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Unique nuclear vacuoles in the motor neurons of conditional ADAR2-knockout mice
Shoichi Sasaki1, Takenari Yamashita2, Takuto Hideyama3
1Department of Neurology, Tokyo Women's Medical University, 8-1 Kawada-cho, Shinjuku-ku, Tokyo 162-8666, Japan.
Abstract:
A reduction in adenosine deaminase acting on RNA 2 (ADAR2) activity causes the death of spinal motor neurons specifically via the GluA2 Q/R site-RNA editing failure in sporadic amyotrophic lateral sclerosis (ALS). We studied, over time, the spinal cords of ADAR2-knockout mice, which are the mechanistic model mice for sporadic ALS, using homozygous ADAR2(flox/flox)/VAChT-Cre.Fast (AR2), homozygous ADAR2(flox/flox)/VAChT-Cre.Slow (AR2Slow), and heterozygous ADAR2(flox/+)/VAChT-Cre.Fast (AR2H) mice. The conditional ADAR2-knockout mice were divided into 3 groups by stage: presymptomatic (AR2H mice), early symptomatic (AR2 mice, AR2H mice) and late symptomatic (AR2Slow mice). Light-microscopically, some motor neurons in AR2 and AR2H mice (presymptomatic) showed simple neuronal atrophy and astrogliosis, and AR2H (early symptomatic) and AR2Slow mice often showed vacuoles predominantly in motor neurons. The number of vacuole-bearing anterior horn neurons decreased with the loss of anterior horn neurons in AR2H mice after 40 weeks of age. Electron-microscopically, in AR2 mice, while the cytoplasm of normal-looking motor neurons was almost always normal-appearing, the interior of dendrites was frequently loose and disorganized. In AR2H and AR2Slow mice, large vacuoles without a limiting membrane were observed in the anterior horns, preferentially in the nuclei of motor neurons, astrocytes and oligodendrocytes. Nuclear vacuoles were not observed in AR2res (ADAR2(flox/flox)/VAChT-Cre.Fast/GluR-B(R/R)) mice, in which motor neurons express edited GluA2 in the absence of ADAR2. These findings suggest that ADAR2-reduction is associated with progressive deterioration of nuclear architecture, resulting in vacuolated nuclei due to a Ca(2+)-permeable AMPA receptor-mediated mechanism.
Insights
Reduced adenosine deaminase acting on RNA 2 (ADAR2) activity leads to spinal motor neuron death in sporadic amyotrophic lateral sclerosis (ALS). This study reveals ADAR2 reduction causes progressive nuclear deterioration and vacuolation in motor neurons, linked to AMPA receptor mechanisms.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Sporadic amyotrophic lateral sclerosis (ALS) is linked to reduced adenosine deaminase acting on RNA 2 (ADAR2) activity.
- ADAR2 deficiency causes motor neuron death via GluA2 Q/R site-RNA editing failure.
Purpose of the Study:
- To investigate the temporal effects of ADAR2 reduction on spinal cord pathology in a mouse model of sporadic ALS.
- To elucidate the cellular mechanisms underlying motor neuron degeneration in the absence of ADAR2.
Main Methods:
- Utilized conditional ADAR2-knockout mice (AR2, AR2Slow, AR2H) at different disease stages (presymptomatic, early symptomatic, late symptomatic).
- Performed light and electron microscopy to examine spinal cord tissue, focusing on motor neurons, astrocytes, and oligodendrocytes.
- Investigated nuclear morphology and vacuole formation in relation to ADAR2 levels and GluA2 editing status.
Main Results:
- Presymptomatic and early symptomatic mice showed neuronal atrophy, astrogliosis, and vacuole formation in motor neurons.
- Late symptomatic mice exhibited prominent nuclear vacuoles in motor neurons, astrocytes, and oligodendrocytes.
- Nuclear vacuoles were absent in rescue mice expressing edited GluA2 without ADAR2, implicating a specific mechanism.
Conclusions:
- ADAR2 reduction is associated with progressive deterioration of nuclear architecture in the spinal cord.
- Vacuolated nuclei in motor neurons are a consequence of ADAR2 deficiency, potentially mediated by Ca(2+)-permeable AMPA receptor activity.
- Findings highlight a novel mechanism of neurodegeneration in ALS linked to RNA editing and nuclear integrity.

