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Single-cell sequencing of human midbrain reveals glial activation and a Parkinson-specific neuronal state

Idiopathic Parkinson’s disease is characterized by a progressive loss of dopaminergic neurons, but the exact disease aetiology remains largely unknown. To date, Parkinson’s disease research has mainly focused on nigral dopaminergic neurons, although recent studies suggest disease-related changes als...

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Autores principales: Smajić, Semra, Prada-Medina, Cesar A., Landoulsi, Zied, Ghelfi, Jenny, Delcambre, Sylvie, Dietrich, Carola, Jarazo, Javier, Henck, Jana, Balachandran, Saranya, Pachchek, Sinthuja, Morris, Christopher M., Antony, Paul, Timmermann, Bernd, Sauer, Sascha, Pereira, Sandro L., Schwamborn, Jens C., May, Patrick, Grünewald, Anne, Spielmann, Malte
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9050543/
https://www.ncbi.nlm.nih.gov/pubmed/34919646
http://dx.doi.org/10.1093/brain/awab446
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author Smajić, Semra
Prada-Medina, Cesar A.
Landoulsi, Zied
Ghelfi, Jenny
Delcambre, Sylvie
Dietrich, Carola
Jarazo, Javier
Henck, Jana
Balachandran, Saranya
Pachchek, Sinthuja
Morris, Christopher M.
Antony, Paul
Timmermann, Bernd
Sauer, Sascha
Pereira, Sandro L.
Schwamborn, Jens C.
May, Patrick
Grünewald, Anne
Spielmann, Malte
author_facet Smajić, Semra
Prada-Medina, Cesar A.
Landoulsi, Zied
Ghelfi, Jenny
Delcambre, Sylvie
Dietrich, Carola
Jarazo, Javier
Henck, Jana
Balachandran, Saranya
Pachchek, Sinthuja
Morris, Christopher M.
Antony, Paul
Timmermann, Bernd
Sauer, Sascha
Pereira, Sandro L.
Schwamborn, Jens C.
May, Patrick
Grünewald, Anne
Spielmann, Malte
author_sort Smajić, Semra
collection PubMed
description Idiopathic Parkinson’s disease is characterized by a progressive loss of dopaminergic neurons, but the exact disease aetiology remains largely unknown. To date, Parkinson’s disease research has mainly focused on nigral dopaminergic neurons, although recent studies suggest disease-related changes also in non-neuronal cells and in midbrain regions beyond the substantia nigra. While there is some evidence for glial involvement in Parkinson’s disease, the molecular mechanisms remain poorly understood. The aim of this study was to characterize the contribution of all cell types of the midbrain to Parkinson’s disease pathology by single-nuclei RNA sequencing and to assess the cell type-specific risk for Parkinson’s disease using the latest genome-wide association study. We profiled >41 000 single-nuclei transcriptomes of post-mortem midbrain from six idiopathic Parkinson’s disease patients and five age-/sex-matched controls. To validate our findings in a spatial context, we utilized immunolabelling of the same tissues. Moreover, we analysed Parkinson’s disease-associated risk enrichment in genes with cell type-specific expression patterns. We discovered a neuronal cell cluster characterized by CADPS2 overexpression and low TH levels, which was exclusively present in idiopathic Parkinson’s disease midbrains. Validation analyses in laser-microdissected neurons suggest that this cluster represents dysfunctional dopaminergic neurons. With regard to glial cells, we observed an increase in nigral microglia in Parkinson’s disease patients. Moreover, nigral idiopathic Parkinson’s disease microglia were more amoeboid, indicating an activated state. We also discovered a reduction in idiopathic Parkinson’s disease oligodendrocyte numbers with the remaining cells being characterized by a stress-induced upregulation of S100B. Parkinson’s disease risk variants were associated with glia- and neuron-specific gene expression patterns in idiopathic Parkinson’s disease cases. Furthermore, astrocytes and microglia presented idiopathic Parkinson’s disease-specific cell proliferation and dysregulation of genes related to unfolded protein response and cytokine signalling. While reactive patient astrocytes showed CD44 overexpression, idiopathic Parkinson’s disease microglia revealed a pro-inflammatory trajectory characterized by elevated levels of IL1B, GPNMB and HSP90AA1. Taken together, we generated the first single-nuclei RNA sequencing dataset from the idiopathic Parkinson’s disease midbrain, which highlights a disease-specific neuronal cell cluster as well as ‘pan-glial’ activation as a central mechanism in the pathology of the movement disorder. This finding warrants further research into inflammatory signalling and immunomodulatory treatments in Parkinson’s disease.
