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Protein aggregation and calcium dysregulation are hallmarks of familial Parkinson’s disease in midbrain dopaminergic neurons

Mutations in the SNCA gene cause autosomal dominant Parkinson’s disease (PD), with loss of dopaminergic neurons in the substantia nigra, and aggregation of α-synuclein. The sequence of molecular events that proceed from an SNCA mutation during development, to end-stage pathology is unknown. Utilisin...

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Autores principales: Virdi, Gurvir S., Choi, Minee L., Evans, James R., Yao, Zhi, Athauda, Dilan, Strohbuecker, Stephanie, Nirujogi, Raja S., Wernick, Anna I., Pelegrina-Hidalgo, Noelia, Leighton, Craig, Saleeb, Rebecca S., Kopach, Olga, Alrashidi, Haya, Melandri, Daniela, Perez-Lloret, Jimena, Angelova, Plamena R., Sylantyev, Sergiy, Eaton, Simon, Heales, Simon, Rusakov, Dmitri A., Alessi, Dario R., Kunath, Tilo, Horrocks, Mathew H., Abramov, Andrey Y., Patani, Rickie, Gandhi, Sonia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9691718/
https://www.ncbi.nlm.nih.gov/pubmed/36424392
http://dx.doi.org/10.1038/s41531-022-00423-7
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author Virdi, Gurvir S.
Choi, Minee L.
Evans, James R.
Yao, Zhi
Athauda, Dilan
Strohbuecker, Stephanie
Nirujogi, Raja S.
Wernick, Anna I.
Pelegrina-Hidalgo, Noelia
Leighton, Craig
Saleeb, Rebecca S.
Kopach, Olga
Alrashidi, Haya
Melandri, Daniela
Perez-Lloret, Jimena
Angelova, Plamena R.
Sylantyev, Sergiy
Eaton, Simon
Heales, Simon
Rusakov, Dmitri A.
Alessi, Dario R.
Kunath, Tilo
Horrocks, Mathew H.
Abramov, Andrey Y.
Patani, Rickie
Gandhi, Sonia
author_facet Virdi, Gurvir S.
Choi, Minee L.
Evans, James R.
Yao, Zhi
Athauda, Dilan
Strohbuecker, Stephanie
Nirujogi, Raja S.
Wernick, Anna I.
Pelegrina-Hidalgo, Noelia
Leighton, Craig
Saleeb, Rebecca S.
Kopach, Olga
Alrashidi, Haya
Melandri, Daniela
Perez-Lloret, Jimena
Angelova, Plamena R.
Sylantyev, Sergiy
Eaton, Simon
Heales, Simon
Rusakov, Dmitri A.
Alessi, Dario R.
Kunath, Tilo
Horrocks, Mathew H.
Abramov, Andrey Y.
Patani, Rickie
Gandhi, Sonia
author_sort Virdi, Gurvir S.
collection PubMed
description Mutations in the SNCA gene cause autosomal dominant Parkinson’s disease (PD), with loss of dopaminergic neurons in the substantia nigra, and aggregation of α-synuclein. The sequence of molecular events that proceed from an SNCA mutation during development, to end-stage pathology is unknown. Utilising human-induced pluripotent stem cells (hiPSCs), we resolved the temporal sequence of SNCA-induced pathophysiological events in order to discover early, and likely causative, events. Our small molecule-based protocol generates highly enriched midbrain dopaminergic (mDA) neurons: molecular identity was confirmed using single-cell RNA sequencing and proteomics, and functional identity was established through dopamine synthesis, and measures of electrophysiological activity. At the earliest stage of differentiation, prior to maturation to mDA neurons, we demonstrate the formation of small β-sheet-rich oligomeric aggregates, in SNCA-mutant cultures. Aggregation persists and progresses, ultimately resulting in the accumulation of phosphorylated α-synuclein aggregates. Impaired intracellular calcium signalling, increased basal calcium, and impairments in mitochondrial calcium handling occurred early at day 34–41 post differentiation. Once midbrain identity fully developed, at day 48–62 post differentiation, SNCA-mutant neurons exhibited mitochondrial dysfunction, oxidative stress, lysosomal swelling and increased autophagy. Ultimately these multiple cellular stresses lead to abnormal excitability, altered neuronal activity, and cell death. Our differentiation paradigm generates an efficient model for studying disease mechanisms in PD and highlights that protein misfolding to generate intraneuronal oligomers is one of the earliest critical events driving disease in human neurons, rather than a late-stage hallmark of the disease.
