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Striatal synaptic bioenergetic and autophagic decline in premotor experimental parkinsonism

Synaptic impairment might precede neuronal degeneration in Parkinson’s disease. However, the intimate mechanisms altering synaptic function by the accumulation of presynaptic α-synuclein in striatal dopaminergic terminals before dopaminergic death occurs, have not been elucidated. Our aim is to unra...

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Autores principales: Merino-Galán, Leyre, Jimenez-Urbieta, Haritz, Zamarbide, Marta, Rodríguez-Chinchilla, Tatiana, Belloso-Iguerategui, Arantzazu, Santamaria, Enrique, Fernández-Irigoyen, Joaquín, Aiastui, Ana, Doudnikoff, Evelyne, Bézard, Erwan, Ouro, Alberto, Knafo, Shira, Gago, Belén, Quiroga-Varela, Ana, Rodríguez-Oroz, María Cruz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9460676/
https://www.ncbi.nlm.nih.gov/pubmed/35245368
http://dx.doi.org/10.1093/brain/awac087
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author Merino-Galán, Leyre
Jimenez-Urbieta, Haritz
Zamarbide, Marta
Rodríguez-Chinchilla, Tatiana
Belloso-Iguerategui, Arantzazu
Santamaria, Enrique
Fernández-Irigoyen, Joaquín
Aiastui, Ana
Doudnikoff, Evelyne
Bézard, Erwan
Ouro, Alberto
Knafo, Shira
Gago, Belén
Quiroga-Varela, Ana
Rodríguez-Oroz, María Cruz
author_facet Merino-Galán, Leyre
Jimenez-Urbieta, Haritz
Zamarbide, Marta
Rodríguez-Chinchilla, Tatiana
Belloso-Iguerategui, Arantzazu
Santamaria, Enrique
Fernández-Irigoyen, Joaquín
Aiastui, Ana
Doudnikoff, Evelyne
Bézard, Erwan
Ouro, Alberto
Knafo, Shira
Gago, Belén
Quiroga-Varela, Ana
Rodríguez-Oroz, María Cruz
author_sort Merino-Galán, Leyre
collection PubMed
description Synaptic impairment might precede neuronal degeneration in Parkinson’s disease. However, the intimate mechanisms altering synaptic function by the accumulation of presynaptic α-synuclein in striatal dopaminergic terminals before dopaminergic death occurs, have not been elucidated. Our aim is to unravel the sequence of synaptic functional and structural changes preceding symptomatic dopaminergic cell death. As such, we evaluated the temporal sequence of functional and structural changes at striatal synapses before parkinsonian motor features appear in a rat model of progressive dopaminergic death induced by overexpression of the human mutated A53T α-synuclein in the substantia nigra pars compacta, a protein transported to these synapses. Sequential window acquisition of all theoretical mass spectra proteomics identified deregulated proteins involved first in energy metabolism and later, in vesicle cycling and autophagy. After protein deregulation and when α-synuclein accumulated at striatal synapses, alterations to mitochondrial bioenergetics were observed using a Seahorse XF96 analyser. Sustained dysfunctional mitochondrial bioenergetics was followed by a decrease in the number of dopaminergic terminals, morphological and ultrastructural alterations, and an abnormal accumulation of autophagic/endocytic vesicles inside the remaining dopaminergic fibres was evident by electron microscopy. The total mitochondrial population remained unchanged whereas the number of ultrastructurally damaged mitochondria increases as the pathological process evolved. We also observed ultrastructural signs of plasticity within glutamatergic synapses before the expression of motor abnormalities, such as a reduction in axospinous synapses and an increase in perforated postsynaptic densities. Overall, we found that a synaptic energetic failure and accumulation of dysfunctional organelles occur sequentially at the dopaminergic terminals as the earliest events preceding structural changes and cell death. We also identify key proteins involved in these earliest functional abnormalities that may be modulated and serve as therapeutic targets to counterbalance the degeneration of dopaminergic cells to delay or prevent the development of Parkinson’s disease.
