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Exploring therapeutic strategies for infantile neuronal axonal dystrophy (INAD/PARK14)

Infantile neuroaxonal dystrophy (INAD) is caused by recessive variants in PLA2G6 and is a lethal pediatric neurodegenerative disorder. Loss of the Drosophila homolog of PLA2G6, leads to ceramide accumulation, lysosome expansion, and mitochondrial defects. Here, we report that retromer function, cera...

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Autores principales: Lin, Guang, Tepe, Burak, McGrane, Geoff, Tipon, Regine C, Croft, Gist, Panwala, Leena, Hope, Amanda, Liang, Agnes JH, Zuo, Zhongyuan, Byeon, Seul Kee, Wang, Lily, Pandey, Akhilesh, Bellen, Hugo J
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9889087/
https://www.ncbi.nlm.nih.gov/pubmed/36645408
http://dx.doi.org/10.7554/eLife.82555
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author Lin, Guang
Tepe, Burak
McGrane, Geoff
Tipon, Regine C
Croft, Gist
Panwala, Leena
Hope, Amanda
Liang, Agnes JH
Zuo, Zhongyuan
Byeon, Seul Kee
Wang, Lily
Pandey, Akhilesh
Bellen, Hugo J
author_facet Lin, Guang
Tepe, Burak
McGrane, Geoff
Tipon, Regine C
Croft, Gist
Panwala, Leena
Hope, Amanda
Liang, Agnes JH
Zuo, Zhongyuan
Byeon, Seul Kee
Wang, Lily
Pandey, Akhilesh
Bellen, Hugo J
author_sort Lin, Guang
collection PubMed
description Infantile neuroaxonal dystrophy (INAD) is caused by recessive variants in PLA2G6 and is a lethal pediatric neurodegenerative disorder. Loss of the Drosophila homolog of PLA2G6, leads to ceramide accumulation, lysosome expansion, and mitochondrial defects. Here, we report that retromer function, ceramide metabolism, the endolysosomal pathway, and mitochondrial morphology are affected in INAD patient-derived neurons. We show that in INAD mouse models, the same features are affected in Purkinje cells, arguing that the neuropathological mechanisms are evolutionary conserved and that these features can be used as biomarkers. We tested 20 drugs that target these pathways and found that Ambroxol, Desipramine, Azoramide, and Genistein alleviate neurodegenerative phenotypes in INAD flies and INAD patient-derived neural progenitor cells. We also develop an AAV-based gene therapy approach that delays neurodegeneration and prolongs lifespan in an INAD mouse model.
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spelling pubmed-98890872023-02-01 Exploring therapeutic strategies for infantile neuronal axonal dystrophy (INAD/PARK14) Lin, Guang Tepe, Burak McGrane, Geoff Tipon, Regine C Croft, Gist Panwala, Leena Hope, Amanda Liang, Agnes JH Zuo, Zhongyuan Byeon, Seul Kee Wang, Lily Pandey, Akhilesh Bellen, Hugo J eLife Neuroscience Infantile neuroaxonal dystrophy (INAD) is caused by recessive variants in PLA2G6 and is a lethal pediatric neurodegenerative disorder. Loss of the Drosophila homolog of PLA2G6, leads to ceramide accumulation, lysosome expansion, and mitochondrial defects. Here, we report that retromer function, ceramide metabolism, the endolysosomal pathway, and mitochondrial morphology are affected in INAD patient-derived neurons. We show that in INAD mouse models, the same features are affected in Purkinje cells, arguing that the neuropathological mechanisms are evolutionary conserved and that these features can be used as biomarkers. We tested 20 drugs that target these pathways and found that Ambroxol, Desipramine, Azoramide, and Genistein alleviate neurodegenerative phenotypes in INAD flies and INAD patient-derived neural progenitor cells. We also develop an AAV-based gene therapy approach that delays neurodegeneration and prolongs lifespan in an INAD mouse model. eLife Sciences Publications, Ltd 2023-01-16 /pmc/articles/PMC9889087/ /pubmed/36645408 http://dx.doi.org/10.7554/eLife.82555 Text en © 2023, Lin et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Neuroscience
Lin, Guang
Tepe, Burak
McGrane, Geoff
Tipon, Regine C
Croft, Gist
Panwala, Leena
Hope, Amanda
Liang, Agnes JH
Zuo, Zhongyuan
Byeon, Seul Kee
Wang, Lily
Pandey, Akhilesh
Bellen, Hugo J
Exploring therapeutic strategies for infantile neuronal axonal dystrophy (INAD/PARK14)
title Exploring therapeutic strategies for infantile neuronal axonal dystrophy (INAD/PARK14)
title_full Exploring therapeutic strategies for infantile neuronal axonal dystrophy (INAD/PARK14)
title_fullStr Exploring therapeutic strategies for infantile neuronal axonal dystrophy (INAD/PARK14)
title_full_unstemmed Exploring therapeutic strategies for infantile neuronal axonal dystrophy (INAD/PARK14)
title_short Exploring therapeutic strategies for infantile neuronal axonal dystrophy (INAD/PARK14)
title_sort exploring therapeutic strategies for infantile neuronal axonal dystrophy (inad/park14)
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9889087/
https://www.ncbi.nlm.nih.gov/pubmed/36645408
http://dx.doi.org/10.7554/eLife.82555
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