@article{NiemannHuberWagneretal.2014, author = {Niemann, Axel and Huber, Nina and Wagner, Konstanze M. and Somandin, Christian and Horn, Michael and Lebrun-Julien, Fr{\´e}d{\´e}ric and Angst, Brigitte and Pereira, Jorge A. and Halfter, Hartmut and Welzl, Hans and Feltri, M. Laura and Wrabetz, Lawrence and Young, Peter and Wessig, Carsten and Toyka, Klaus V. and Suter, Ueli}, title = {The Gdap1 knockout mouse mechanistically links redox control to Charcot-Marie-Tooth disease}, series = {Brain}, volume = {137}, journal = {Brain}, number = {3}, doi = {10.1093/brain/awt371}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-120731}, pages = {668-82}, year = {2014}, abstract = {The ganglioside-induced differentiation-associated protein 1 (GDAP1) is a mitochondrial fission factor and mutations in GDAP1 cause Charcot-Marie-Tooth disease. We found that Gdap1 knockout mice (\(Gdap1^{-/-}\)), mimicking genetic alterations of patients suffering from severe forms of Charcot-Marie-Tooth disease, develop an age-related, hypomyelinating peripheral neuropathy. Ablation of Gdap1 expression in Schwann cells recapitulates this phenotype. Additionally, intra-axonal mitochondria of peripheral neurons are larger in \(Gdap1^{-/-}\) mice and mitochondrial transport is impaired in cultured sensory neurons of \(Gdap1^{-/-}\) mice compared with controls. These changes in mitochondrial morphology and dynamics also influence mitochondrial biogenesis. We demonstrate that mitochondrial DNA biogenesis and content is increased in the peripheral nervous system but not in the central nervous system of \(Gdap1^{-/-}\) mice compared with control littermates. In search for a molecular mechanism we turned to the paralogue of GDAP1, GDAP1L1, which is mainly expressed in the unaffected central nervous system. GDAP1L1 responds to elevated levels of oxidized glutathione by translocating from the cytosol to mitochondria, where it inserts into the mitochondrial outer membrane. This translocation is necessary to substitute for loss of GDAP1 expression. Accordingly, more GDAP1L1 was associated with mitochondria in the spinal cord of aged \(Gdap1^{-/-}\) mice compared with controls. Our findings demonstrate that Charcot-Marie-Tooth disease caused by mutations in GDAP1 leads to mild, persistent oxidative stress in the peripheral nervous system, which can be compensated by GDAP1L1 in the unaffected central nervous system. We conclude that members of the GDAP1 family are responsive and protective against stress associated with increased levels of oxidized glutathione.}, language = {en} } @article{NorrmenFigliaLebrunJulienetal.2014, author = {Norrmen, Camilla and Figlia, Gianluca and Lebrun-Julien, Frederic and Pereira, Jorge A. and Tr{\"o}tzm{\"u}ller, Martin and K{\"o}feler, Harald C. and Rantanen, Ville and Wessig, Carsten and van Deijk, Anne-Lieke F. and Smit, August B. and Verheijen, Mark H. G. and R{\"u}egg, Markus A. and Hall, Michael N. and Suter, Ueli}, title = {mTORC1 Controls PNS Myelination along the mTORC1-RXR gamma-SREBP-Lipid Biosynthesis Axis in Schwann Cells}, series = {Cell Reports}, volume = {9}, journal = {Cell Reports}, number = {2}, issn = {2211-1247}, doi = {10.1016/j.celrep.2014.09.001}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-114847}, pages = {646-660}, year = {2014}, abstract = {Myelin formation during peripheral nervous system (PNS) development, and reformation after injury and in disease, requires multiple intrinsic and extrinsic signals. Akt/mTOR signaling has emerged as a major player involved, but the molecular mechanisms and downstream effectors are virtually unknown. Here, we have used Schwann-cell-specific conditional gene ablation of raptor and rictor, which encode essential components of the mTOR complexes 1 (mTORC1) and 2 (mTORC2), respectively, to demonstrate that mTORC1 controls PNS myelination during development. In this process, mTORC1 regulates lipid biosynthesis via sterol regulatory element-binding proteins (SREBPs). This course of action is mediated by the nuclear receptor RXRg, which transcriptionally regulates SREBP1c downstream of mTORC1. Absence of mTORC1 causes delayed myelination initiation as well as hypomyelination, together with abnormal lipid composition and decreased nerve conduction velocity. Thus, we have identified the mTORC1-RXR gamma-SREBP axis controlling lipid biosynthesis as a major contributor to proper peripheral nerve function.}, language = {en} }