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spelling pubmed-94606762022-09-12 Striatal synaptic bioenergetic and autophagic decline in premotor experimental parkinsonism Merino-Galán, Leyre Jimenez-Urbieta, Haritz Zamarbide, Marta Rodríguez-Chinchilla, Tatiana Belloso-Iguerategui, Arantzazu Santamaria, Enrique Fernández-Irigoyen, Joaquín Aiastui, Ana Doudnikoff, Evelyne Bézard, Erwan Ouro, Alberto Knafo, Shira Gago, Belén Quiroga-Varela, Ana Rodríguez-Oroz, María Cruz Brain Original Article Synaptic impairment might precede neuronal degeneration in Parkinson’s disease. However, the intimate mechanisms altering synaptic function by the accumulation of presynaptic α-synuclein in striatal dopaminergic terminals before dopaminergic death occurs, have not been elucidated. Our aim is to unravel the sequence of synaptic functional and structural changes preceding symptomatic dopaminergic cell death. As such, we evaluated the temporal sequence of functional and structural changes at striatal synapses before parkinsonian motor features appear in a rat model of progressive dopaminergic death induced by overexpression of the human mutated A53T α-synuclein in the substantia nigra pars compacta, a protein transported to these synapses. Sequential window acquisition of all theoretical mass spectra proteomics identified deregulated proteins involved first in energy metabolism and later, in vesicle cycling and autophagy. After protein deregulation and when α-synuclein accumulated at striatal synapses, alterations to mitochondrial bioenergetics were observed using a Seahorse XF96 analyser. Sustained dysfunctional mitochondrial bioenergetics was followed by a decrease in the number of dopaminergic terminals, morphological and ultrastructural alterations, and an abnormal accumulation of autophagic/endocytic vesicles inside the remaining dopaminergic fibres was evident by electron microscopy. The total mitochondrial population remained unchanged whereas the number of ultrastructurally damaged mitochondria increases as the pathological process evolved. We also observed ultrastructural signs of plasticity within glutamatergic synapses before the expression of motor abnormalities, such as a reduction in axospinous synapses and an increase in perforated postsynaptic densities. Overall, we found that a synaptic energetic failure and accumulation of dysfunctional organelles occur sequentially at the dopaminergic terminals as the earliest events preceding structural changes and cell death. We also identify key proteins involved in these earliest functional abnormalities that may be modulated and serve as therapeutic targets to counterbalance the degeneration of dopaminergic cells to delay or prevent the development of Parkinson’s disease. Oxford University Press 2022-03-04 /pmc/articles/PMC9460676/ /pubmed/35245368 http://dx.doi.org/10.1093/brain/awac087 Text en © The Author(s) 2022. Published by Oxford University Press on behalf of the Guarantors of Brain. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Merino-Galán, Leyre
Jimenez-Urbieta, Haritz
Zamarbide, Marta
Rodríguez-Chinchilla, Tatiana
Belloso-Iguerategui, Arantzazu
Santamaria, Enrique
Fernández-Irigoyen, Joaquín
Aiastui, Ana
Doudnikoff, Evelyne
Bézard, Erwan
Ouro, Alberto
Knafo, Shira
Gago, Belén
Quiroga-Varela, Ana
Rodríguez-Oroz, María Cruz
Striatal synaptic bioenergetic and autophagic decline in premotor experimental parkinsonism
title Striatal synaptic bioenergetic and autophagic decline in premotor experimental parkinsonism
title_full Striatal synaptic bioenergetic and autophagic decline in premotor experimental parkinsonism
title_fullStr Striatal synaptic bioenergetic and autophagic decline in premotor experimental parkinsonism
title_full_unstemmed Striatal synaptic bioenergetic and autophagic decline in premotor experimental parkinsonism
title_short Striatal synaptic bioenergetic and autophagic decline in premotor experimental parkinsonism
title_sort striatal synaptic bioenergetic and autophagic decline in premotor experimental parkinsonism
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9460676/
https://www.ncbi.nlm.nih.gov/pubmed/35245368
http://dx.doi.org/10.1093/brain/awac087
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