Related Experiment Video
Updated: Jul 18, 2026

Characterization of Neuromuscular Junctions in Mice by Combined Confocal and Super-Resolution Microscopy
Published on: December 8, 2021
Developmental abnormalities in the nerves of peripheral myelin protein 22-deficient mice
Stephanie A Amici1, William A Dunn, Lucia Notterpek
1Department of Neuroscience, College of Medicine, McKnight Brain Institute, University of Florida, Gainesville, Florida 32610, USA.
Abstract:
Peripheral myelin protein 22 (PMP22) is a tetraspan glycoprotein whose misexpression is associated with a family of hereditary peripheral neuropathies. In a recent report, we have characterized a novel PMP22-deficient mouse model in which the first two coding exons were replaced by the lacZ reporter. To investigate further the myelin abnormalities in the absence of PMP22, sciatic nerves and dorsal root ganglion (DRG) neuron explant cultures from PMP22-deficient mice were studied at various stages of myelination. Throughout the first 3 months of postnatal development, myelin protein and beta4 integrin levels are dramatically reduced, whereas p75 and beta1 integrin remain elevated. By immunostaining, the distributions of several glial proteins, including beta4 integrin, the voltage-gated potassium channel Kv1.1, and E-cadherin, are altered. Schwann cells from PMP22-deficient mice are able to produce limited amounts of myelin in DRG explant cultures, yet the internodal segments are dramatically fewer and shorter. The comparison of PMP22-deficient mice with other PMP22 mutant models reveals that the decrease in beta4 integrin is specific to an absence of PMP22. Furthermore, whereas lysosome-associated membrane protein 1 and ubiquitin are notably up-regulated in nerves of PMP22-deficient mice, heat shock protein 70 levels remain constant or decrease compared with wild-type or PMP22 mutant samples. Together these results support a role for PMP22 in the early events of peripheral nerve myelination. Additionally, although myelin abnormalities are a commonality among PMP22 neuropathic models, the underlying subcellular mechanisms are distinct and depend on the specific genetic abnormality.
Insights
Peripheral myelin protein 22 (PMP22) is crucial for peripheral nerve myelination. Its absence in a novel mouse model leads to reduced myelin proteins and altered glial protein distribution, impacting nerve structure.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Peripheral myelin protein 22 (PMP22) is a key glycoprotein in peripheral nerve myelination.
- PMP22 misexpression is linked to hereditary peripheral neuropathies.
- A novel PMP22-deficient mouse model was created using lacZ reporter gene replacement.
Purpose of the Study:
- Investigate myelin abnormalities in PMP22-deficient mice.
- Characterize the role of PMP22 in peripheral nerve development.
- Compare PMP22 deficiency with other PMP22 mutant models.
Main Methods:
- Studied sciatic nerves and dorsal root ganglion (DRG) neuron explant cultures from PMP22-deficient mice.
- Analyzed protein levels (myelin proteins, beta4 integrin, p75, beta1 integrin, Kv1.1, E-cadherin, LAMP1, ubiquitin, HSP70) via immunostaining and Western blotting.
- Assessed myelination capacity in DRG explant cultures.
Main Results:
- PMP22 deficiency caused reduced myelin protein and beta4 integrin levels, with elevated p75 and beta1 integrin.
- Altered distribution of glial proteins (beta4 integrin, Kv1.1, E-cadherin) was observed.
- Schwann cells produced limited, shorter myelin segments in vitro; beta4 integrin decrease was specific to PMP22 absence.
Conclusions:
- PMP22 plays a significant role in the early stages of peripheral nerve myelination.
- Myelin abnormalities in PMP22 neuropathies have distinct underlying subcellular mechanisms.
- The PMP22-deficient mouse model provides insights into PMP22 function and associated neuropathies.

