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Updated: Feb 6, 2026

Engineering Oncogenic Heterozygous Gain-of-Function Mutations in Human Hematopoietic Stem and Progenitor Cells
Published on: March 10, 2023
The heterozygous R155C VCP mutation: Toxic in humans! Harmless in mice?
Christoph S Clemen1, Lilli Winter2, Karl-Heinz Strucksberg3
1Department of Neurology, Heimer Institute for Muscle Research, University Hospital Bergmannsheil, Ruhr-University Bochum, 44789, Bochum, Germany; Center for Biochemistry, Institute of Biochemistry I, Medical Faculty, University of Cologne, 50931, Cologne, Germany.
Abstract:
Heterozygous missense mutations in the human VCP gene cause inclusion body myopathy associated with Paget disease of bone and fronto-temporal dementia (IBMPFD) and amyotrophic lateral sclerosis (ALS). The exact molecular mechanisms by which VCP mutations cause disease manifestation in different tissues are incompletely understood. In the present study, we report the comprehensive analysis of a newly generated R155C VCP knock-in mouse model, which expresses the ortholog of the second most frequently occurring human pathogenic VCP mutation. Heterozygous R155C VCP knock-in mice showed decreased plasma lactate, serum albumin and total protein concentrations, platelet numbers, and liver to body weight ratios, and increased oxygen consumption and CD8+/Ly6C + T-cell fractions, but none of the typical human IBMPFD or ALS pathologies. Breeding of heterozygous mice did not yield in the generation of homozygous R155C VCP knock-in animals. Immunoblotting showed identical total VCP protein levels in human IBMPFD and murine R155C VCP knock-in tissues as compared to wild-type controls. However, while in human IBMPFD skeletal muscle tissue 70% of the total VCP mRNA was derived from the mutant allele, in R155C VCP knock-in mice only 5% and 7% mutant mRNA were detected in skeletal muscle and brain tissue, respectively. The lack of any obvious IBMPFD or ALS pathology could thus be a consequence of the very low expression of mutant VCP. We conclude that the increased and decreased fractions of the R155C mutant VCP mRNA in man and mice, respectively, are due to missense mutation-induced, divergent alterations in the biological half-life of the human and murine mutant mRNAs. Furthermore, our work suggests that therapy approaches lowering the expression of the mutant VCP mRNA below a critical threshold may ameliorate the intrinsic disease pathology.
Insights
VCP gene mutations cause IBMPFD and ALS. A new mouse model showed low mutant VCP mRNA, lacking disease signs, suggesting therapies targeting mutant VCP mRNA levels may help.
Area of Science:
- Genetics
- Molecular Biology
- Neuroscience
Background:
- Heterozygous missense mutations in the VCP gene are linked to IBMPFD and ALS.
- The precise molecular mechanisms driving VCP-related diseases remain unclear.
Purpose of the Study:
- To analyze a novel R155C VCP knock-in mouse model to understand VCP mutation effects.
- To investigate the molecular basis of IBMPFD and ALS pathogenesis.
Main Methods:
- Generated and analyzed R155C VCP knock-in mice.
- Performed immunoblotting and mRNA expression analysis in various tissues.
- Assessed physiological and pathological phenotypes.
Main Results:
- R155C VCP knock-in mice exhibited altered physiological parameters but lacked typical IBMPFD/ALS pathologies.
- Homozygous knock-in mice were not generated.
- Significantly lower mutant VCP mRNA levels were observed in mouse tissues compared to human IBMPFD samples.
Conclusions:
- Low expression of mutant VCP mRNA in mice may explain the absence of disease phenotypes.
- Differential mRNA half-life between human and mouse contributes to varying mutant VCP expression.
- Therapeutic strategies reducing mutant VCP mRNA below a threshold could potentially treat VCP-related disorders.
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