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Updated: Apr 11, 2026

Functional Neuroimaging Using Ultrasonic Blood-brain Barrier Disruption and Manganese-enhanced MRI
Published on: July 12, 2012
Manganese-Enhanced MRI Reflects Both Activity-Independent and Activity-Dependent Uptake within the Rat
Leiming Wang1, Hanbing Lu2, P Leon Brown3
1Neuroimaging Research Branch, National Institute on Drug Abuse, IRP, Baltimore, Maryland, 21224, United States of America; Department of Psychiatry and the Maryland Psychiatric Research Center, University of Maryland School of Medicine, Baltimore, Maryland, 21228, United States of America.
Abstract:
Manganese-enhanced magnetic resonance imaging (MEMRI) is a powerful technique for assessing the functional connectivity of neurons within the central nervous system. Despite the widely held proposition that MEMRI signal is dependent on neuronal activity, few studies have directly tested this implicit hypothesis. In the present series of experiments, MnCl2 was injected into the habenula of urethane-anesthetized rats alone or in combination with drugs known to alter neuronal activity by modulating specific voltage- and/or ligand-gated ion channels. Continuous quantitative T1 mapping was used to measure Mn2+ accumulation in the interpeduncular nucleus, a midline structure in which efferents from the medial habenula terminate. Microinjection of MnCl2 into the habenular complex using a protocol that maintained spontaneous neuronal activity resulted in a time-dependent increase in MEMRI signal intensity in the interpeduncular nucleus consistent with fast axonal transport of Mn2+ between these structures. Co-injection of the excitatory amino-acid agonist AMPA, increased the Mn2+-enhanced signal intensity within the interpeduncular nucleus. AMPA-induced increases in MEMRI signal were attenuated by co-injection of either the sodium channel blocker, TTX, or broad-spectrum Ca2+ channel blocker, Ni2+, and were occluded in the presence of both channel blockers. However, neither Ni2+ nor TTX, alone or in combination, attenuated the increase in signal intensity following injection of Mn2+ into the habenula. These results support the premise that changes in neuronal excitability are reflected by corresponding changes in MEMRI signal intensity. However, they also suggest that basal rates of Mn2+ uptake by neurons in the medial habenula may also occur via activity-independent mechanisms.
Insights
Manganese-enhanced MRI (MEMRI) tracks neuronal activity. This study shows MEMRI signal changes reflect neuronal excitability, but some manganese uptake may be activity-independent.
Area of Science:
- Neuroscience
- Neuroimaging
- Biochemistry
Background:
- Manganese-enhanced magnetic resonance imaging (MEMRI) is used to study neuronal connectivity.
- The link between MEMRI signal and neuronal activity is widely assumed but not fully proven.
- Investigating this link is crucial for understanding MEMRI's application in neuroscience.
Purpose of the Study:
- To directly test the hypothesis that MEMRI signal intensity correlates with neuronal activity.
- To investigate the mechanisms of manganese (Mn2+) uptake and transport in the central nervous system.
- To determine the influence of ion channel activity on MEMRI signal changes.
Main Methods:
- In vivo experiments using urethane-anesthetized rats.
- Microinjection of MnCl2 into the habenula.
- Administration of drugs (AMPA, TTX, Ni2+) to modulate neuronal activity.
- Quantitative T1 mapping to measure Mn2+ accumulation in the interpeduncular nucleus.
Main Results:
- MnCl2 injection into the habenula caused a time-dependent increase in MEMRI signal in the interpeduncular nucleus.
- Co-administration of AMPA enhanced the MEMRI signal, indicating increased neuronal activity.
- AMPA-induced signal increases were blocked by TTX (sodium channel blocker) and Ni2+ (calcium channel blocker).
- Neither TTX nor Ni2+ alone or combined affected basal Mn2+ uptake in the habenula.
Conclusions:
- Neuronal excitability changes are reflected in MEMRI signal intensity.
- Activity-dependent mechanisms contribute to MEMRI signal changes.
- Activity-independent mechanisms may also play a role in basal Mn2+ uptake in certain neuronal populations.

