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Updated: Jun 11, 2026

Modeling Charcot-Marie-Tooth Disease In Vitro by Transfecting Mouse Primary Motoneurons
Published on: January 7, 2019
Attenuation of MCP-1/CCL2 expression ameliorates neuropathy in a mouse model for Charcot-Marie-Tooth 1X
Janos Groh1, Kristina Heinl, Bianca Kohl
1Department of Neurology, University of Wuerzburg, Wuerzburg, Germany.
Abstract:
The chemokine monocyte chemoattractant protein-1 (MCP-1/CCL2) has been previously shown to be an important mediator of macrophage-related neural damage in models of two distinct inherited neuropathies, Charcot-Marie-Tooth (CMT) 1A and 1B. In mice deficient in the gap junction protein connexin 32 (Cx32def), an established model for the X-chromosome-linked dominant form of CMT (CMT1X), we investigated the role of the chemokine in macrophage immigration and neural damage by crossbreeding the Cx32def mice with MCP-1 knockout mutants. In Cx32def mutants typically expressing increased levels of MCP-1, macrophage numbers were strongly elevated, caused by an MCP-1-mediated influx of haematogenous macrophages. Curiously, the complete genetic deletion of MCP-1 did not cause reduced macrophage numbers in the nerves due to compensatory proliferation of resident macrophages. In contrast, and as already seen in other CMT models, heterozygous deletion of MCP-1 led to reduced numbers of phagocytosing macrophages and an alleviation of demyelination. Whereas alleviated demyelination was transient, axonal damage was persistently improved and even robust axonal sprouting was detectable at 12 months. Other axon-related features were alleviated electrophysiological parameters, reduced muscle denervation and atrophy, and increased muscle strength. Similar to models for CMT1A and CMT1B, we identified MEK-ERK signalling as mediating MCP-1 expression in Cx32-deficient Schwann cells. Blocking this pathway by the inhibitor CI-1040 caused reduced MCP-1 expression, attenuation of macrophage increase and amelioration of myelin- and axon-related alterations. Thus, attenuation of MCP-1 upregulation by inhibiting ERK phosphorylation might be a promising approach to treat CMT1X and other so far untreatable inherited peripheral neuropathies in humans.
Insights
Monocyte chemoattractant protein-1 (MCP-1) drives macrophage infiltration and nerve damage in Charcot-Marie-Tooth type 1X (CMT1X) neuropathy. Inhibiting MCP-1 signaling shows promise for treating CMT1X and other inherited peripheral neuropathies.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Monocyte chemoattractant protein-1 (MCP-1/CCL2) mediates macrophage-related neural damage in Charcot-Marie-Tooth (CMT) 1A and 1B.
- Connexin 32 deficient (Cx32def) mice model X-chromosome-linked dominant CMT (CMT1X).
Purpose of the Study:
- Investigate MCP-1's role in macrophage immigration and neural damage in a CMT1X mouse model.
- Evaluate therapeutic potential of targeting MCP-1 signaling.
Main Methods:
- Crossbreeding Cx32def mice with MCP-1 knockout mutants.
- Analyzing macrophage infiltration, demyelination, and axonal damage.
- Investigating MEK-ERK signaling pathway and its inhibition with CI-1040.
Main Results:
- MCP-1 upregulation in Cx32def mice increased macrophage numbers via haematogenous influx.
- Complete MCP-1 deletion did not reduce macrophages due to compensatory proliferation.
- Heterozygous MCP-1 deletion reduced phagocytosing macrophages, transiently alleviating demyelination.
- Persistent axonal damage improvement, axonal sprouting, and improved electrophysiology observed.
- MEK-ERK signaling mediated MCP-1 expression in Schwann cells.
- CI-1040 treatment reduced MCP-1, macrophage infiltration, and nerve damage.
Conclusions:
- MCP-1 upregulation contributes to macrophage-driven nerve damage in CMT1X.
- Targeting MEK-ERK signaling to attenuate MCP-1 is a potential therapeutic strategy for CMT1X and other inherited peripheral neuropathies.
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