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Updated: May 30, 2026

Gene-environment Interaction Models to Unmask Susceptibility Mechanisms in Parkinson's Disease
Published on: January 7, 2014
Ability to delay neuropathological events associated with astrocytic MAO-B increase in a Parkinsonian mouse model:
Almas Siddiqui1, Jyothi K Mallajosyula, Anand Rane
1Buck Institute for Age Research, Novato, CA 94945, USA.
Abstract:
We previously demonstrated that elevation of astrocytic monoamine oxidase B (MAO-B) levels in adoxycycline (dox)-inducible transgenic mouse model following 14 days of dox induction results in several neuropathologic features similar to those observed in the Parkinsonian midbrain (Mallajosyula et al., 2008).These include a specific, selective and progressive loss of dopaminergic neurons of the substantia nigra (SN),selective decreases in mitochondrial complex I (CI) activity and increased oxidative stress. Here, we report that the temporal sequence of events following MAO-B elevation initially involves increased oxidative stress followed by CI inhibition and finally neurodegeneration. Furthermore, dox removal (DR) at days 3 and 5 of MAO-B induction was sufficient to arrest further increases in oxidative stress as well as subsequent neurodegenerative events. In order to assess the contribution of MAO-B-induced oxidative stress to later events, we compared the impact of DR which reverses the MAO-B increase with treatment of animals with the lipophilic antioxidant compound EUK-189. EUK-189 was found to be as effective as DR in halting downstream CI inhibition and also significantly attenuated SN DA cell loss as a result of astrocytic MAO-B induction. This suggests that MAO-B-mediated ROS contributes to neuropathology associated with this model and that antioxidant treatment can arrest further progression of dopaminergic cell death. This has implications for early intervention therapies.
Insights
Elevating astrocytic monoamine oxidase B (MAO-B) causes Parkinsonian-like neurodegeneration. Halting MAO-B or using antioxidants like EUK-189 can prevent further oxidative stress and dopaminergic cell loss.
Area of Science:
- Neuroscience
- Biochemistry
- Pathology
Background:
- Astrocytic monoamine oxidase B (MAO-B) elevation in a doxycycline-inducible mouse model mimics Parkinsonian midbrain neuropathology.
- Previous work established MAO-B induction leads to dopaminergic neuron loss, mitochondrial complex I (CI) inhibition, and oxidative stress.
Purpose of the Study:
- To elucidate the temporal sequence of neuropathological events following astrocytic MAO-B elevation.
- To investigate the efficacy of reversing MAO-B induction and antioxidant treatment in mitigating these events.
Main Methods:
- Utilized a doxycycline-inducible transgenic mouse model with elevated astrocytic MAO-B.
- Administered doxycycline withdrawal (DR) at different time points and treated with the antioxidant EUK-189.
- Assessed neuropathological features including dopaminergic neuron loss, CI activity, and oxidative stress.
Main Results:
- MAO-B elevation initially increases oxidative stress, followed by CI inhibition and neurodegeneration.
- Doxycycline removal at days 3 and 5 halted oxidative stress and neurodegeneration.
- EUK-189 treatment was as effective as DR in preventing CI inhibition and reducing dopaminergic cell loss.
Conclusions:
- MAO-B-mediated reactive oxygen species (ROS) significantly contribute to neuropathology in this Parkinson's disease model.
- Antioxidant therapy can arrest the progression of dopaminergic cell death, suggesting potential for early intervention strategies.
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