Literature DB >> 21597966

Infusion-based manganese-enhanced MRI: a new imaging technique to visualize the mouse brain.

Stephanie I Mok1, Jeeva P Munasinghe, W Scott Young.   

Abstract

Manganese-enhanced magnetic resonance imaging is a technique that employs the divalent ion of the paramagnetic metal manganese (Mn(2+)) as an effective contrast agent to visualize, in vivo, the mammalian brain. As total achievable contrast is directly proportional to the net amount of Mn(2+) accumulated in the brain, there is a great interest in optimizing administration protocols to increase the effective delivery of Mn(2+) to the brain while avoiding the toxic effects of Mn(2+) overexposure. In this study, we investigated outcomes following continuous slow systemic infusion of manganese chloride (MnCl(2)) into the mouse via mini-osmotic pump administration. The effects of increasing fractionated rates of Mn(2+) infusion on signal enhancement in regions of the brain were analyzed in a three-treatment study. We acquired whole-brain 3-D T1-weighted images and performed region of interest quantitative analysis to compare mean normalized signal in Mn(2+) treatments spanning 3, 7, or 14 days of infusion (rates of 1, 0.5, and 0.25 μL/h, respectively). Evidence of Mn(2+) transport at the conclusion of each infusion treatment was observed throughout the brains of normally behaving mice. Regions of particular Mn(2+) accumulation include the olfactory bulbs, cortex, infralimbic cortex, habenula, thalamus, hippocampal formation, amygdala, hypothalamus, inferior colliculus, and cerebellum. Signals measured at the completion of each infusion treatment indicate comparable means for all examined fractionated rates of Mn(2+) infusion. In this current study, we achieved a significantly higher dose of Mn(2+) (180 mg/kg) than that employed in previous studies without any observable toxic effects on animal physiology or behavior.

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Year:  2011        PMID: 21597966      PMCID: PMC3242156          DOI: 10.1007/s00429-011-0324-y

Source DB:  PubMed          Journal:  Brain Struct Funct        ISSN: 1863-2653            Impact factor:   3.270


  19 in total

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Review 2.  Manganese toxicity upon overexposure.

Authors:  Janelle Crossgrove; Wei Zheng
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Authors:  O Eschenko; S Canals; I Simanova; M Beyerlein; Y Murayama; N K Logothetis
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Review 4.  The limbic system: an anatomic, phylogenetic, and clinical perspective.

Authors:  M S Mega; J L Cummings; S Salloway; P Malloy
Journal:  J Neuropsychiatry Clin Neurosci       Date:  1997       Impact factor: 2.198

5.  Manganese toxicity is associated with mitochondrial dysfunction and DNA fragmentation in rat primary striatal neurons.

Authors:  E A Malecki
Journal:  Brain Res Bull       Date:  2001-05-15       Impact factor: 4.077

6.  In vivo auditory brain mapping in mice with Mn-enhanced MRI.

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7.  Manganese ion enhances T1-weighted MRI during brain activation: an approach to direct imaging of brain function.

Authors:  Y J Lin; A P Koretsky
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Review 8.  Manganese neurotoxicity: cellular effects and blood-brain barrier transport.

Authors:  M Aschner; J L Aschner
Journal:  Neurosci Biobehav Rev       Date:  1991       Impact factor: 8.989

9.  Manganese-enhanced magnetic resonance imaging (MEMRI) without compromise of the blood-brain barrier detects hypothalamic neuronal activity in vivo.

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Journal:  NMR Biomed       Date:  2006-12       Impact factor: 4.044

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  10 in total

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7.  Generation and Disease Model Relevance of a Manganese Enhanced Magnetic Resonance Imaging-Based NOD/scid-IL-2Rγc(null) Mouse Brain Atlas.

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8.  Manganese-enhanced magnetic resonance imaging depicts brain activity in models of acute and chronic pain: A new window to study experimental spontaneous pain?

Authors:  I M Devonshire; J J Burston; L Xu; A Lillywhite; M J Prior; D J G Watson; C M Greenspon; S J Iwabuchi; D P Auer; V Chapman
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Review 9.  Applications of Manganese-Enhanced Magnetic Resonance Imaging in Ophthalmology and Visual Neuroscience.

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10.  A hierarchy of manganese competition and entry in organotypic hippocampal slice cultures.

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  10 in total

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