Mitochondrial biogenesis is transcriptionally repressed in lysosomal lipid storage diseases

2019 | journal article; research paper. A publication with affiliation to the University of Göttingen.

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​Mitochondrial biogenesis is transcriptionally repressed in lysosomal lipid storage diseases​
Yambire, K. F. ; Fernandez-Mosquera, L. ; Steinfeld, R. ; Mühle, C.; Ikonen, E.; Raimundo, N.   & Milošević, I. ​ (2019) 
eLife8 art. e39598​.​ DOI: https://doi.org/10.7554/eLife.39598 

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Authors
Yambire, King Faisal ; Fernandez-Mosquera, Lorena ; Steinfeld, Robert ; Mühle, Christiane; Ikonen, Elina; Raimundo, Nuno ; Milošević, Ira 
Abstract
Perturbations in mitochondrial function and homeostasis are pervasive in lysosomal storage diseases, but the underlying mechanisms remain unknown. Here, we report a transcriptional program that represses mitochondrial biogenesis and function in lysosomal storage diseases Niemann-Pick type C (NPC) and acid sphingomyelinase deficiency (ASM), in patient cells and mouse tissues. This mechanism is mediated by the transcription factors KLF2 and ETV1, which are both induced in NPC and ASM patient cells. Mitochondrial biogenesis and function defects in these cells are rescued by the silencing of KLF2 or ETV1. Increased ETV1 expression is regulated by KLF2, while the increase of KLF2 protein levels in NPC and ASM stems from impaired signaling downstream sphingosine-1-phosphate receptor 1 (S1PR1), which normally represses KLF2. In patient cells, S1PR1 is barely detectable at the plasma membrane and thus unable to repress KLF2. This manuscript provides a mechanistic pathway for the prevalent mitochondrial defects in lysosomal storage diseases.
Issue Date
2019
Journal
eLife 
Project
SFB 1190: Transportmaschinen und Kontaktstellen zellulärer Kompartimente 
SFB 1190 | P02: Charakterisierung der ER-Mitochondrien-Kontakte und ihre Rolle in der Signalweiterleitung 
Working Group
RG Milosevic (Synaptic Vesicle Dynamics) 
RG Raimundo 
ISSN
2050-084X
eISSN
2050-084X
Language
English

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