The emerging role of autophagic-lysosomal dysfunction in Gaucher disease and Parkinson's disease

Gaucher disease (GD), the commonest lysosomal storage disorder, results from the lack or functional deficiency of glucocerebrosidase (GCase) secondary to mutations in the GBA1 gene. There is an established association between GBA1 mutations and Parkinson's disease (PD), and indeed GBA1 mutation...

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Main Authors: Kerri J Kinghorn, Amir M Asghari, Jorge Iván Castillo-Quan
Format: Article
Language:English
Published: Wolters Kluwer Medknow Publications 2017-01-01
Series:Neural Regeneration Research
Subjects:
Online Access:http://www.nrronline.org/article.asp?issn=1673-5374;year=2017;volume=12;issue=3;spage=380;epage=384;aulast=Kinghorn
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spelling doaj-d3b277025c574ce9be8836397c7ed1632020-11-25T02:44:04ZengWolters Kluwer Medknow PublicationsNeural Regeneration Research1673-53742017-01-0112338038410.4103/1673-5374.202934The emerging role of autophagic-lysosomal dysfunction in Gaucher disease and Parkinson's diseaseKerri J KinghornAmir M AsghariJorge Iván Castillo-QuanGaucher disease (GD), the commonest lysosomal storage disorder, results from the lack or functional deficiency of glucocerebrosidase (GCase) secondary to mutations in the GBA1 gene. There is an established association between GBA1 mutations and Parkinson's disease (PD), and indeed GBA1 mutations are now considered to be the greatest genetic risk factor for PD. Impaired lysosomal-autophagic degradation of cellular proteins, including α-synuclein (α-syn), is implicated in the pathogenesis of PD, and there is increasing evidence for this also in GD and GBA1-PD. Indeed we have recently shown in a Drosophila model lacking neuronal GCase, that there are clear lysosomal-autophagic defects in association with synaptic loss and neurodegeneration. In addition, we demonstrated alterations in mechanistic target of rapamycin complex 1 (mTORC1) signaling and functional rescue of the lifespan, locomotor defects and hypersensitivity to oxidative stress on treatment of GCase-deficient flies with the mTOR inhibitor rapamycin. Moreover, a number of other recent studies have shown autophagy-lysosomal system (ALS) dysfunction, with specific defects in both chaperone-mediated autophagy (CMA), as well as macroautophagy, in GD and GBA1-PD model systems. Lastly we discuss the possible therapeutic benefits of inhibiting mTOR using drugs such as rapamycin to reverse the autophagy defects in GD and PD.http://www.nrronline.org/article.asp?issn=1673-5374;year=2017;volume=12;issue=3;spage=380;epage=384;aulast=KinghornGaucher disease; Parkinson′s disease; Drosophila; autophagy; lysosome; glucocerebrosidase; GBA
collection DOAJ
language English
format Article
sources DOAJ
author Kerri J Kinghorn
Amir M Asghari
Jorge Iván Castillo-Quan
spellingShingle Kerri J Kinghorn
Amir M Asghari
Jorge Iván Castillo-Quan
The emerging role of autophagic-lysosomal dysfunction in Gaucher disease and Parkinson's disease
Neural Regeneration Research
Gaucher disease; Parkinson′s disease; Drosophila; autophagy; lysosome; glucocerebrosidase; GBA
author_facet Kerri J Kinghorn
Amir M Asghari
Jorge Iván Castillo-Quan
author_sort Kerri J Kinghorn
title The emerging role of autophagic-lysosomal dysfunction in Gaucher disease and Parkinson's disease
title_short The emerging role of autophagic-lysosomal dysfunction in Gaucher disease and Parkinson's disease
title_full The emerging role of autophagic-lysosomal dysfunction in Gaucher disease and Parkinson's disease
title_fullStr The emerging role of autophagic-lysosomal dysfunction in Gaucher disease and Parkinson's disease
title_full_unstemmed The emerging role of autophagic-lysosomal dysfunction in Gaucher disease and Parkinson's disease
title_sort emerging role of autophagic-lysosomal dysfunction in gaucher disease and parkinson's disease
publisher Wolters Kluwer Medknow Publications
series Neural Regeneration Research
issn 1673-5374
publishDate 2017-01-01
description Gaucher disease (GD), the commonest lysosomal storage disorder, results from the lack or functional deficiency of glucocerebrosidase (GCase) secondary to mutations in the GBA1 gene. There is an established association between GBA1 mutations and Parkinson's disease (PD), and indeed GBA1 mutations are now considered to be the greatest genetic risk factor for PD. Impaired lysosomal-autophagic degradation of cellular proteins, including α-synuclein (α-syn), is implicated in the pathogenesis of PD, and there is increasing evidence for this also in GD and GBA1-PD. Indeed we have recently shown in a Drosophila model lacking neuronal GCase, that there are clear lysosomal-autophagic defects in association with synaptic loss and neurodegeneration. In addition, we demonstrated alterations in mechanistic target of rapamycin complex 1 (mTORC1) signaling and functional rescue of the lifespan, locomotor defects and hypersensitivity to oxidative stress on treatment of GCase-deficient flies with the mTOR inhibitor rapamycin. Moreover, a number of other recent studies have shown autophagy-lysosomal system (ALS) dysfunction, with specific defects in both chaperone-mediated autophagy (CMA), as well as macroautophagy, in GD and GBA1-PD model systems. Lastly we discuss the possible therapeutic benefits of inhibiting mTOR using drugs such as rapamycin to reverse the autophagy defects in GD and PD.
topic Gaucher disease; Parkinson′s disease; Drosophila; autophagy; lysosome; glucocerebrosidase; GBA
url http://www.nrronline.org/article.asp?issn=1673-5374;year=2017;volume=12;issue=3;spage=380;epage=384;aulast=Kinghorn
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