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Functional Neuroimaging Using Ultrasonic Blood-brain Barrier Disruption and Manganese-enhanced MRI
Published on: July 12, 2012
Evaluation of manganese uptake and toxicity in mouse brain during continuous MnCl2 administration using osmotic pumps
M R Sepúlveda1, T Dresselaers, P Vangheluwe
1Laboratory of Cellular Transport Systems, Department of Molecular Cell Biology, Faculty of Medicine, Katholieke Universiteit Leuven, Belgium.
Abstract:
Manganese is a vital element and cofactor of many key enzymes, but it is toxic at high levels, causing pronounced disturbances in the mammalian brain. Magnetic resonance imaging (MRI) studies using manganese ions as a paramagnetic contrast agent are often limited by the neurotoxicity of Mn(2+) . In this work, we have explored a new in vivo model to study Mn(2+) uptake, distribution and neurotoxicity in mice by subcutaneous implantation of mini-osmotic pumps delivering MnCl(2) continuously for 21 days. Fractionated injections can reduce the toxicity; however, constant administration at very low doses using osmotic pumps caused a substantial effect on the T(1) contrast in MRI while reducing toxicity. Manganese-enhanced MRI documented fast but reversible Mn(2+) deposition largely in glomerular and mitral cell layers of the olfactory bulb, in the CA3 area of the hippocampus, and in the gray matter of the cerebellum. Mn(2+) accumulated as early as the first days after implantation, with a fast dispersal 9 days after stopping a 12-days Mn(2+) exposure. Prominent Mn(2+) accumulation was also seen in salivary glands and in the endocrine thyroid and posterior pituitary gland. These structures with enhanced Mn(2+) accumulation correlated well with those showing high expression of the secretory pathway Ca(2+) /Mn(2+) -ATPase (SPCA1), i.e. a transporter that could take part in Mn(2+) detoxification. Our new experimental model for continuous low-dosage administration of Mn(2+) is an easy alternative for enhancing Mn(2+) -based contrast in MEMRI studies, and might provide insight into the etiology of neuropathologies resulting from chronic Mn(2+) exposure in vivo.
Insights
This study introduces a new mouse model using osmotic pumps for continuous, low-dose manganese administration. This method enhances MRI contrast effectively while minimizing manganese neurotoxicity, aiding research into chronic manganese exposure effects.
Area of Science:
- Neuroscience
- Toxicology
- Biomedical Imaging
Background:
- Manganese (Mn2+) is essential but toxic at high levels, impacting the brain.
- Manganese-enhanced MRI (MEMRI) is limited by Mn2+ neurotoxicity.
- Developing safer MEMRI methods is crucial for studying manganese-related neuropathologies.
Purpose of the Study:
- To establish a novel in vivo model for studying Mn2+ uptake, distribution, and neurotoxicity.
- To evaluate continuous low-dose Mn2+ administration via osmotic pumps for MEMRI.
- To investigate Mn2+ deposition patterns and potential detoxification mechanisms.
Main Methods:
- Subcutaneous implantation of mini-osmotic pumps delivering MnCl2 continuously for 21 days in mice.
- Manganese-enhanced MRI (MEMRI) to visualize Mn2+ distribution.
- Analysis of Mn2+ accumulation in various tissues and correlation with SPCA1 expression.
Main Results:
- Continuous low-dose Mn2+ administration via osmotic pumps enhanced T1 MRI contrast with reduced toxicity.
- Rapid, reversible Mn2+ deposition observed in the olfactory bulb, hippocampus (CA3), and cerebellum.
- Significant Mn2+ accumulation in salivary glands, thyroid, and posterior pituitary correlated with SPCA1 transporter expression.
Conclusions:
- The novel osmotic pump model offers a safer, effective alternative for MEMRI studies.
- This model facilitates research into the mechanisms of chronic manganese neurotoxicity and accumulation.
- Findings suggest SPCA1 plays a role in Mn2+ detoxification in specific tissues.

