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Updated: Jul 6, 2026

Ole Isacson: Development of New Therapies for Parkinson's Disease
Published on: April 29, 2007
Treatment of Parkinson's disease with trophic factors
1Parkinsons Disease Research, Educational and Clinical Center, Portland Veteran's Administration Medical Center, Portland, Oregon 97239, USA.
Abstract:
Trophic factors are proteins that support and protect subpopulations of cells. A number have been reported to act on dopaminergic neurons in vitro and in vivo, making them potential therapeutic candidates for Parkinson's disease. All of these candidate factors protect dopaminergic neurons if given prior to, or with, selective neurotoxins. Fewer trophic factors, primarily glial-derived neurotrophic factor (GDNF) and its relative, neurturin (NRTN; also known as NTN), have been shown to restore function in damaged dopamine neurons after the acute effects of neurotoxins have subsided. A major barrier to clinical translation has been delivery. GDNF delivered by intracerebroventricular injection in patients was ineffective, probably because GDNF did not reach the target, the putamen, and intraputaminal infusion was ineffective, probably because of limited distribution within the putamen. A randomized clinical trial with gene therapy for NRTN is underway, in an attempt to overcome these problems with targeting and distribution. Other strategies are available to induce trophic effects in the CNS, but have not yet been the focus of human research. To date, clinical trials have focused on restoration of function (i.e., improvement of parkinsonism). Protection (i.e., slowing or halting disease progression and functional decline) might be a more robust effect of trophic agents. Laboratory research points to their effectiveness in protecting neurons and even restoring dopaminergic function after a monophasic neurotoxic insult. Utility for such compounds in patients with Parkinson's disease and ongoing loss of dopaminergic neurons remains to be proven.
Insights
Trophic factors like GDNF and NRTN show promise for Parkinson's disease by protecting dopamine neurons. However, effective delivery to the brain remains a significant challenge for clinical application.
Area of Science:
- Neuroscience
- Cell Biology
- Pharmacology
Background:
- Trophic factors are proteins crucial for neuronal survival and function.
- Dopaminergic neurons are key targets for Parkinson's disease (PD) therapies.
- Glial-derived neurotrophic factor (GDNF) and neurturin (NRTN) are leading trophic factor candidates for PD.
Purpose of the Study:
- To evaluate the therapeutic potential of trophic factors for Parkinson's disease.
- To identify challenges and strategies for delivering trophic factors to the brain.
- To explore the protective and restorative effects of trophic factors on dopaminergic neurons.
Main Methods:
- In vitro and in vivo studies of trophic factor effects on dopaminergic neurons.
- Analysis of delivery methods for GDNF and NRTN in preclinical models.
- Review of clinical trial data and strategies for gene therapy delivery.
Main Results:
- Trophic factors protect dopaminergic neurons from neurotoxins.
- GDNF and NRTN can restore function in damaged dopamine neurons.
- Delivery methods (intracerebroventricular and intraputaminal) have shown limitations in distribution and efficacy.
Conclusions:
- Trophic factors hold therapeutic potential for Parkinson's disease, offering both protection and functional restoration.
- Overcoming delivery barriers is critical for successful clinical translation of NRTN and other trophic factors.
- Future research should focus on optimizing delivery strategies and confirming the long-term benefits of trophic agents in PD patients.
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