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spelling pubmed-90505432022-04-29 Single-cell sequencing of human midbrain reveals glial activation and a Parkinson-specific neuronal state Smajić, Semra Prada-Medina, Cesar A. Landoulsi, Zied Ghelfi, Jenny Delcambre, Sylvie Dietrich, Carola Jarazo, Javier Henck, Jana Balachandran, Saranya Pachchek, Sinthuja Morris, Christopher M. Antony, Paul Timmermann, Bernd Sauer, Sascha Pereira, Sandro L. Schwamborn, Jens C. May, Patrick Grünewald, Anne Spielmann, Malte Brain Original Article Idiopathic Parkinson’s disease is characterized by a progressive loss of dopaminergic neurons, but the exact disease aetiology remains largely unknown. To date, Parkinson’s disease research has mainly focused on nigral dopaminergic neurons, although recent studies suggest disease-related changes also in non-neuronal cells and in midbrain regions beyond the substantia nigra. While there is some evidence for glial involvement in Parkinson’s disease, the molecular mechanisms remain poorly understood. The aim of this study was to characterize the contribution of all cell types of the midbrain to Parkinson’s disease pathology by single-nuclei RNA sequencing and to assess the cell type-specific risk for Parkinson’s disease using the latest genome-wide association study. We profiled >41 000 single-nuclei transcriptomes of post-mortem midbrain from six idiopathic Parkinson’s disease patients and five age-/sex-matched controls. To validate our findings in a spatial context, we utilized immunolabelling of the same tissues. Moreover, we analysed Parkinson’s disease-associated risk enrichment in genes with cell type-specific expression patterns. We discovered a neuronal cell cluster characterized by CADPS2 overexpression and low TH levels, which was exclusively present in idiopathic Parkinson’s disease midbrains. Validation analyses in laser-microdissected neurons suggest that this cluster represents dysfunctional dopaminergic neurons. With regard to glial cells, we observed an increase in nigral microglia in Parkinson’s disease patients. Moreover, nigral idiopathic Parkinson’s disease microglia were more amoeboid, indicating an activated state. We also discovered a reduction in idiopathic Parkinson’s disease oligodendrocyte numbers with the remaining cells being characterized by a stress-induced upregulation of S100B. Parkinson’s disease risk variants were associated with glia- and neuron-specific gene expression patterns in idiopathic Parkinson’s disease cases. Furthermore, astrocytes and microglia presented idiopathic Parkinson’s disease-specific cell proliferation and dysregulation of genes related to unfolded protein response and cytokine signalling. While reactive patient astrocytes showed CD44 overexpression, idiopathic Parkinson’s disease microglia revealed a pro-inflammatory trajectory characterized by elevated levels of IL1B, GPNMB and HSP90AA1. Taken together, we generated the first single-nuclei RNA sequencing dataset from the idiopathic Parkinson’s disease midbrain, which highlights a disease-specific neuronal cell cluster as well as ‘pan-glial’ activation as a central mechanism in the pathology of the movement disorder. This finding warrants further research into inflammatory signalling and immunomodulatory treatments in Parkinson’s disease. Oxford University Press 2021-12-17 /pmc/articles/PMC9050543/ /pubmed/34919646 http://dx.doi.org/10.1093/brain/awab446 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
Smajić, Semra
Prada-Medina, Cesar A.
Landoulsi, Zied
Ghelfi, Jenny
Delcambre, Sylvie
Dietrich, Carola
Jarazo, Javier
Henck, Jana
Balachandran, Saranya
Pachchek, Sinthuja
Morris, Christopher M.
Antony, Paul
Timmermann, Bernd
Sauer, Sascha
Pereira, Sandro L.
Schwamborn, Jens C.
May, Patrick
Grünewald, Anne
Spielmann, Malte
Single-cell sequencing of human midbrain reveals glial activation and a Parkinson-specific neuronal state
title Single-cell sequencing of human midbrain reveals glial activation and a Parkinson-specific neuronal state
title_full Single-cell sequencing of human midbrain reveals glial activation and a Parkinson-specific neuronal state
title_fullStr Single-cell sequencing of human midbrain reveals glial activation and a Parkinson-specific neuronal state
title_full_unstemmed Single-cell sequencing of human midbrain reveals glial activation and a Parkinson-specific neuronal state
title_short Single-cell sequencing of human midbrain reveals glial activation and a Parkinson-specific neuronal state
title_sort single-cell sequencing of human midbrain reveals glial activation and a parkinson-specific neuronal state
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9050543/
https://www.ncbi.nlm.nih.gov/pubmed/34919646
http://dx.doi.org/10.1093/brain/awab446
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