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Impairment of Mitochondria in Adult Mouse Brain Overexpressing Predominantly Full-Length, N-Terminally Acetylated Human α-Synuclein

While most forms of Parkinson’s Disease (PD) are sporadic in nature, a small percentage of PD have genetic causes as first described for dominant, single base pair changes as well as duplication and triplication in the α-synuclein gene. The α-synuclein gene encodes a 140 amino acid residue protein t...

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Autores principales: Sarafian, Theodore A., Ryan, Christopher M., Souda, Puneet, Masliah, Eliezer, Kar, Upendra K., Vinters, Harry V., Mathern, Gary W., Faull, Kym F., Whitelegge, Julian P., Watson, Joseph B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3646806/
https://www.ncbi.nlm.nih.gov/pubmed/23667637
http://dx.doi.org/10.1371/journal.pone.0063557
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author Sarafian, Theodore A.
Ryan, Christopher M.
Souda, Puneet
Masliah, Eliezer
Kar, Upendra K.
Vinters, Harry V.
Mathern, Gary W.
Faull, Kym F.
Whitelegge, Julian P.
Watson, Joseph B.
author_facet Sarafian, Theodore A.
Ryan, Christopher M.
Souda, Puneet
Masliah, Eliezer
Kar, Upendra K.
Vinters, Harry V.
Mathern, Gary W.
Faull, Kym F.
Whitelegge, Julian P.
Watson, Joseph B.
author_sort Sarafian, Theodore A.
collection PubMed
description While most forms of Parkinson’s Disease (PD) are sporadic in nature, a small percentage of PD have genetic causes as first described for dominant, single base pair changes as well as duplication and triplication in the α-synuclein gene. The α-synuclein gene encodes a 140 amino acid residue protein that interacts with a variety of organelles including synaptic vesicles, lysosomes, endoplasmic reticulum/Golgi vesicles and, reported more recently, mitochondria. Here we examined the structural and functional interactions of human α-synuclein with brain mitochondria obtained from an early, pre-manifest mouse model for PD over-expressing human α-synuclein (ASOTg). The membrane potential in ASOTg brain mitochondria was decreased relative to wildtype (WT) mitochondria, while reactive oxygen species (ROS) were elevated in ASOTg brain mitochondria. No selective interaction of human α-synuclein with mitochondrial electron transport complexes cI-cV was detected. Monomeric human α-synuclein plus carboxyl terminally truncated forms were the predominant isoforms detected in ASOTg brain mitochondria by 2-dimensional PAGE (Native/SDS) and immunoblotting. Oligomers or fibrils were not detected with amyloid conformational antibodies. Mass spectrometry of human α-synuclein in both ASOTg brain mitochondria and homogenates from surgically resected human cortex demonstrated that the protein was full-length and postranslationally modified by N-terminal acetylation. Overall the study showed that accumulation of full-length, N-terminally acetylated human α-synuclein was sufficient to disrupt brain mitochondrial function in adult mice.
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spelling pubmed-36468062013-05-10 Impairment of Mitochondria in Adult Mouse Brain Overexpressing Predominantly Full-Length, N-Terminally Acetylated Human α-Synuclein Sarafian, Theodore A. Ryan, Christopher M. Souda, Puneet Masliah, Eliezer Kar, Upendra K. Vinters, Harry V. Mathern, Gary W. Faull, Kym F. Whitelegge, Julian P. Watson, Joseph B. PLoS One Research Article While most forms of Parkinson’s Disease (PD) are sporadic in nature, a small percentage of PD have genetic causes as first described for dominant, single base pair changes as well as duplication and triplication in the α-synuclein gene. The α-synuclein gene encodes a 140 amino acid residue protein that interacts with a variety of organelles including synaptic vesicles, lysosomes, endoplasmic reticulum/Golgi vesicles and, reported more recently, mitochondria. Here we examined the structural and functional interactions of human α-synuclein with brain mitochondria obtained from an early, pre-manifest mouse model for PD over-expressing human α-synuclein (ASOTg). The membrane potential in ASOTg brain mitochondria was decreased relative to wildtype (WT) mitochondria, while reactive oxygen species (ROS) were elevated in ASOTg brain mitochondria. No selective interaction of human α-synuclein with mitochondrial electron transport complexes cI-cV was detected. Monomeric human α-synuclein plus carboxyl terminally truncated forms were the predominant isoforms detected in ASOTg brain mitochondria by 2-dimensional PAGE (Native/SDS) and immunoblotting. Oligomers or fibrils were not detected with amyloid conformational antibodies. Mass spectrometry of human α-synuclein in both ASOTg brain mitochondria and homogenates from surgically resected human cortex demonstrated that the protein was full-length and postranslationally modified by N-terminal acetylation. Overall the study showed that accumulation of full-length, N-terminally acetylated human α-synuclein was sufficient to disrupt brain mitochondrial function in adult mice. Public Library of Science 2013-05-07 /pmc/articles/PMC3646806/ /pubmed/23667637 http://dx.doi.org/10.1371/journal.pone.0063557 Text en © 2013 Sarafian et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Sarafian, Theodore A.
Ryan, Christopher M.
Souda, Puneet
Masliah, Eliezer
Kar, Upendra K.
Vinters, Harry V.
Mathern, Gary W.
Faull, Kym F.
Whitelegge, Julian P.
Watson, Joseph B.
Impairment of Mitochondria in Adult Mouse Brain Overexpressing Predominantly Full-Length, N-Terminally Acetylated Human α-Synuclein
title Impairment of Mitochondria in Adult Mouse Brain Overexpressing Predominantly Full-Length, N-Terminally Acetylated Human α-Synuclein
title_full Impairment of Mitochondria in Adult Mouse Brain Overexpressing Predominantly Full-Length, N-Terminally Acetylated Human α-Synuclein
title_fullStr Impairment of Mitochondria in Adult Mouse Brain Overexpressing Predominantly Full-Length, N-Terminally Acetylated Human α-Synuclein
title_full_unstemmed Impairment of Mitochondria in Adult Mouse Brain Overexpressing Predominantly Full-Length, N-Terminally Acetylated Human α-Synuclein
title_short Impairment of Mitochondria in Adult Mouse Brain Overexpressing Predominantly Full-Length, N-Terminally Acetylated Human α-Synuclein
title_sort impairment of mitochondria in adult mouse brain overexpressing predominantly full-length, n-terminally acetylated human α-synuclein
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3646806/
https://www.ncbi.nlm.nih.gov/pubmed/23667637
http://dx.doi.org/10.1371/journal.pone.0063557
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