Related Experiment Video
Updated: Jun 17, 2026

Convection Enhanced Delivery of Optogenetic Adeno-associated Viral Vector to the Cortex of Rhesus Macaque Under Guidance of Online MRI Images
Published on: May 23, 2019
Image-guided convection-enhanced delivery of GDNF protein into monkey putamen
Francisco Gimenez1, Michal T Krauze, Francisco Valles
1Department of Neurological Surgery, University of California San Francisco, San Francisco, CA 94103-0555, USA.
Abstract:
Recently, we developed an MRI-based method that enables tracking of parenchymal infusions of therapeutic agents by inclusion of a contrast reagent in the infusate. We show that both liposomal Gadoteridol (GDL) and free Gadoteridol (Gd) can be used for MRI-monitored infusions into the non-human primate (NHP) putamen to predict the distribution of GDNF protein after convection-enhanced delivery (CED). GDNF and both MRI tracers showed good co-distribution within the putamen and other brain regions. Although the CED infusion technique can distribute GDNF protein over large brain regions, continuous administration of GDNF could cause undesired effects that could counteract the benefits of CED as demonstrated in this study when large volumes of GDNF were delivered that lead to GDNF leakage into CSF. These limitations can be addressed by employing an intermittent CED schedule that permits consistent target coverage without GDNF leakage into CSF or white matter. We present an approach intracranial GDNF infusions that can be optimized by means of real-time monitoring via MRI. Adoption of this new standard, along with advanced, reflux-resistant cannulae, may permit reconsideration of direct GDNF infusion into parenchyma as a clinical strategy, since previous clinical studies involving chronic infusion of recombinant glial cell line-derived neurotrophic factor (GDNF) to the putamen for the treatment of Parkinson's disease have yielded mixed results, a state of affairs that may in part be attributed to suboptimal infusion parameters.
Insights
Magnetic resonance imaging (MRI) enables real-time tracking of brain infusions. This method optimizes convection-enhanced delivery (CED) of glial cell line-derived neurotrophic factor (GDNF) for Parkinson's disease treatment.
Area of Science:
- Neuroscience
- Medical Imaging
- Biotechnology
Background:
- Convection-enhanced delivery (CED) is used for brain infusions.
- Previous studies on glial cell line-derived neurotrophic factor (GDNF) for Parkinson's disease have yielded mixed results.
- Suboptimal infusion parameters may contribute to variable clinical outcomes.
Purpose of the Study:
- To develop and validate an MRI-based method for tracking parenchymal infusions.
- To predict the distribution of GDNF protein after CED using MRI.
- To optimize intracranial GDNF infusions for potential clinical application in Parkinson's disease.
Main Methods:
- Developed an MRI-based method using Gadoteridol (GDL) or free Gadoteridol (Gd) as contrast reagents.
- Performed MRI-monitored infusions into the non-human primate (NHP) putamen.
- Evaluated co-distribution of GDNF and MRI tracers within brain regions.
Main Results:
- Both liposomal GDL and free Gd enabled MRI-monitored infusions into the NHP putamen.
- GDNF and MRI tracers showed good co-distribution within the putamen and other brain regions.
- Continuous GDNF administration led to leakage into cerebrospinal fluid (CSF), highlighting limitations of current CED protocols.
Conclusions:
- An intermittent CED schedule can ensure consistent target coverage without GDNF leakage.
- Real-time MRI monitoring allows optimization of intracranial GDNF infusions.
- This approach, combined with advanced cannulae, may enable reconsideration of direct GDNF infusion for Parkinson's disease treatment.
