Dlg1, Sec8, and Mtmr2 regulate membrane homeostasis in Schwann cell myelination
Annalisa Bolis1, Silvia Coviello, Ilaria Visigalli
1Dulbecco Telethon Institute, San Raffaele Scientific Institute, 20132 Milan, Italy.
Abstract:
How membrane biosynthesis and homeostasis is achieved in myelinating glia is mostly unknown. We previously reported that loss of myotubularin-related protein 2 (MTMR2) provokes autosomal recessive demyelinating Charcot-Marie-Tooth type 4B1 neuropathy, characterized by excessive redundant myelin, also known as myelin outfoldings. We generated a Mtmr2-null mouse that models the human neuropathy. We also found that, in Schwann cells, Mtmr2 interacts with Discs large 1 (Dlg1), a scaffold involved in polarized trafficking and membrane addition, whose localization in Mtmr2-null nerves is altered. We here report that, in Schwann cells, Dlg1 also interacts with kinesin 13B (kif13B) and Sec8, which are involved in vesicle transport and membrane tethering in polarized cells, respectively. Taking advantage of the Mtmr2-null mouse as a model of impaired membrane formation, we provide here the first evidence for a machinery that titrates membrane formation during myelination. We established Schwann cell/DRG neuron cocultures from Mtmr2-null mice, in which myelin outfoldings were reproduced and almost completely rescued by Mtmr2 replacement. By exploiting this in vitro model, we propose a mechanism whereby kif13B kinesin transports Dlg1 to sites of membrane remodeling where it coordinates a homeostatic control of myelination. The interaction of Dlg1 with the Sec8 exocyst component promotes membrane addition, whereas with Mtmr2, negatively regulates membrane formation. Myelin outfoldings thus arise as a consequence of the loss of negative control on the amount of membrane, which is produced during myelination.
Insights
Loss of myotubularin-related protein 2 (MTMR2) causes Charcot-Marie-Tooth disease by disrupting myelin homeostasis. This study reveals a mechanism where MTMR2 negatively regulates membrane formation during myelination, preventing excessive myelin growth.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Myelin biosynthesis and homeostasis in myelinating glia remain poorly understood.
- Loss of myotubularin-related protein 2 (MTMR2) causes Charcot-Marie-Tooth type 4B1 neuropathy, characterized by myelin outfoldings.
- MTMR2 interacts with Discs large 1 (Dlg1), a protein crucial for polarized trafficking and membrane addition in Schwann cells.
Purpose of the Study:
- To elucidate the mechanism of membrane homeostasis during myelination.
- To investigate the role of MTMR2 and its interacting partners in regulating myelin formation.
- To understand the molecular basis of myelin outfoldings in MTMR2-deficient neuropathy.
Main Methods:
- Generation and analysis of a Mtmr2-null mouse model.
- Schwann cell/DRG neuron co-cultures to study myelination in vitro.
- Investigation of protein-protein interactions involving MTMR2, Dlg1, kinesin 13B (Kif13B), and Sec8.
Main Results:
- Mtmr2-null mice exhibit myelin outfoldings, modeling human neuropathy.
- Dlg1 localization is altered in Mtmr2-null nerves and interacts with Kif13B and Sec8 in Schwann cells.
- Myelin outfoldings in co-cultures were rescued by MTMR2 replacement, confirming its critical role.
Conclusions:
- A novel machinery for titrating membrane formation during myelination is identified.
- Kif13B transports Dlg1 to membrane remodeling sites, coordinating myelination.
- Dlg1 promotes membrane addition via Sec8, while MTMR2 negatively regulates membrane formation, preventing excessive myelin production.
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