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Updated: Nov 2, 2025

Generation of Human Brain Organoids for Mitochondrial Disease Modeling
Published on: June 21, 2021
Induced pluripotent stem cell-derived motor neurons of CMT type 2 patients reveal progressive mitochondrial
Jonas Van Lent1,2, Peter Verstraelen3, Bob Asselbergh4,5
1Peripheral Neuropathy Research Group, Department of Biomedical Sciences, University of Antwerp, Antwerp, 2610, Belgium.
Abstract:
Axonal Charcot-Marie-Tooth neuropathies (CMT type 2) are caused by inherited mutations in various genes functioning in different pathways. The types of genes and multiplicity of mutations reflect the clinical and genetic heterogeneity in CMT2 disease, which complicates its diagnosis and has inhibited the development of therapies. Here, we used CMT2 patient-derived pluripotent stem cells (iPSCs) to identify common hallmarks of axonal degeneration shared by different CMT2 subtypes. We compared the cellular phenotypes of neurons differentiated from CMT2 patient iPSCs with those from healthy controls and a CRISPR/Cas9-corrected isogenic line. Our results demonstrated neurite network alterations along with extracellular electrophysiological abnormalities in the differentiated motor neurons. Progressive deficits in mitochondrial and lysosomal trafficking, as well as in mitochondrial morphology, were observed in all CMT2 patient lines. Differentiation of the same CMT2 iPSC lines into peripheral sensory neurons only gave rise to cellular phenotypes in subtypes with sensory involvement, supporting the notion that some gene mutations predominantly affect motor neurons. We revealed a common mitochondrial dysfunction in CMT2-derived motor neurons, supported by alterations in the expression pattern and oxidative phosphorylation, which could be recapitulated in the sciatic nerve tissue of a symptomatic mouse model. Inhibition of a dual leucine zipper kinase could partially ameliorate the mitochondrial disease phenotypes in CMT2 subtypes. Altogether, our data reveal shared cellular phenotypes across different CMT2 subtypes and suggests that targeting such common pathomechanisms could allow the development of a uniform treatment for CMT2.
Insights
Researchers identified common cellular hallmarks in axonal Charcot-Marie-Tooth disease (CMT2) using patient stem cells. Targeting these shared mitochondrial dysfunctions may lead to a unified treatment for CMT2 patients.
Area of Science:
- Neuroscience
- Genetics
- Cell Biology
Background:
- Axonal Charcot-Marie-Tooth (CMT type 2) neuropathies present significant genetic and clinical heterogeneity.
- This complexity complicates diagnosis and hinders therapeutic development for CMT2.
Purpose of the Study:
- To identify shared cellular hallmarks of axonal degeneration across diverse CMT type 2 subtypes.
- To investigate common pathomechanisms using patient-derived induced pluripotent stem cells (iPSCs).
Main Methods:
- Differentiated CMT2 patient iPSCs into motor and sensory neurons for phenotypic comparison.
- Utilized CRISPR/Cas9-corrected isogenic lines and healthy controls for validation.
- Analyzed neurite networks, electrophysiology, mitochondrial/lysosomal trafficking, and mitochondrial morphology.
Main Results:
- All CMT2 patient-derived neurons exhibited neurite network alterations and electrophysiological abnormalities.
- Progressive deficits in mitochondrial and lysosomal trafficking, and altered mitochondrial morphology were consistent across CMT2 subtypes.
- Common mitochondrial dysfunction, including altered oxidative phosphorylation, was identified in CMT2 motor neurons.
Conclusions:
- Shared cellular phenotypes, particularly mitochondrial dysfunction, exist across different CMT type 2 subtypes.
- Targeting these common pathomechanisms offers a potential strategy for developing a uniform CMT2 treatment.
- Findings suggest that dual leucine zipper kinase inhibition may partially ameliorate CMT2-related mitochondrial defects.
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