Pharmacological Characterization of the Mechanisms Involved in Delayed Calcium Deregulation in SH-SY5Y Cells Challenged with Methadone

Author:

Perez-Alvarez Sergio1,Solesio Maria E.2,Cuenca-Lopez Maria D.1,Melero-Fernández de Mera Raquel M.1,Villalobos Carlos3,Kmita Hanna4,Galindo Maria F.2,Jordán Joaquin15

Affiliation:

1. Neuropharmacology, Department of Medical Sciences, School of Medicine, University of Castilla-La Mancha (UCLM), 02006 Albacete, Spain

2. Translational Neuropsychopharmacology Unit, Albacete University Hospital Center, Albacete, Spain

3. Institute of Molecular Biology and Genetics (IBGM), C/ Sanz y Forés 3, 47003 Valladolid, Spain

4. Laboratory of Bioenergetics, Institute of Molecular Biology and Biotechnology, Faculty of Biology, Adam Mickiewicz University, Umultowska 89, 61-614 Poznan, Poland

5. Instituto de Investigación en Discapacidades Neurológicas, UCLM, Albacete, Spain

Abstract

Previously, we have shown that SH-SY5Y cells exposed to high concentrations of methadone died due to a necrotic-like cell death mechanism related to delayed calcium deregulation (DCD). In this study, we show that, in terms of their Ca2+responses to 0.5 mM methadone, SH-SY5Y cells can be pooled into four different groups. In a broad pharmacological survey, the relevance of different Ca2+-related mechanisms on methadone-induced DCD was investigated including extracellular calcium, L-type Ca2+channels,μ-opioid receptor, mitochondrial inner membrane potential, mitochondrial ATP synthesis, mitochondrial Ca2+/2Na+-exchanger, reactive oxygen species, and mitochondrial permeability transition. Only those compounds targeting mitochondria such as oligomycin, FCCP, CGP 37157, and cyclosporine A were able to amend methadone-induced Ca2+dyshomeostasis suggesting that methadone induces DCD by modulating the ability of mitochondria to handle Ca2+. Consistently, mitochondria became dramatically shorter and rounder in the presence of methadone. Furthermore, analysis of oxygen uptake by isolated rat liver mitochondria suggested that methadone affected mitochondrial Ca2+uptake in a respiratory substrate-dependent way. We conclude that methadone causes failure of intracellular Ca2+homeostasis, and this effect is associated with morphological and functional changes of mitochondria. Likely, this mechanism contributes to degenerative side effects associated with methadone treatment.

Funder

CICYT

Publisher

Hindawi Limited

Subject

Cell Biology

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