IGF-II promotes neuroprotection and neuroplasticity recovery in a long-lasting model of oxidative damage induced by glucocorticoids

Insulin-like growth factor-II (IGF-II) is a naturally occurring hormone that exerts neurotrophic and neuroprotective properties in a wide range of neurodegenerative diseases and ageing. Accumulating evidence suggests that the effects of IGF-II in the brain may be explained by its binding to the spec...

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Main Authors: E. Martín-Montañez, C. Millon, F. Boraldi, F. Garcia-Guirado, C. Pedraza, E. Lara, L.J. Santin, J. Pavia, M. Garcia-Fernandez
Format: Article
Language:English
Published: Elsevier 2017-10-01
Series:Redox Biology
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2213231717303324
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spelling doaj-8672841222024d04b2b9314bf7f705932020-11-25T01:18:12ZengElsevierRedox Biology2213-23172017-10-0113C698110.1016/j.redox.2017.05.012IGF-II promotes neuroprotection and neuroplasticity recovery in a long-lasting model of oxidative damage induced by glucocorticoidsE. Martín-Montañez0C. Millon1F. Boraldi2F. Garcia-Guirado3C. Pedraza4E. Lara5L.J. Santin6J. Pavia7M. Garcia-Fernandez8Department of Pharmacology and Paediatrics, Málaga University, Biomedical Research Institute of Málaga (IBIMA), Málaga, SpainDepartment of Human Physiology, Málaga University, Biomedical Research Institute of Málaga (IBIMA), Málaga, SpainDepartment of Life Sciences, University of Modena e Reggio Emilia, Modena, ItalyDepartment of Human Physiology, Málaga University, Biomedical Research Institute of Málaga (IBIMA), Málaga, SpainDepartment of Psychobiology, Málaga University, Biomedical Research Institute of Málaga (IBIMA), Málaga, SpainDepartment of Human Physiology, Málaga University, Biomedical Research Institute of Málaga (IBIMA), Málaga, SpainDepartment of Psychobiology, Málaga University, Biomedical Research Institute of Málaga (IBIMA), Málaga, SpainDepartment of Pharmacology and Paediatrics, Málaga University, Biomedical Research Institute of Málaga (IBIMA), Málaga, SpainDepartment of Human Physiology, Málaga University, Biomedical Research Institute of Málaga (IBIMA), Málaga, SpainInsulin-like growth factor-II (IGF-II) is a naturally occurring hormone that exerts neurotrophic and neuroprotective properties in a wide range of neurodegenerative diseases and ageing. Accumulating evidence suggests that the effects of IGF-II in the brain may be explained by its binding to the specific transmembrane receptor, IGFII/M6P receptor (IGF-IIR). However, relatively little is known regarding the role of IGF-II through IGF-IIR in neuroprotection. Here, using adult cortical neuronal cultures, we investigated whether IGF-II exhibits long-term antioxidant effects and neuroprotection at the synaptic level after oxidative damage induced by high and transient levels of corticosterone (CORT). Furthermore, the involvement of the IGF-IIR was also studied to elucidate its role in the neuroprotective actions of IGF-II. We found that neurons treated with IGF-II after CORT incubation showed reduced oxidative stress damage and recovered antioxidant status (normalized total antioxidant status, lipid hydroperoxides and NAD(P) H:quinone oxidoreductase activity). Similar results were obtained when mitochondria function was analysed (cytochrome c oxidase activity, mitochondrial membrane potential and subcellular mitochondrial distribution). Furthermore, neuronal impairment and degeneration were also assessed (synaptophysin and PSD-95 expression, presynaptic function and FluoroJade B® stain). IGF-II was also able to recover the long-lasting neuronal cell damage. Finally, the effects of IGF-II were not blocked by an IGF-IR antagonist, suggesting the involvement of IGF-IIR. Altogether these results suggest that, in or model, IGF-II through IGF-IIR is able to revert the oxidative damage induced by CORT. In accordance with the neuroprotective role of the IGF-II/IGF-IIR reported in our study, pharmacotherapy approaches targeting this pathway may be useful for the treatment of diseases associated with cognitive deficits (i.e., neurodegenerative disorders, depression, etc.).http://www.sciencedirect.com/science/article/pii/S2213231717303324Insulin-like growth factor-IIInsulin-like growth factor-II receptorOxidative stressNeuroprotectionMitochondriaSynapsis
