Single-cell RNA-seq uncovers novel metabolic functions of Schwann cells beyond myelination.
Stephanie A EidMohamed H NoureldeinBhumsoo KimLucy M HinderFaye E MendelsonJohn M HayesJunguk HurEva L FeldmanPublished in: Journal of neurochemistry (2023)
Schwann cells (SCs) support peripheral nerves under homeostatic conditions, independent of myelination, and contribute to damage in prediabetic peripheral neuropathy (PN). Here, we used single-cell RNA sequencing to characterize the transcriptional profiles and intercellular communication of SCs in the nerve microenvironment using the high-fat diet-fed mouse, which mimics human prediabetes and neuropathy. We identified four major SC clusters, myelinating, nonmyelinating, immature, and repair in healthy and neuropathic nerves, in addition to a distinct cluster of nerve macrophages. Myelinating SCs acquired a unique transcriptional profile, beyond myelination, in response to metabolic stress. Mapping SC intercellular communication identified a shift in communication, centered on immune response and trophic support pathways, which primarily impacted nonmyelinating SCs. Validation analyses revealed that neuropathic SCs become pro-inflammatory and insulin resistant under prediabetic conditions. Overall, our study offers a unique resource for interrogating SC function, communication, and signaling in nerve pathophysiology to help inform SC-specific therapies.
Keyphrases
- single cell
- rna seq
- high fat diet
- peripheral nerve
- induced apoptosis
- immune response
- high throughput
- cell cycle arrest
- adipose tissue
- gene expression
- endothelial cells
- oxidative stress
- type diabetes
- dendritic cells
- signaling pathway
- high resolution
- metabolic syndrome
- endoplasmic reticulum stress
- induced pluripotent stem cells
- cell death
- cell adhesion
- pluripotent stem cells
- heat shock
- weight loss