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Engineering Oncogenic Heterozygous Gain-of-Function Mutations in Human Hematopoietic Stem and Progenitor Cells
Published on: March 10, 2023
The intellectual disability-associated CAMK2G p.Arg292Pro mutation acts as a pathogenic gain-of-function
Martina Proietti Onori1,2, Balwina Koopal1, David B Everman3
1Department of Neuroscience, Erasmus University Medical Center, Rotterdam, the Netherlands.
Abstract:
The abundantly expressed calcium/calmodulin-dependent protein kinase II (CAMK2), alpha (CAMK2A), and beta (CAMK2B) isoforms are essential for learning and memory formation. Recently, a de novo candidate mutation (p.Arg292Pro) in the gamma isoform of CAMK2 (CAMK2G) was identified in a patient with severe intellectual disability (ID), but the mechanism(s) by which this mutation causes ID is unknown. Here, we identified a second, unrelated individual, with a de novo CAMK2G p.Arg292Pro mutation, and used in vivo and in vitro assays to assess the impact of this mutation on CAMK2G and neuronal function. We found that knockdown of CAMK2G results in inappropriate precocious neuronal maturation. We further found that the CAMK2G p.Arg292Pro mutation acts as a highly pathogenic gain-of-function mutation, leading to increased phosphotransferase activity and impaired neuronal maturation as well as impaired targeting of the nuclear CAMK2G isoform. Silencing the catalytic site of the CAMK2G p.Arg292Pro protein reversed the pathogenic effect of the p.Arg292Pro mutation on neuronal maturation, without rescuing its nuclear targeting. Taken together, our results reveal an indispensable function of CAMK2G in neurodevelopment and indicate that the CAMK2G p.Arg292Pro protein acts as a pathogenic gain-of-function mutation, through constitutive activity toward cytosolic targets, rather than impaired targeting to the nucleus.
Insights
A mutation in calcium/calmodulin-dependent protein kinase II gamma (CAMK2G) causes intellectual disability by increasing its activity and impairing neuronal maturation. This gain-of-function mutation affects cytosolic targets, not nuclear localization.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Calcium/calmodulin-dependent protein kinase II (CAMK2) isoforms, particularly CAMK2A and CAMK2B, are crucial for learning and memory.
- A de novo mutation (p.Arg292Pro) in CAMK2G was previously linked to severe intellectual disability (ID), but its mechanism remained unclear.
Observation:
- Knockdown of CAMK2G led to premature neuronal maturation.
- A second individual with the de novo CAMK2G p.Arg292Pro mutation was identified.
Findings:
- The CAMK2G p.Arg292Pro mutation functions as a pathogenic gain-of-function, increasing phosphotransferase activity.
- This mutation impairs neuronal maturation and the nuclear targeting of CAMK2G.
- Disabling the catalytic site reversed the maturation defect but not the nuclear targeting issue.
Implications:
- CAMK2G plays an essential role in neurodevelopment.
- The p.Arg292Pro mutation causes ID through constitutive activity on cytosolic targets, not impaired nuclear localization.
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