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PMP22 duplication dysregulates lipid homeostasis and plasma membrane organization in developing human Schwann cells. | LitMetric

AI Article Synopsis

  • Charcot-Marie-Tooth disease type 1A (CMT1A) is caused by a duplication of the PMP22 gene on chromosome 17, leading to disrupted myelination in peripheral nerves.
  • Through studies on CMT1A mouse models and patient-derived stem cells, researchers found significant downregulation of cholesterol and lipid metabolism, as well as disturbances in plasma membrane components and cell signaling pathways.
  • Interventions that stimulate autophagy and lipolysis showed potential for rescuing the negative effects of PMP22 duplication, suggesting that targeting lipid metabolism could be a therapeutic strategy for CMT1A.

Article Abstract

Charcot-Marie-Tooth disease type 1A (CMT1A) is the most common inherited peripheral neuropathy caused by a 1.5 Mb tandem duplication of chromosome 17 harbouring the PMP22 gene. This dose-dependent overexpression of PMP22 results in disrupted Schwann cell myelination of peripheral nerves. To obtain better insights into the underlying pathogenic mechanisms in CMT1A, we investigated the role of PMP22 duplication in cellular homeostasis in CMT1A mouse models and in patient-derived induced pluripotent stem cells differentiated into Schwann cell precursors (iPSC-SCPs). We performed lipidomic profiling and bulk RNA sequencing (RNA-seq) on sciatic nerves of two developing CMT1A mouse models and on CMT1A patient-derived iPSC-SCPs. For the sciatic nerves of the CMT1A mice, cholesterol and lipid metabolism was downregulated in a dose-dependent manner throughout development. For the CMT1A iPSC-SCPs, transcriptional analysis unveiled a strong suppression of genes related to autophagy and lipid metabolism. Gene ontology enrichment analysis identified disturbances in pathways related to plasma membrane components and cell receptor signalling. Lipidomic analysis confirmed the severe dysregulation in plasma membrane lipids, particularly sphingolipids, in CMT1A iPSC-SCPs. Furthermore, we identified reduced lipid raft dynamics, disturbed plasma membrane fluidity and impaired cholesterol incorporation and storage, all of which could result from altered lipid storage homeostasis in the patient-derived CMT1A iPSC-SCPs. Importantly, this phenotype could be rescued by stimulating autophagy and lipolysis. We conclude that PMP22 duplication disturbs intracellular lipid storage and leads to a more disordered plasma membrane owing to an alteration in the lipid composition, which might ultimately lead to impaired axo-glial interactions. Moreover, targeting lipid handling and metabolism could hold promise for the treatment of patients with CMT1A.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11370802PMC
http://dx.doi.org/10.1093/brain/awae158DOI Listing

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