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Characterization in Dual Activation by Oxaliplatin, a Platinum-Based Chemotherapeutic Agent of Hyperpolarization-Activated Cation and Electroporation-Induced Currents

Oxaliplatin (OXAL) is regarded as a platinum-based anti-neoplastic agent. However, its perturbations on membrane ionic currents in neurons and neuroendocrine or endocrine cells are largely unclear, though peripheral neuropathy has been noted during its long-term administration. In this study, we inv...

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Autores principales: Chang, Wei-Ting, Gao, Zi-Han, Li, Shih-Wei, Liu, Ping-Yen, Lo, Yi-Ching, Wu, Sheng-Nan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7014111/
https://www.ncbi.nlm.nih.gov/pubmed/31936301
http://dx.doi.org/10.3390/ijms21020396
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author Chang, Wei-Ting
Gao, Zi-Han
Li, Shih-Wei
Liu, Ping-Yen
Lo, Yi-Ching
Wu, Sheng-Nan
author_facet Chang, Wei-Ting
Gao, Zi-Han
Li, Shih-Wei
Liu, Ping-Yen
Lo, Yi-Ching
Wu, Sheng-Nan
author_sort Chang, Wei-Ting
collection PubMed
description Oxaliplatin (OXAL) is regarded as a platinum-based anti-neoplastic agent. However, its perturbations on membrane ionic currents in neurons and neuroendocrine or endocrine cells are largely unclear, though peripheral neuropathy has been noted during its long-term administration. In this study, we investigated how the presence of OXAL and other related compounds can interact with two types of inward currents; namely, hyperpolarization-activated cation current (I(h)) and membrane electroporation-induced current (I(MEP)). OXAL increased the amplitude or activation rate constant of I(h) in a concentration-dependent manner with effective EC(50) or K(D) values of 3.2 or 6.4 μM, respectively, in pituitary GH(3) cells. The stimulation by this agent of I(h) could be attenuated by subsequent addition of ivabradine, protopine, or dexmedetomidine. Cell exposure to OXAL (3 μM) resulted in an approximately 11 mV rightward shift in I(h) activation along the voltage axis with minimal changes in the gating charge of the curve. The exposure to OXAL also effected an elevation in area of the voltage-dependent hysteresis elicited by long-lasting triangular ramp. Additionally, its application resulted in an increase in the amplitude of I(MEP) elicited by large hyperpolarization in GH(3) cells with an EC(50) value of 1.3 μM. However, in the continued presence of OXAL, further addition of ivabradine, protopine, or dexmedetomidine always resulted in failure to attenuate the OXAL-induced increase of I(MEP) amplitude effectively. Averaged current-voltage relation of membrane electroporation-induced current (I(MEP)) was altered in the presence of OXAL. In pituitary R1220 cells, OXAL-stimulated I(h) remained effective. In Rolf B1.T olfactory sensory neurons, this agent was also observed to increase I(MEP) in a concentration-dependent manner. In light of the findings from this study, OXAL-mediated increases of I(h) and I(MEP) may coincide and then synergistically act to increase the amplitude of inward currents, raising the membrane excitability of electrically excitable cells, if similar in vivo findings occur.
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spelling pubmed-70141112020-03-09 Characterization in Dual Activation by Oxaliplatin, a Platinum-Based Chemotherapeutic Agent of Hyperpolarization-Activated Cation and Electroporation-Induced Currents Chang, Wei-Ting Gao, Zi-Han Li, Shih-Wei Liu, Ping-Yen Lo, Yi-Ching Wu, Sheng-Nan Int J Mol Sci Article Oxaliplatin (OXAL) is regarded as a platinum-based anti-neoplastic agent. However, its perturbations on membrane ionic currents in neurons and neuroendocrine or endocrine cells are largely unclear, though peripheral neuropathy has been noted during its long-term administration. In this study, we investigated how the presence of OXAL and other related compounds can interact with two types of inward currents; namely, hyperpolarization-activated cation current (I(h)) and membrane electroporation-induced current (I(MEP)). OXAL increased the amplitude or activation rate constant of I(h) in a concentration-dependent manner with effective EC(50) or K(D) values of 3.2 or 6.4 μM, respectively, in pituitary GH(3) cells. The stimulation by this agent of I(h) could be attenuated by subsequent addition of ivabradine, protopine, or dexmedetomidine. Cell exposure to OXAL (3 μM) resulted in an approximately 11 mV rightward shift in I(h) activation along the voltage axis with minimal changes in the gating charge of the curve. The exposure to OXAL also effected an elevation in area of the voltage-dependent hysteresis elicited by long-lasting triangular ramp. Additionally, its application resulted in an increase in the amplitude of I(MEP) elicited by large hyperpolarization in GH(3) cells with an EC(50) value of 1.3 μM. However, in the continued presence of OXAL, further addition of ivabradine, protopine, or dexmedetomidine always resulted in failure to attenuate the OXAL-induced increase of I(MEP) amplitude effectively. Averaged current-voltage relation of membrane electroporation-induced current (I(MEP)) was altered in the presence of OXAL. In pituitary R1220 cells, OXAL-stimulated I(h) remained effective. In Rolf B1.T olfactory sensory neurons, this agent was also observed to increase I(MEP) in a concentration-dependent manner. In light of the findings from this study, OXAL-mediated increases of I(h) and I(MEP) may coincide and then synergistically act to increase the amplitude of inward currents, raising the membrane excitability of electrically excitable cells, if similar in vivo findings occur. MDPI 2020-01-08 /pmc/articles/PMC7014111/ /pubmed/31936301 http://dx.doi.org/10.3390/ijms21020396 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chang, Wei-Ting
Gao, Zi-Han
Li, Shih-Wei
Liu, Ping-Yen
Lo, Yi-Ching
Wu, Sheng-Nan
Characterization in Dual Activation by Oxaliplatin, a Platinum-Based Chemotherapeutic Agent of Hyperpolarization-Activated Cation and Electroporation-Induced Currents
title Characterization in Dual Activation by Oxaliplatin, a Platinum-Based Chemotherapeutic Agent of Hyperpolarization-Activated Cation and Electroporation-Induced Currents
title_full Characterization in Dual Activation by Oxaliplatin, a Platinum-Based Chemotherapeutic Agent of Hyperpolarization-Activated Cation and Electroporation-Induced Currents
title_fullStr Characterization in Dual Activation by Oxaliplatin, a Platinum-Based Chemotherapeutic Agent of Hyperpolarization-Activated Cation and Electroporation-Induced Currents
title_full_unstemmed Characterization in Dual Activation by Oxaliplatin, a Platinum-Based Chemotherapeutic Agent of Hyperpolarization-Activated Cation and Electroporation-Induced Currents
title_short Characterization in Dual Activation by Oxaliplatin, a Platinum-Based Chemotherapeutic Agent of Hyperpolarization-Activated Cation and Electroporation-Induced Currents
title_sort characterization in dual activation by oxaliplatin, a platinum-based chemotherapeutic agent of hyperpolarization-activated cation and electroporation-induced currents
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7014111/
https://www.ncbi.nlm.nih.gov/pubmed/31936301
http://dx.doi.org/10.3390/ijms21020396
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