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Mfn2 Ablation in the Adult Mouse Hippocampus and Cortex Causes Neuronal Death
Song Han1,2, Priya Nandy1, Quillan Austria1
1Department of Pathology, Case Western Reserve University, Cleveland, OH 44106, USA.
Abstract:
It is believed that mitochondrial fragmentation cause mitochondrial dysfunction and neuronal deficits in Alzheimer's disease. We recently reported that constitutive knockout of the mitochondria fusion protein mitofusin2 (Mfn2) in the mouse brain causes mitochondrial fragmentation and neurodegeneration in the hippocampus and cortex. Here, we utilize an inducible mouse model to knock out Mfn2 (Mfn2 iKO) in adult mouse hippocampal and cortical neurons to avoid complications due to developmental changes. Electron microscopy shows the mitochondria become swollen with disorganized and degenerated cristae, accompanied by increased oxidative damage 8 weeks after induction, yet the neurons appear normal at the light level. At later timepoints, increased astrocyte and microglia activation appear and nuclei become shrunken and pyknotic. Apoptosis (Terminal deoxynucleotidyl transferase dUTP nick end labeling, TUNEL) begins to occur at 9 weeks, and by 12 weeks, most hippocampal neurons are degenerated, confirmed by loss of NeuN. Prior to the loss of NeuN, aberrant cell-cycle events as marked by proliferating cell nuclear antigen (PCNA) and pHistone3 were evident in some Mfn2 iKO neurons but do not colocalize with TUNEL signals. Thus, this study demonstrated that Mfn2 ablation and mitochondrial fragmentation in adult neurons cause neurodegeneration through oxidative stress and neuroinflammation in vivo via both apoptosis and aberrant cell-cycle-event-dependent cell death pathways.
Insights
Mitochondrial fragmentation from mitofusin2 (Mfn2) knockout causes neurodegeneration in adult neurons. This study reveals Mfn2 loss leads to neuronal death via oxidative stress, neuroinflammation, apoptosis, and cell-cycle dysregulation.
Area of Science:
- Neuroscience
- Cell Biology
- Mitochondrial Biology
Background:
- Mitochondrial fragmentation is linked to Alzheimer's disease and neuronal deficits.
- Mitofusin2 (Mfn2) is crucial for mitochondrial fusion and function.
Purpose of the Study:
- To investigate the role of Mfn2 in adult neuronal degeneration using an inducible knockout model.
- To elucidate the mechanisms underlying Mfn2-deficient neurodegeneration in vivo.
Main Methods:
- Utilized an inducible Mfn2 knockout (Mfn2 iKO) mouse model in adult hippocampal and cortical neurons.
- Employed electron microscopy, TUNEL assay, and immunohistochemistry (NeuN, PCNA, pHistone3) to assess neuronal damage and cell death pathways.
Main Results:
- Mfn2 ablation caused mitochondrial swelling, cristae disorganization, and increased oxidative damage.
- Neuroinflammation (astrocyte and microglia activation) and nuclear changes were observed at later timepoints.
- Apoptosis and aberrant cell-cycle events preceded significant neuronal loss (NeuN), indicating distinct cell death pathways.
Conclusions:
- Mfn2 deficiency in adult neurons triggers neurodegeneration through mitochondrial fragmentation.
- Oxidative stress and neuroinflammation are key mediators of Mfn2-related neuronal death.
- Both apoptosis and cell-cycle-dependent pathways contribute to neurodegeneration following Mfn2 loss.
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