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Striatal Dopamine Transporter Function Is Facilitated by Converging Biology of α-Synuclein and Cholesterol

Striatal dopamine transporters (DAT) powerfully regulate dopamine signaling, and can contribute risk to degeneration in Parkinson’s disease (PD). DATs can interact with the neuronal protein α-synuclein, which is associated with the etiology and molecular pathology of idiopathic and familial PD. Here...

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Autores principales: Threlfell, Sarah, Mohammadi, Amir Saeid, Ryan, Brent J., Connor-Robson, Natalie, Platt, Nicola J., Anand, Rishi, Serres, Florence, Sharp, Trevor, Bengoa-Vergniory, Nora, Wade-Martins, Richard, Ewing, Andrew, Cragg, Stephanie J., Brimblecombe, Katherine R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8081845/
https://www.ncbi.nlm.nih.gov/pubmed/33935654
http://dx.doi.org/10.3389/fncel.2021.658244
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author Threlfell, Sarah
Mohammadi, Amir Saeid
Ryan, Brent J.
Connor-Robson, Natalie
Platt, Nicola J.
Anand, Rishi
Serres, Florence
Sharp, Trevor
Bengoa-Vergniory, Nora
Wade-Martins, Richard
Ewing, Andrew
Cragg, Stephanie J.
Brimblecombe, Katherine R.
author_facet Threlfell, Sarah
Mohammadi, Amir Saeid
Ryan, Brent J.
Connor-Robson, Natalie
Platt, Nicola J.
Anand, Rishi
Serres, Florence
Sharp, Trevor
Bengoa-Vergniory, Nora
Wade-Martins, Richard
Ewing, Andrew
Cragg, Stephanie J.
Brimblecombe, Katherine R.
author_sort Threlfell, Sarah
collection PubMed
description Striatal dopamine transporters (DAT) powerfully regulate dopamine signaling, and can contribute risk to degeneration in Parkinson’s disease (PD). DATs can interact with the neuronal protein α-synuclein, which is associated with the etiology and molecular pathology of idiopathic and familial PD. Here, we tested whether DAT function in governing dopamine (DA) uptake and release is modified in a human-α-synuclein-overexpressing (SNCA-OVX) transgenic mouse model of early PD. Using fast-scan cyclic voltammetry (FCV) in ex vivo acute striatal slices to detect DA release, and biochemical assays, we show that several aspects of DAT function are promoted in SNCA-OVX mice. Compared to background control α-synuclein-null mice (Snca-null), the SNCA-OVX mice have elevated DA uptake rates, and more pronounced effects of DAT inhibitors on evoked extracellular DA concentrations ([DA](o)) and on short-term plasticity (STP) in DA release, indicating DATs play a greater role in limiting DA release and in driving STP. We found that DAT membrane levels and radioligand binding sites correlated with α-synuclein level. Furthermore, DAT function in Snca-null and SNCA-OVX mice could also be promoted by applying cholesterol, and using Tof-SIMS we found genotype-differences in striatal lipids, with lower striatal cholesterol in SNCA-OVX mice. An inhibitor of cholesterol efflux transporter ABCA1 or a cholesterol chelator in SNCA-OVX mice reduced the effects of DAT-inhibitors on evoked [DA](o). Together these data indicate that human α-synuclein in a mouse model of PD promotes striatal DAT function, in a manner supported by extracellular cholesterol, suggesting converging biology of α-synuclein and cholesterol that regulates DAT function and could impact DA function and PD pathophysiology.
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spelling pubmed-80818452021-04-30 Striatal Dopamine Transporter Function Is Facilitated by Converging Biology of α-Synuclein and Cholesterol Threlfell, Sarah Mohammadi, Amir Saeid Ryan, Brent J. Connor-Robson, Natalie Platt, Nicola J. Anand, Rishi Serres, Florence Sharp, Trevor Bengoa-Vergniory, Nora Wade-Martins, Richard Ewing, Andrew Cragg, Stephanie J. Brimblecombe, Katherine R. Front Cell Neurosci Cellular Neuroscience Striatal dopamine transporters (DAT) powerfully regulate dopamine signaling, and can contribute risk to degeneration in Parkinson’s disease (PD). DATs can interact with the neuronal protein α-synuclein, which is associated with the etiology and molecular pathology of idiopathic and familial PD. Here, we tested whether DAT function in governing dopamine (DA) uptake and release is modified in a human-α-synuclein-overexpressing (SNCA-OVX) transgenic mouse model of early PD. Using fast-scan cyclic voltammetry (FCV) in ex vivo acute striatal slices to detect DA release, and biochemical assays, we show that several aspects of DAT function are promoted in SNCA-OVX mice. Compared to background control α-synuclein-null mice (Snca-null), the SNCA-OVX mice have elevated DA uptake rates, and more pronounced effects of DAT inhibitors on evoked extracellular DA concentrations ([DA](o)) and on short-term plasticity (STP) in DA release, indicating DATs play a greater role in limiting DA release and in driving STP. We found that DAT membrane levels and radioligand binding sites correlated with α-synuclein level. Furthermore, DAT function in Snca-null and SNCA-OVX mice could also be promoted by applying cholesterol, and using Tof-SIMS we found genotype-differences in striatal lipids, with lower striatal cholesterol in SNCA-OVX mice. An inhibitor of cholesterol efflux transporter ABCA1 or a cholesterol chelator in SNCA-OVX mice reduced the effects of DAT-inhibitors on evoked [DA](o). Together these data indicate that human α-synuclein in a mouse model of PD promotes striatal DAT function, in a manner supported by extracellular cholesterol, suggesting converging biology of α-synuclein and cholesterol that regulates DAT function and could impact DA function and PD pathophysiology. Frontiers Media S.A. 2021-04-15 /pmc/articles/PMC8081845/ /pubmed/33935654 http://dx.doi.org/10.3389/fncel.2021.658244 Text en Copyright © 2021 Threlfell, Mohammadi, Ryan, Connor-Robson, Platt, Anand, Serres, Sharp, Bengoa-Vergniory, Wade-Martins, Ewing, Cragg and Brimblecombe. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cellular Neuroscience
Threlfell, Sarah
Mohammadi, Amir Saeid
Ryan, Brent J.
Connor-Robson, Natalie
Platt, Nicola J.
Anand, Rishi
Serres, Florence
Sharp, Trevor
Bengoa-Vergniory, Nora
Wade-Martins, Richard
Ewing, Andrew
Cragg, Stephanie J.
Brimblecombe, Katherine R.
Striatal Dopamine Transporter Function Is Facilitated by Converging Biology of α-Synuclein and Cholesterol
title Striatal Dopamine Transporter Function Is Facilitated by Converging Biology of α-Synuclein and Cholesterol
title_full Striatal Dopamine Transporter Function Is Facilitated by Converging Biology of α-Synuclein and Cholesterol
title_fullStr Striatal Dopamine Transporter Function Is Facilitated by Converging Biology of α-Synuclein and Cholesterol
title_full_unstemmed Striatal Dopamine Transporter Function Is Facilitated by Converging Biology of α-Synuclein and Cholesterol
title_short Striatal Dopamine Transporter Function Is Facilitated by Converging Biology of α-Synuclein and Cholesterol
title_sort striatal dopamine transporter function is facilitated by converging biology of α-synuclein and cholesterol
topic Cellular Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8081845/
https://www.ncbi.nlm.nih.gov/pubmed/33935654
http://dx.doi.org/10.3389/fncel.2021.658244
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