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Aberrant glial activation and synaptic defects in CaMKIIα-iCre and nestin-Cre transgenic mouse models
Alia O Alia1, Sohee Jeon1, Jelena Popovic1
1The Ken and Ruth Davee Department of Neurology, Northwestern University Feinberg School of Medicine, Chicago, IL, 60611, USA.
Abstract:
Current scientific research is driven by the ability to manipulate gene expression by utilizing the Cre/loxP system in transgenic mouse models. However, artifacts in Cre-driver mouse lines that introduce undesired effects and confound results are increasingly being reported. Here, we show aberrant neuroinflammation and synaptic changes in two widely used Cre-driver mouse models. Neuroinflammation in CaMKIIα-iCre mice was characterized by the activation and proliferation of microglia and astrocytes in synaptic layers of the hippocampus. Increased GFAP and Iba1 levels were observed in hippocampal brain regions of 4-, 8- and 22-month-old CaMKIIα-iCre mice compared to WT littermates. Synaptic changes in NMDAR, AMPAR, PSD95 and phosphorylated CaMKIIα became apparent in 8-month-old CaMKIIα-iCre mice but were not observed in 4-month-old CaMKIIα-iCre mice. Synaptophysin and synaptoporin were unchanged in CaMKIIα-iCre compared to WT mice, suggesting that synaptic alterations may occur in excitatory postsynaptic regions in which iCre is predominantly expressed. Finally, hippocampal volume was reduced in 22-month-old CaMKIIα-iCre mice compared to WT mice. We tested the brains of mice of additional common Cre-driver mouse models for neuroinflammation; the nestin-Cre mouse model showed synaptic changes and astrocytosis marked by increased GFAP+ astrocytes in cortical and hippocampal regions, while the original CaMKIIα-Cre T29-1 strain was comparable to WT mice. The mechanisms underlying abnormal neuroinflammation in nestin-Cre and CaMKIIα-iCre are unknown but may be associated with high levels of Cre expression. Our findings are critical to the scientific community and demonstrate that the correct Cre-driver controls must be included in all studies using these mice.
Insights
Cre-driver mouse models can cause unintended neuroinflammation and synaptic changes, affecting research results. Careful selection of Cre-driver controls is crucial for accurate studies using these transgenic models.
Area of Science:
- Neuroscience
- Genetics
- Immunology
Background:
- The Cre/loxP system is vital for gene expression manipulation in transgenic mouse models.
- Artifacts in Cre-driver lines can lead to confounding experimental results.
- Aberrant neuroinflammation and synaptic changes have been reported in some Cre-driver models.
Purpose of the Study:
- To investigate neuroinflammation and synaptic alterations in commonly used Cre-driver mouse models.
- To identify potential confounding effects of Cre-driver expression on brain physiology.
- To emphasize the importance of appropriate controls in Cre-driver mouse studies.
Main Methods:
- Comparative analysis of CaMKIIα-iCre and nestin-Cre mouse models against wild-type (WT) littermates.
- Histological assessment of microglial and astrocyte activation (GFAP, Iba1) in hippocampal and cortical regions.
- Evaluation of synaptic protein levels (NMDAR, AMPAR, PSD95, phosphorylated CaMKIIα, synaptophysin, synaptoporin).
- Measurement of hippocampal volume in aged mice.
Main Results:
- CaMKIIα-iCre mice exhibited progressive neuroinflammation, synaptic alterations, and reduced hippocampal volume with age.
- Nestin-Cre mice showed synaptic changes and astrocytosis in cortical and hippocampal areas.
- The original CaMKIIα-Cre T29-1 strain did not display these aberrant effects.
- Alterations were linked to synaptic layers and potentially high Cre expression levels.
Conclusions:
- Widely used CaMKIIα-iCre and nestin-Cre mouse models harbor artifacts causing neuroinflammation and synaptic changes.
- These findings necessitate careful consideration of Cre-driver controls in transgenic mouse research.
- The study highlights critical issues that can impact the validity of experimental outcomes.
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