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vandeVen, M.

Publications and source records attributed to vandeVen, M..

2 recordsLinked to original sources

Defective Schwann cell lipid metabolism alters plasma membrane dynamics in Charcot-Marie-Tooth disease 1A

Duplication of PMP22 causes Charcot-Marie-Tooth disease type 1A (CMT1A) and is known to disrupt the lipid metabolism in myelinating Schwann cells by unknown mechanisms. By using two CMT1A mouse models overexpressing human PMP22, we discovered that PMP22 dose-dependently downregulates genes that are involved in lipid and cholesterol metabolism. Lipidomic analysis on CMT1A mouse sciatic nerves confirmed lipid metabolic abnormalities primarily associated with cholesterol and sphingolipids. We observed similar lipidomic profiles and downregulation of genes associated with lipid metabolism in human CMT1A patient induced pluripotent stem cell-derived Schwann cell precursors (iPSC-SCPs). We confirmed these findings by demonstrating altered lipid raft dynamics and plasma membrane fluidity in CMT1A iPSC-SCPs. Additionally, we identified impaired cholesterol incorporation in the plasma membrane due to altered lipid storage homeostasis in CMT1A iPSC-SCPs, which could be modulated by changing the lipid composition of the cell culture medium. These findings suggest that PMP22 plays a role in regulating the lipid composition of the plasma membrane and lipid storage homeostasis. Targeting lipid metabolism may hold promise as a potential treatment for CMT1A patients. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=162 SRC="FIGDIR/small/535224v1_ufig1.gif" ALT="Figure 1"> View larger version (50K): org.highwire.dtl.DTLVardef@17d4e84org.highwire.dtl.DTLVardef@1adce4forg.highwire.dtl.DTLVardef@1c3e1eborg.highwire.dtl.DTLVardef@12525da_HPS_FORMAT_FIGEXP M_FIG C_FIG HighlightsO_LIPMP22 copy number causes a dose-dependent suppression of cholesterol and lipid biosynthesis in peripheral nerves of CMT1A mice C_LIO_LILipid composition is altered in the sciatic nerves of CMT1A mice and in the membranes of patient derived iPSC-SCPs, with a significant reduction in sphingolipids C_LIO_LICMT1A iPSC-SCPs show decreased plasma membrane lipids required for regulating lipid raft dynamics, membrane fluidity, and membrane order C_LIO_LILipid storage misregulation is key in the pathogenesis of CMT1A C_LI

neuroscience↗

Lack of the glycine alpha 2 receptor impairs reward-motivated behavior and striatal signal integration.

Distinct developmental pathologies, including autism spectrum disorder and schizophrenia, exhibit impaired reward-motivated behavior. Key to proper reward-motivated behavior is dopamine-mediated modulation of striatal activity. The glycine alpha 2 receptor (GlyR2) is the single functionally expressed glycine receptor in adult striatum, and is therefore ideally positioned to modulate striatal behavior and cellular activity. Here, we report excessive appetitive conditioning in male GlyR2 knockout mice. We next show that depletion of GlyR2 enhances dopamine-induced increases in the activity of putative dopamine D1-expressing striatal projection neurons, while not affecting dopamine neuron activity. Moreover, we found that excessive locomotor responses to amphetamine in GlyR2 KO mice correlate with immediate early gene c-fos expression in the dorsal striatum. 3-D modeling revealed an increase in the number of activated cell ensembles in the striatum in response to D-amphetamine in GlyR2 KO mice. Taken together, we show that depletion of GlyR2 impairs reward-motivated behavior and altered striatal signal integration. This sheds important light onto the cellular mechanisms that underlie reward function, and pave the way towards novel therapeutics for the treatment of e.g. schizophrenia and addiction. Significance statementThe glycine receptor alpha 2 has long been studied for its role in development, with expression assumed to decline throughout adulthood in favor of the glycine receptor alpha 1 and 3. Yet, we showed that in the dorsal striatum, the glycine alpha 2 receptor is the only functionally expressed glycine receptor at adult age (Molchanova et al., 2017). In the present work, we show for the first time that the glycine alpha 2 receptor crucially affects striatal cell activity, which lies at the basis of reward-motivated behaviors, and which is impaired in many psychiatric pathologies. Indeed, a link between the mutations in the glycine alpha 2 receptor and autism as well as schizophrenia has been described, but a functional role for the glycine alpha 2 receptor in adult brain structures that are involved in psychiatric pathologies, was never shown before.

neuroscience↗