collection DOAJ
language English
format Article
sources DOAJ
author E. Martín-Montañez
C. Millon
F. Boraldi
F. Garcia-Guirado
C. Pedraza
E. Lara
L.J. Santin
J. Pavia
M. Garcia-Fernandez
spellingShingle E. Martín-Montañez
C. Millon
F. Boraldi
F. Garcia-Guirado
C. Pedraza
E. Lara
L.J. Santin
J. Pavia
M. Garcia-Fernandez
IGF-II promotes neuroprotection and neuroplasticity recovery in a long-lasting model of oxidative damage induced by glucocorticoids
Redox Biology
Insulin-like growth factor-II
Insulin-like growth factor-II receptor
Oxidative stress
Neuroprotection
Mitochondria
Synapsis
author_facet E. Martín-Montañez
C. Millon
F. Boraldi
F. Garcia-Guirado
C. Pedraza
E. Lara
L.J. Santin
J. Pavia
M. Garcia-Fernandez
author_sort E. Martín-Montañez
title IGF-II promotes neuroprotection and neuroplasticity recovery in a long-lasting model of oxidative damage induced by glucocorticoids
title_short IGF-II promotes neuroprotection and neuroplasticity recovery in a long-lasting model of oxidative damage induced by glucocorticoids
title_full IGF-II promotes neuroprotection and neuroplasticity recovery in a long-lasting model of oxidative damage induced by glucocorticoids
title_fullStr IGF-II promotes neuroprotection and neuroplasticity recovery in a long-lasting model of oxidative damage induced by glucocorticoids
title_full_unstemmed IGF-II promotes neuroprotection and neuroplasticity recovery in a long-lasting model of oxidative damage induced by glucocorticoids
title_sort igf-ii promotes neuroprotection and neuroplasticity recovery in a long-lasting model of oxidative damage induced by glucocorticoids
publisher Elsevier
series Redox Biology
issn 2213-2317
publishDate 2017-10-01
description Insulin-like growth factor-II (IGF-II) is a naturally occurring hormone that exerts neurotrophic and neuroprotective properties in a wide range of neurodegenerative diseases and ageing. Accumulating evidence suggests that the effects of IGF-II in the brain may be explained by its binding to the specific transmembrane receptor, IGFII/M6P receptor (IGF-IIR). However, relatively little is known regarding the role of IGF-II through IGF-IIR in neuroprotection. Here, using adult cortical neuronal cultures, we investigated whether IGF-II exhibits long-term antioxidant effects and neuroprotection at the synaptic level after oxidative damage induced by high and transient levels of corticosterone (CORT). Furthermore, the involvement of the IGF-IIR was also studied to elucidate its role in the neuroprotective actions of IGF-II. We found that neurons treated with IGF-II after CORT incubation showed reduced oxidative stress damage and recovered antioxidant status (normalized total antioxidant status, lipid hydroperoxides and NAD(P) H:quinone oxidoreductase activity). Similar results were obtained when mitochondria function was analysed (cytochrome c oxidase activity, mitochondrial membrane potential and subcellular mitochondrial distribution). Furthermore, neuronal impairment and degeneration were also assessed (synaptophysin and PSD-95 expression, presynaptic function and FluoroJade B® stain). IGF-II was also able to recover the long-lasting neuronal cell damage. Finally, the effects of IGF-II were not blocked by an IGF-IR antagonist, suggesting the involvement of IGF-IIR. Altogether these results suggest that, in or model, IGF-II through IGF-IIR is able to revert the oxidative damage induced by CORT. In accordance with the neuroprotective role of the IGF-II/IGF-IIR reported in our study, pharmacotherapy approaches targeting this pathway may be useful for the treatment of diseases associated with cognitive deficits (i.e., neurodegenerative disorders, depression, etc.).
topic Insulin-like growth factor-II
Insulin-like growth factor-II receptor
Oxidative stress
Neuroprotection
Mitochondria
Synapsis
url http://www.sciencedirect.com/science/article/pii/S2213231717303324
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