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Functional Neuroimaging Using Ultrasonic Blood-brain Barrier Disruption and Manganese-enhanced MRI
Published on: July 12, 2012
In vivo trans-synaptic tract tracing from the murine striatum and amygdala utilizing manganese enhanced MRI (MEMRI)
Robia G Pautler1, Raymond Mongeau, Russell E Jacobs
1Biological Imaging Center, Beckman Institute, Division of Biology, California Institute of Technology, Pasadena, California 91125-7400, USA.
Abstract:
Small focal injections of manganese ion (Mn(2+)) deep within the mouse central nervous system combined with in vivo high-resolution MRI delineate neuronal tracts originating from the site of injection. Previous work has shown that Mn(2+) can be taken up through voltage-gated Ca(2+) channels, transported along axons, and across synapses. Moreover, Mn(2+) is a paramagnetic MRI contrast agent, causing positive contrast enhancement in tissues where it has accumulated. These combined properties allow for its use as an effective MRI detectable neuronal tract tracer. Injections of low concentrations of MnCl(2) into either the striatum or amygdala produced significant contrast enhancement along the known neuronal circuitry. The observed enhancement pattern is different at each injection site and enhancement of the homotopic areas was observed in both cases. Ten days postinjection, the Mn(2+) had washed out, as evidenced by the absence of positive contrast enhancement within the brain. This methodology allows imaging of neuronal tracts long after the injection of the ion because Mn(2+) concentrates in active neurons and resides for extended periods of time. With appropriate controls, differentiation of subsets of neuronal pathways associated with behavioral and pharmacological paradigms should be feasible.
Insights
Manganese ion (Mn2+) injections into the mouse brain, combined with MRI, effectively trace neuronal pathways. This novel method visualizes neural circuitry by leveraging Mn2+ uptake and transport in active neurons.
Area of Science:
- Neuroscience
- Medical Imaging
- Biochemistry
Background:
- Manganese ion (Mn2+) uptake occurs via voltage-gated calcium channels.
- Mn2+ is transported along axons and across synapses.
- Mn2+ acts as a paramagnetic MRI contrast agent.
Purpose of the Study:
- To develop and validate Mn2+ as an MRI-detectable neuronal tract tracer.
- To delineate neuronal tracts originating from specific deep brain injection sites.
- To assess the longevity and specificity of Mn2+ enhancement in vivo.
Main Methods:
- Focal injection of low concentrations of manganese chloride (MnCl2) into the mouse central nervous system (striatum or amygdala).
- High-resolution in vivo magnetic resonance imaging (MRI) to detect Mn2+ accumulation.
- Observation of contrast enhancement patterns at 10 days post-injection.
Main Results:
- Significant contrast enhancement was observed along known neuronal circuitry from injection sites.
- Distinct enhancement patterns were noted for striatal versus amygdala injections.
- Mn2+ enhancement was absent 10 days post-injection, indicating washout.
Conclusions:
- Mn2+ is an effective tracer for delineating neuronal tracts using MRI.
- The method allows for imaging of neural pathways by concentrating in active neurons.
- This technique holds promise for studying neuronal pathways in various experimental paradigms.

