GDAP1 loss of function inhibits the mitochondrial pyruvate dehydrogenase complex by altering the actin cytoskeleton

Author:

Wolf Christina,Pouya AlirezaORCID,Bitar Sara,Pfeiffer AnnikaORCID,Bueno DionesORCID,Rojas-Charry Liliana,Arndt SabineORCID,Gomez-Zepeda David,Tenzer StefanORCID,Bello Federica Dal,Vianello CaterinaORCID,Ritz Sandra,Schwirz Jonas,Dobrindt Kristina,Peitz MichaelORCID,Hanschmann Eva-Maria,Mencke Pauline,Boussaad IbrahimORCID,Silies MarionORCID,Brüstle Oliver,Giacomello MartaORCID,Krüger Rejko,Methner AxelORCID

Abstract

AbstractCharcot-Marie-Tooth (CMT) disease 4A is an autosomal-recessive polyneuropathy caused by mutations of ganglioside-induced differentiation-associated protein 1 (GDAP1), a putative glutathione transferase, which affects mitochondrial shape and alters cellular Ca2+ homeostasis. Here, we identify the underlying mechanism. We found that patient-derived motoneurons and GDAP1 knockdown SH-SY5Y cells display two phenotypes: more tubular mitochondria and a metabolism characterized by glutamine dependence and fewer cytosolic lipid droplets. GDAP1 interacts with the actin-depolymerizing protein Cofilin-1 and beta-tubulin in a redox-dependent manner, suggesting a role for actin signaling. Consistently, GDAP1 loss causes less F-actin close to mitochondria, which restricts mitochondrial localization of the fission factor dynamin-related protein 1, instigating tubularity. GDAP1 silencing also disrupts mitochondria-ER contact sites. These changes result in lower mitochondrial Ca2+ levels and inhibition of the pyruvate dehydrogenase complex, explaining the metabolic changes upon GDAP1 loss of function. Together, our findings reconcile GDAP1-associated phenotypes and implicate disrupted actin signaling in CMT4A pathophysiology.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Springer Science and Business Media LLC

Subject

General Agricultural and Biological Sciences,General Biochemistry, Genetics and Molecular Biology,Medicine (miscellaneous)

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