nervous system. The m...

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Autores principales: Lisse, Thomas S., Elias, Leah J., Pellegrini, Adriana D., Martin, Paige B., Spaulding, Emily L., Lopes, Olivia, Brochu, Elizabeth A., Carter, Erin V., Waldron, Ashley, Rieger, Sandra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4839466/
https://www.ncbi.nlm.nih.gov/pubmed/27035978
http://dx.doi.org/10.1073/pnas.1525096113
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author Lisse, Thomas S.
Elias, Leah J.
Pellegrini, Adriana D.
Martin, Paige B.
Spaulding, Emily L.
Lopes, Olivia
Brochu, Elizabeth A.
Carter, Erin V.
Waldron, Ashley
Rieger, Sandra
author_facet Lisse, Thomas S.
Elias, Leah J.
Pellegrini, Adriana D.
Martin, Paige B.
Spaulding, Emily L.
Lopes, Olivia
Brochu, Elizabeth A.
Carter, Erin V.
Waldron, Ashley
Rieger, Sandra
author_sort Lisse, Thomas S.
collection PubMed
description Paclitaxel is a microtubule-stabilizing chemotherapeutic agent that is widely used in cancer treatment and in a number of curative and palliative regimens. Despite its beneficial effects on cancer, paclitaxel also damages healthy tissues, most prominently the peripheral sensory nervous system. The mechanisms leading to paclitaxel-induced peripheral neuropathy remain elusive, and therapies that prevent or alleviate this condition are not available. We established a zebrafish in vivo model to study the underlying mechanisms and to identify pharmacological agents that may be developed into therapeutics. Both adult and larval zebrafish displayed signs of paclitaxel neurotoxicity, including sensory axon degeneration and the loss of touch response in the distal caudal fin. Intriguingly, studies in zebrafish larvae showed that paclitaxel rapidly promotes epithelial damage and decreased mechanical stress resistance of the skin before induction of axon degeneration. Moreover, injured paclitaxel-treated zebrafish skin and scratch-wounded human keratinocytes (HEK001) display reduced healing capacity. Epithelial damage correlated with rapid accumulation of fluorescein-conjugated paclitaxel in epidermal basal keratinocytes, but not axons, and up-regulation of matrix-metalloproteinase 13 (MMP-13, collagenase 3) in the skin. Pharmacological inhibition of MMP-13, in contrast, largely rescued paclitaxel-induced epithelial damage and neurotoxicity, whereas MMP-13 overexpression in zebrafish embryos rendered the skin vulnerable to injury under mechanical stress conditions. Thus, our studies provide evidence that the epidermis plays a critical role in this condition, and we provide a previously unidentified candidate for therapeutic interventions.
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spelling pubmed-48394662016-05-02 Paclitaxel-induced epithelial damage and ectopic MMP-13 expression promotes neurotoxicity in zebrafish Lisse, Thomas S. Elias, Leah J. Pellegrini, Adriana D. Martin, Paige B. Spaulding, Emily L. Lopes, Olivia Brochu, Elizabeth A. Carter, Erin V. Waldron, Ashley Rieger, Sandra Proc Natl Acad Sci U S A PNAS Plus Paclitaxel is a microtubule-stabilizing chemotherapeutic agent that is widely used in cancer treatment and in a number of curative and palliative regimens. Despite its beneficial effects on cancer, paclitaxel also damages healthy tissues, most prominently the peripheral sensory nervous system. The mechanisms leading to paclitaxel-induced peripheral neuropathy remain elusive, and therapies that prevent or alleviate this condition are not available. We established a zebrafish in vivo model to study the underlying mechanisms and to identify pharmacological agents that may be developed into therapeutics. Both adult and larval zebrafish displayed signs of paclitaxel neurotoxicity, including sensory axon degeneration and the loss of touch response in the distal caudal fin. Intriguingly, studies in zebrafish larvae showed that paclitaxel rapidly promotes epithelial damage and decreased mechanical stress resistance of the skin before induction of axon degeneration. Moreover, injured paclitaxel-treated zebrafish skin and scratch-wounded human keratinocytes (HEK001) display reduced healing capacity. Epithelial damage correlated with rapid accumulation of fluorescein-conjugated paclitaxel in epidermal basal keratinocytes, but not axons, and up-regulation of matrix-metalloproteinase 13 (MMP-13, collagenase 3) in the skin. Pharmacological inhibition of MMP-13, in contrast, largely rescued paclitaxel-induced epithelial damage and neurotoxicity, whereas MMP-13 overexpression in zebrafish embryos rendered the skin vulnerable to injury under mechanical stress conditions. Thus, our studies provide evidence that the epidermis plays a critical role in this condition, and we provide a previously unidentified candidate for therapeutic interventions. National Academy of Sciences 2016-04-12 2016-03-28 /pmc/articles/PMC4839466/ /pubmed/27035978 http://dx.doi.org/10.1073/pnas.1525096113 Text en Freely available online through the PNAS open access option.
spellingShingle PNAS Plus
Lisse, Thomas S.
Elias, Leah J.
Pellegrini, Adriana D.
Martin, Paige B.
Spaulding, Emily L.
Lopes, Olivia
Brochu, Elizabeth A.
Carter, Erin V.
Waldron, Ashley
Rieger, Sandra
Paclitaxel-induced epithelial damage and ectopic MMP-13 expression promotes neurotoxicity in zebrafish
title Paclitaxel-induced epithelial damage and ectopic MMP-13 expression promotes neurotoxicity in zebrafish
title_full Paclitaxel-induced epithelial damage and ectopic MMP-13 expression promotes neurotoxicity in zebrafish
title_fullStr Paclitaxel-induced epithelial damage and ectopic MMP-13 expression promotes neurotoxicity in zebrafish
title_full_unstemmed Paclitaxel-induced epithelial damage and ectopic MMP-13 expression promotes neurotoxicity in zebrafish
title_short Paclitaxel-induced epithelial damage and ectopic MMP-13 expression promotes neurotoxicity in zebrafish
title_sort paclitaxel-induced epithelial damage and ectopic mmp-13 expression promotes neurotoxicity in zebrafish
topic PNAS Plus
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4839466/
https://www.ncbi.nlm.nih.gov/pubmed/27035978
http://dx.doi.org/10.1073/pnas.1525096113
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