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spelling pubmed-96917182022-11-26 Protein aggregation and calcium dysregulation are hallmarks of familial Parkinson’s disease in midbrain dopaminergic neurons Virdi, Gurvir S. Choi, Minee L. Evans, James R. Yao, Zhi Athauda, Dilan Strohbuecker, Stephanie Nirujogi, Raja S. Wernick, Anna I. Pelegrina-Hidalgo, Noelia Leighton, Craig Saleeb, Rebecca S. Kopach, Olga Alrashidi, Haya Melandri, Daniela Perez-Lloret, Jimena Angelova, Plamena R. Sylantyev, Sergiy Eaton, Simon Heales, Simon Rusakov, Dmitri A. Alessi, Dario R. Kunath, Tilo Horrocks, Mathew H. Abramov, Andrey Y. Patani, Rickie Gandhi, Sonia NPJ Parkinsons Dis Article Mutations in the SNCA gene cause autosomal dominant Parkinson’s disease (PD), with loss of dopaminergic neurons in the substantia nigra, and aggregation of α-synuclein. The sequence of molecular events that proceed from an SNCA mutation during development, to end-stage pathology is unknown. Utilising human-induced pluripotent stem cells (hiPSCs), we resolved the temporal sequence of SNCA-induced pathophysiological events in order to discover early, and likely causative, events. Our small molecule-based protocol generates highly enriched midbrain dopaminergic (mDA) neurons: molecular identity was confirmed using single-cell RNA sequencing and proteomics, and functional identity was established through dopamine synthesis, and measures of electrophysiological activity. At the earliest stage of differentiation, prior to maturation to mDA neurons, we demonstrate the formation of small β-sheet-rich oligomeric aggregates, in SNCA-mutant cultures. Aggregation persists and progresses, ultimately resulting in the accumulation of phosphorylated α-synuclein aggregates. Impaired intracellular calcium signalling, increased basal calcium, and impairments in mitochondrial calcium handling occurred early at day 34–41 post differentiation. Once midbrain identity fully developed, at day 48–62 post differentiation, SNCA-mutant neurons exhibited mitochondrial dysfunction, oxidative stress, lysosomal swelling and increased autophagy. Ultimately these multiple cellular stresses lead to abnormal excitability, altered neuronal activity, and cell death. Our differentiation paradigm generates an efficient model for studying disease mechanisms in PD and highlights that protein misfolding to generate intraneuronal oligomers is one of the earliest critical events driving disease in human neurons, rather than a late-stage hallmark of the disease. Nature Publishing Group UK 2022-11-24 /pmc/articles/PMC9691718/ /pubmed/36424392 http://dx.doi.org/10.1038/s41531-022-00423-7 Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Virdi, Gurvir S.
Choi, Minee L.
Evans, James R.
Yao, Zhi
Athauda, Dilan
Strohbuecker, Stephanie
Nirujogi, Raja S.
Wernick, Anna I.
Pelegrina-Hidalgo, Noelia
Leighton, Craig
Saleeb, Rebecca S.
Kopach, Olga
Alrashidi, Haya
Melandri, Daniela
Perez-Lloret, Jimena
Angelova, Plamena R.
Sylantyev, Sergiy
Eaton, Simon
Heales, Simon
Rusakov, Dmitri A.
Alessi, Dario R.
Kunath, Tilo
Horrocks, Mathew H.
Abramov, Andrey Y.
Patani, Rickie
Gandhi, Sonia
Protein aggregation and calcium dysregulation are hallmarks of familial Parkinson’s disease in midbrain dopaminergic neurons
title Protein aggregation and calcium dysregulation are hallmarks of familial Parkinson’s disease in midbrain dopaminergic neurons
title_full Protein aggregation and calcium dysregulation are hallmarks of familial Parkinson’s disease in midbrain dopaminergic neurons
title_fullStr Protein aggregation and calcium dysregulation are hallmarks of familial Parkinson’s disease in midbrain dopaminergic neurons
title_full_unstemmed Protein aggregation and calcium dysregulation are hallmarks of familial Parkinson’s disease in midbrain dopaminergic neurons
title_short Protein aggregation and calcium dysregulation are hallmarks of familial Parkinson’s disease in midbrain dopaminergic neurons
title_sort protein aggregation and calcium dysregulation are hallmarks of familial parkinson’s disease in midbrain dopaminergic neurons
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9691718/
https://www.ncbi.nlm.nih.gov/pubmed/36424392
http://dx.doi.org/10.1038/s41531-022-00423-7
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