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CRMP2 conditional knockout changes axonal function and ultrastructure of axons in mice corpus callosum
Katarzyna Grycel1, Nick Y Larsen2, Yinghang Feng3
1Center for Molecular Morphology, Section for Stereology and Microscopy, Department of Clinical Medicine, Aarhus University, 8200 Aarhus N, Denmark; Sino-Danish College (SDC), University of Chinese Academy of Sciences, China.
Abstract:
Collapsin response mediator protein 2 (CRMP2) is a member of a protein family, which is highly involved in neurodevelopment, but most of its members become heavily downregulated in adulthood. CRMP2 is an important factor in neuronal polarization, axonal formation and growth cone collapse. The protein remains expressed in adulthood, but is more region specific. CRMP2 is present in adult corpus callosum (CC) and in plastic areas like prefrontal cortex and hippocampus. CRMP2 has been implicated as one of the risk-genes for Schizophrenia (SZ). Here, a CRMP2 conditional knockout (CRMP2-cKO) mouse was used as a model of SZ to investigate how it could affect the white matter and therefore brain connectivity. Multielectrode electrophysiology (MEA) was used to study the function of corpus callosum showing an increase in conduction velocity (CV) measured as Compound Action Potentials (CAPs) in acute brain slices. Light- and electron-microscopy, specifically Serial Block-face Scanning Electron Microscopy (SBF-SEM), methods were used to study the structure of CC in CRMP2-cKO mice. A decrease in CC volume of CRMP2-cKO mice as compared to controls was observed. No differences were found in numbers nor in the size of CC oligodendrocytes (OLs). Similarly, no differences were found in myelin thickness or in node of Ranvier (NR) structure. In contrast, abnormally smaller axons were measured in the CRMP2-cKO mice. Using these state-of-the-art methods it was possible to shed light on specific parts of the dysconnectivity aspect of deletion of CRMP2 related to SZ and add details to previous findings helping further understanding the disease. This paper substantiates the white matter changes in the absence of CRMP2 and ties it to the role it plays in this complex disorder.
Insights
Collapsin response mediator protein 2 (CRMP2) deletion in mice alters white matter, specifically reducing corpus callosum volume and axon size. These CRMP2 changes may contribute to schizophrenia-related brain connectivity issues.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Collapsin response mediator protein 2 (CRMP2) is crucial for neurodevelopment and neuronal structure.
- CRMP2 expression persists in adult brain regions like the corpus callosum (CC) and is linked to schizophrenia (SZ).
- CRMP2 dysfunction is implicated in brain connectivity disorders.
Purpose of the Study:
- To investigate the impact of CRMP2 deletion on white matter structure and function in a mouse model relevant to SZ.
- To elucidate the role of CRMP2 in corpus callosum (CC) integrity and brain connectivity.
Main Methods:
- Utilized a CRMP2 conditional knockout (CRMP2-cKO) mouse model.
- Employed multielectrode electrophysiology (MEA) to assess CC function (conduction velocity).
- Applied light and Serial Block-face Scanning Electron Microscopy (SBF-SEM) for detailed CC structural analysis.
Main Results:
- CRMP2-cKO mice exhibited increased CC conduction velocity (CV) and compound action potential (CAP) speeds.
- A significant reduction in CC volume was observed in CRMP2-cKO mice.
- Abnormally smaller axons were found in CRMP2-cKO mice, despite no changes in oligodendrocyte numbers, size, myelin thickness, or node of Ranvier structure.
Conclusions:
- CRMP2 deficiency leads to white matter alterations, including smaller axons and altered CC volume.
- These structural changes in CRMP2-cKO mice correlate with functional changes in CC conductivity.
- Findings provide insights into the role of CRMP2 in white matter integrity and its potential contribution to schizophrenia pathophysiology.
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