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Acid ceramidase improves mitochondrial function and oxidative stress in Niemann-Pick type C disease by repressing STARD1 expression and mitochondrial cholesterol accumulation

Niemann-Pick type C (NPC) disease, a lysosomal storage disorder caused by defective NPC1/NPC2 function, results in the accumulation of cholesterol and glycosphingolipids in lysosomes of affected organs, such as liver and brain. Moreover, increase of mitochondrial cholesterol (mchol) content and impa...

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Autores principales: Torres, Sandra, Solsona-Vilarrasa, Estel, Nuñez, Susana, Matías, Nuria, Insausti-Urkia, Naroa, Castro, Fernanda, Casasempere, Mireia, Fabriás, Gemma, Casas, Josefina, Enrich, Carlos, Fernández-Checa, José C., Garcia-Ruiz, Carmen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8254009/
https://www.ncbi.nlm.nih.gov/pubmed/34175669
http://dx.doi.org/10.1016/j.redox.2021.102052
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author Torres, Sandra
Solsona-Vilarrasa, Estel
Nuñez, Susana
Matías, Nuria
Insausti-Urkia, Naroa
Castro, Fernanda
Casasempere, Mireia
Fabriás, Gemma
Casas, Josefina
Enrich, Carlos
Fernández-Checa, José C.
Garcia-Ruiz, Carmen
author_facet Torres, Sandra
Solsona-Vilarrasa, Estel
Nuñez, Susana
Matías, Nuria
Insausti-Urkia, Naroa
Castro, Fernanda
Casasempere, Mireia
Fabriás, Gemma
Casas, Josefina
Enrich, Carlos
Fernández-Checa, José C.
Garcia-Ruiz, Carmen
author_sort Torres, Sandra
collection PubMed
description Niemann-Pick type C (NPC) disease, a lysosomal storage disorder caused by defective NPC1/NPC2 function, results in the accumulation of cholesterol and glycosphingolipids in lysosomes of affected organs, such as liver and brain. Moreover, increase of mitochondrial cholesterol (mchol) content and impaired mitochondrial function and GSH depletion contribute to NPC disease. However, the underlying mechanism of mchol accumulation in NPC disease remains unknown. As STARD1 is crucial in intramitochondrial cholesterol trafficking and acid ceramidase (ACDase) has been shown to regulate STARD1, we explored the functional relationship between ACDase and STARD1 in NPC disease. Liver and brain of Npc1(−/−) mice presented a significant increase in mchol levels and STARD1 expression. U18666A, an amphiphilic sterol that inhibits lysosomal cholesterol efflux, increased mchol levels in hepatocytes from Stard1(f/f) mice but not Stard1(ΔHep) mice. We dissociate the induction of STARD1 expression from endoplasmic reticulum stress, and establish an inverse relationship between ACDase and STARD1 expression and LRH-1 levels. Hepatocytes from Npc1(+/+) mice treated with U18666A exhibited increased mchol accumulation, STARD1 upregulation and decreased ACDase expression, effects that were reversed by cholesterol extraction with 2-hydroxypropyl-β-cyclodextrin. Moreover, transfection of fibroblasts from NPC patients with ACDase, decreased STARD1 expression and mchol accumulation, resulting in increased mitochondrial GSH levels, improved mitochondrial functional performance, decreased oxidative stress and protected NPC fibroblasts against oxidative stress-mediated cell death. Our results demonstrate a cholesterol-dependent inverse relationship between ACDase and STARD1 and provide a novel approach to target the accumulation of cholesterol in mitochondria in NPC disease.
