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Ropinirole and Pramipexole Promote Structural Plasticity in Human iPSC-Derived Dopaminergic Neurons via BDNF and mTOR Signaling

The antiparkinsonian ropinirole and pramipexole are D3 receptor- (D3R-) preferring dopaminergic (DA) agonists used as adjunctive therapeutics for the treatment resistant depression (TRD). While the exact antidepressant mechanism of action remains uncertain, a role for D3R in the restoration of impai...

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Autores principales: Collo, Ginetta, Cavalleri, Laura, Bono, Federica, Mora, Cristina, Fedele, Stefania, Invernizzi, Roberto William, Gennarelli, Massimo, Piovani, Giovanna, Kunath, Tilo, Millan, Mark J., Merlo Pich, Emilio, Spano, PierFranco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5817382/
https://www.ncbi.nlm.nih.gov/pubmed/29531524
http://dx.doi.org/10.1155/2018/4196961
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author Collo, Ginetta
Cavalleri, Laura
Bono, Federica
Mora, Cristina
Fedele, Stefania
Invernizzi, Roberto William
Gennarelli, Massimo
Piovani, Giovanna
Kunath, Tilo
Millan, Mark J.
Merlo Pich, Emilio
Spano, PierFranco
author_facet Collo, Ginetta
Cavalleri, Laura
Bono, Federica
Mora, Cristina
Fedele, Stefania
Invernizzi, Roberto William
Gennarelli, Massimo
Piovani, Giovanna
Kunath, Tilo
Millan, Mark J.
Merlo Pich, Emilio
Spano, PierFranco
author_sort Collo, Ginetta
collection PubMed
description The antiparkinsonian ropinirole and pramipexole are D3 receptor- (D3R-) preferring dopaminergic (DA) agonists used as adjunctive therapeutics for the treatment resistant depression (TRD). While the exact antidepressant mechanism of action remains uncertain, a role for D3R in the restoration of impaired neuroplasticity occurring in TRD has been proposed. Since D3R agonists are highly expressed on DA neurons in humans, we studied the effect of ropinirole and pramipexole on structural plasticity using a translational model of human-inducible pluripotent stem cells (hiPSCs). Two hiPSC clones from healthy donors were differentiated into midbrain DA neurons. Ropinirole and pramipexole produced dose-dependent increases of dendritic arborization and soma size after 3 days of culture, effects antagonized by the selective D3R antagonists SB277011-A and S33084 and by the mTOR pathway kinase inhibitors LY294002 and rapamycin. All treatments were also effective in attenuating the D3R-dependent increase of p70S6-kinase phosphorylation. Immunoneutralisation of BDNF, inhibition of TrkB receptors, and blockade of MEK-ERK signaling likewise prevented ropinirole-induced structural plasticity, suggesting a critical interaction between BDNF and D3R signaling pathways. The highly similar profiles of data acquired with DA neurons derived from two hiPSC clones underpin their reliability for characterization of pharmacological agents acting via dopaminergic mechanisms.
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spelling pubmed-58173822018-03-12 Ropinirole and Pramipexole Promote Structural Plasticity in Human iPSC-Derived Dopaminergic Neurons via BDNF and mTOR Signaling Collo, Ginetta Cavalleri, Laura Bono, Federica Mora, Cristina Fedele, Stefania Invernizzi, Roberto William Gennarelli, Massimo Piovani, Giovanna Kunath, Tilo Millan, Mark J. Merlo Pich, Emilio Spano, PierFranco Neural Plast Research Article The antiparkinsonian ropinirole and pramipexole are D3 receptor- (D3R-) preferring dopaminergic (DA) agonists used as adjunctive therapeutics for the treatment resistant depression (TRD). While the exact antidepressant mechanism of action remains uncertain, a role for D3R in the restoration of impaired neuroplasticity occurring in TRD has been proposed. Since D3R agonists are highly expressed on DA neurons in humans, we studied the effect of ropinirole and pramipexole on structural plasticity using a translational model of human-inducible pluripotent stem cells (hiPSCs). Two hiPSC clones from healthy donors were differentiated into midbrain DA neurons. Ropinirole and pramipexole produced dose-dependent increases of dendritic arborization and soma size after 3 days of culture, effects antagonized by the selective D3R antagonists SB277011-A and S33084 and by the mTOR pathway kinase inhibitors LY294002 and rapamycin. All treatments were also effective in attenuating the D3R-dependent increase of p70S6-kinase phosphorylation. Immunoneutralisation of BDNF, inhibition of TrkB receptors, and blockade of MEK-ERK signaling likewise prevented ropinirole-induced structural plasticity, suggesting a critical interaction between BDNF and D3R signaling pathways. The highly similar profiles of data acquired with DA neurons derived from two hiPSC clones underpin their reliability for characterization of pharmacological agents acting via dopaminergic mechanisms. Hindawi 2018-02-04 /pmc/articles/PMC5817382/ /pubmed/29531524 http://dx.doi.org/10.1155/2018/4196961 Text en Copyright © 2018 Ginetta Collo et al. http://creativecommons.org/licenses/by/4.0/ 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
Collo, Ginetta
Cavalleri, Laura
Bono, Federica
Mora, Cristina
Fedele, Stefania
Invernizzi, Roberto William
Gennarelli, Massimo
Piovani, Giovanna
Kunath, Tilo
Millan, Mark J.
Merlo Pich, Emilio
Spano, PierFranco
Ropinirole and Pramipexole Promote Structural Plasticity in Human iPSC-Derived Dopaminergic Neurons via BDNF and mTOR Signaling
title Ropinirole and Pramipexole Promote Structural Plasticity in Human iPSC-Derived Dopaminergic Neurons via BDNF and mTOR Signaling
title_full Ropinirole and Pramipexole Promote Structural Plasticity in Human iPSC-Derived Dopaminergic Neurons via BDNF and mTOR Signaling
title_fullStr Ropinirole and Pramipexole Promote Structural Plasticity in Human iPSC-Derived Dopaminergic Neurons via BDNF and mTOR Signaling
title_full_unstemmed Ropinirole and Pramipexole Promote Structural Plasticity in Human iPSC-Derived Dopaminergic Neurons via BDNF and mTOR Signaling
title_short Ropinirole and Pramipexole Promote Structural Plasticity in Human iPSC-Derived Dopaminergic Neurons via BDNF and mTOR Signaling
title_sort ropinirole and pramipexole promote structural plasticity in human ipsc-derived dopaminergic neurons via bdnf and mtor signaling
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5817382/
https://www.ncbi.nlm.nih.gov/pubmed/29531524
http://dx.doi.org/10.1155/2018/4196961
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