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.

Plos One
|May 27, 2015
PubMed

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.