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Updated: Jan 25, 2026

Monitoring Neuronal Survival via Longitudinal Fluorescence Microscopy
Published on: January 19, 2019
CAMK2-Dependent Signaling in Neurons Is Essential for Survival
Martijn J Kool1, Martina Proietti Onori1,2, Nils Z Borgesius1
1Department of Neuroscience.
Abstract:
Ca2+/calmodulin-dependent protein kinase II (CAMK2) is a key player in synaptic plasticity and memory formation. Mutations in Camk2a or Camk2b cause intellectual disability in humans, and severe plasticity and learning deficits in mice, indicating unique functions for each isoform. However, considering the high homology between CAMK2A and CAMK2B, it is conceivable that for critical functions, one isoform compensates for the absence of the other, and that the full functional spectrum of neuronal CAMK2 remains to be revealed.Here we show that germline as well as adult deletion of both CAMK2 isoforms in male or female mice is lethal. Moreover, Ca2+-dependent activity as well as autonomous activity of CAMK2 is essential for survival. Loss of both CAMK2 isoforms abolished LTP, whereas synaptic transmission remained intact. The double-mutants showed no gross morphological changes of the brain, and in contrast to the long-considered role for CAMK2 in the structural organization of the postsynaptic density (PSD), deletion of both CAMK2 isoforms did not affect the biochemical composition of the PSD. Together, these results reveal an essential role for CAMK2 signaling in early postnatal development as well as the mature brain, and indicate that the full spectrum of CAMK2 requirements cannot be revealed in the single mutants because of partial overlapping functions of CAMK2A and CAMK2B.SIGNIFICANCE STATEMENT CAMK2A and CAMK2B have been studied for over 30 years for their role in neuronal functioning. However, most studies were performed using single knock-out mice. Because the two isoforms show high homology with respect to structure and function, it is likely that some redundancy exists between the two isoforms, meaning that for critical functions CAMK2B compensates for the absence of CAMK2A and vice versa, leaving these functions to uncover. In this study, we generated Camk2a/Camk2b double-mutant mice, and observed that loss of CAMK2, as well as the loss of Ca2+-dependent and Ca2+-independent activity of CAMK2 is lethal. These results indicate that despite 30 years of research the full spectrum of CAMK2 functioning in neurons remains to be unraveled.
Insights
Deleting both Ca2+/calmodulin-dependent protein kinase II (CAMK2) isoforms is lethal, revealing essential roles for both Ca2+-dependent and autonomous CAMK2 activity in survival and synaptic plasticity.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Ca2+/calmodulin-dependent protein kinase II (CAMK2) is crucial for synaptic plasticity and memory.
- Mutations in CAMK2A or CAMK2B cause intellectual disability, but isoform-specific functions remain unclear due to potential redundancy.
Purpose of the Study:
- To investigate the essential functions of CAMK2 isoforms by generating double knockout mice.
- To determine the necessity of Ca2+-dependent and autonomous CAMK2 activity for survival and neuronal function.
Main Methods:
- Generation of germline and adult double knockout mice lacking both Camk2a and Camk2b.
- Assessment of CAMK2 activity (Ca2+-dependent and autonomous).
- Analysis of long-term potentiation (LTP), synaptic transmission, and postsynaptic density (PSD) composition.
Main Results:
- Complete deletion of both CAMK2 isoforms (Camk2a/Camk2b) resulted in lethality.
- Both Ca2+-dependent and autonomous CAMK2 activity were essential for survival.
- Loss of both isoforms abolished LTP but did not affect synaptic transmission or PSD composition.
- No gross morphological brain changes were observed in double mutants.
Conclusions:
- CAMK2 signaling is vital for early postnatal development and mature brain function.
- The overlapping functions of CAMK2A and CAMK2B mask critical roles when only one isoform is absent.
- The full spectrum of CAMK2's essential functions in neurons requires the presence of both isoforms.
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