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spelling pubmed-82540092021-07-12 Acid ceramidase improves mitochondrial function and oxidative stress in Niemann-Pick type C disease by repressing STARD1 expression and mitochondrial cholesterol accumulation Torres, Sandra Solsona-Vilarrasa, Estel Nuñez, Susana Matías, Nuria Insausti-Urkia, Naroa Castro, Fernanda Casasempere, Mireia Fabriás, Gemma Casas, Josefina Enrich, Carlos Fernández-Checa, José C. Garcia-Ruiz, Carmen Redox Biol Research Paper Niemann-Pick type C (NPC) disease, a lysosomal storage disorder caused by defective NPC1/NPC2 function, results in the accumulation of cholesterol and glycosphingolipids in lysosomes of affected organs, such as liver and brain. Moreover, increase of mitochondrial cholesterol (mchol) content and impaired mitochondrial function and GSH depletion contribute to NPC disease. However, the underlying mechanism of mchol accumulation in NPC disease remains unknown. As STARD1 is crucial in intramitochondrial cholesterol trafficking and acid ceramidase (ACDase) has been shown to regulate STARD1, we explored the functional relationship between ACDase and STARD1 in NPC disease. Liver and brain of Npc1(−/−) mice presented a significant increase in mchol levels and STARD1 expression. U18666A, an amphiphilic sterol that inhibits lysosomal cholesterol efflux, increased mchol levels in hepatocytes from Stard1(f/f) mice but not Stard1(ΔHep) mice. We dissociate the induction of STARD1 expression from endoplasmic reticulum stress, and establish an inverse relationship between ACDase and STARD1 expression and LRH-1 levels. Hepatocytes from Npc1(+/+) mice treated with U18666A exhibited increased mchol accumulation, STARD1 upregulation and decreased ACDase expression, effects that were reversed by cholesterol extraction with 2-hydroxypropyl-β-cyclodextrin. Moreover, transfection of fibroblasts from NPC patients with ACDase, decreased STARD1 expression and mchol accumulation, resulting in increased mitochondrial GSH levels, improved mitochondrial functional performance, decreased oxidative stress and protected NPC fibroblasts against oxidative stress-mediated cell death. Our results demonstrate a cholesterol-dependent inverse relationship between ACDase and STARD1 and provide a novel approach to target the accumulation of cholesterol in mitochondria in NPC disease. Elsevier 2021-06-19 /pmc/articles/PMC8254009/ /pubmed/34175669 http://dx.doi.org/10.1016/j.redox.2021.102052 Text en © 2021 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Torres, Sandra
Solsona-Vilarrasa, Estel
Nuñez, Susana
Matías, Nuria
Insausti-Urkia, Naroa
Castro, Fernanda
Casasempere, Mireia
Fabriás, Gemma
Casas, Josefina
Enrich, Carlos
Fernández-Checa, José C.
Garcia-Ruiz, Carmen
Acid ceramidase improves mitochondrial function and oxidative stress in Niemann-Pick type C disease by repressing STARD1 expression and mitochondrial cholesterol accumulation
title Acid ceramidase improves mitochondrial function and oxidative stress in Niemann-Pick type C disease by repressing STARD1 expression and mitochondrial cholesterol accumulation
title_full Acid ceramidase improves mitochondrial function and oxidative stress in Niemann-Pick type C disease by repressing STARD1 expression and mitochondrial cholesterol accumulation
title_fullStr Acid ceramidase improves mitochondrial function and oxidative stress in Niemann-Pick type C disease by repressing STARD1 expression and mitochondrial cholesterol accumulation
title_full_unstemmed Acid ceramidase improves mitochondrial function and oxidative stress in Niemann-Pick type C disease by repressing STARD1 expression and mitochondrial cholesterol accumulation
title_short Acid ceramidase improves mitochondrial function and oxidative stress in Niemann-Pick type C disease by repressing STARD1 expression and mitochondrial cholesterol accumulation
title_sort acid ceramidase improves mitochondrial function and oxidative stress in niemann-pick type c disease by repressing stard1 expression and mitochondrial cholesterol accumulation
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8254009/
https://www.ncbi.nlm.nih.gov/pubmed/34175669
http://dx.doi.org/10.1016/j.redox.2021.102052
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