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Published on: January 7, 2014
Quantification of MPTP-induced dopaminergic neurodegeneration in the mouse substantia nigra by laser capture
Diane Stephenson1, Andres Ramirez, Jill Long
1Pfizer Global Research and Development, Worldwide Safety Sciences and CNS Discovery, MS8274-1348, Eastern Point Road, Groton, CT 06340, United States. Diane.t.Stephenson@pfizer.com
Abstract:
The neurotoxin MPTP is widely used to cause damage to the dopaminergic system in rodents and non-human primates to model various aspects of Parkinson's disease. In mice, depletion of striatal dopamine is the commonly used endpoint to assess neuronal damage. However, it has proved technically challenging to quantify dopaminergic cell bodies as an index of neuronal integrity. To meet this challenge, we applied laser pressure catapult microdissection (LCM) of the substantia nigra in combination with quantitative Western blot to provide an index of dopamine neurodegeneration in mice treated with MPTP. Seven days following initiation of MPTP treatment, striatal dopamine depletion was maximal and there was histological evidence of neuronal degeneration in the substantia nigra. To index the integrity of dopamine cell bodies, tyrosine hydroxylase (TH) and beta-actin were quantified by Western blot in LCM extracts. In untreated mice, TH was detected in LCM extracts of substantia nigra but was undetectable in equivalently sized extracts of cortex from the same animals. In MPTP-treated mice, there was a significant 70% reduction in TH relative to beta-actin in LCM extracts as compared to vehicle-injected controls. This reduction corresponded to decreases in striatal dopamine and loss of immunocytochemically detected TH but not beta-actin in the substantia nigra (SN). Thus, this method provides a quantitative means to measure dopamine neuron toxicity in the substantia nigra and, as such has potential application in evaluating regimens that may be neuroprotective or neurorestorative for dopaminergic neurons.
Insights
Researchers developed a new method using laser pressure catapult microdissection and Western blot to quantify dopamine neuron damage in mice, aiding Parkinson's disease research.
Area of Science:
- Neuroscience
- Pharmacology
- Biochemistry
Background:
- MPTP neurotoxin models Parkinson's disease by damaging the dopaminergic system.
- Quantifying dopaminergic cell bodies is crucial but challenging for assessing neuronal integrity.
- Striatal dopamine depletion is a common but indirect measure of neuronal damage.
Purpose of the Study:
- To develop and validate a quantitative method for assessing dopamine neuron degeneration in the substantia nigra.
- To provide a more direct index of neuronal integrity in MPTP-treated mice.
- To evaluate the utility of laser pressure catapult microdissection (LCM) combined with Western blot for this purpose.
Main Methods:
- Laser pressure catapult microdissection (LCM) was used to isolate the substantia nigra.
- Quantitative Western blot was employed to measure levels of tyrosine hydroxylase (TH) and beta-actin.
- Mice were treated with MPTP to induce dopaminergic neurodegeneration.
Main Results:
- MPTP treatment led to maximal striatal dopamine depletion and histological signs of substantia nigra degeneration.
- A significant 70% reduction in TH relative to beta-actin was observed in LCM extracts from MPTP-treated mice.
- Results correlated with decreased striatal dopamine and loss of TH in the substantia nigra.
Conclusions:
- LCM coupled with Western blot provides a quantitative measure of dopamine neuron toxicity in the substantia nigra.
- This method offers a reliable index for evaluating neuroprotective or neurorestorative strategies for dopaminergic neurons.
- The technique addresses the challenge of quantifying neuronal integrity in Parkinson's disease models.
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