Literature DB >> 15219577

In vivo detection of neuroarchitecture in the rodent brain using manganese-enhanced MRI.

Ichio Aoki1, Yi-Jen Lin Wu, Afonso C Silva, Ronald M Lynch, Alan P Koretsky.   

Abstract

Visualizing brain anatomy in vivo could provide insight into normal and pathophysiology. Here it is demonstrated that neuroarchitecture can be detected in the rodent brain using MRI after systemic MnCl2. Administration of MnCl2 leads to rapid T1 enhancement in the choroid plexus and circumventricular organs, which spreads to the CSF space in ventricles and periventricular tissue. After 1 day, there was MRI enhancement throughout the brain with high intensity in the pituitary, olfactory bulb, cortex, basal forebrain, hippocampus, basal ganglia, hypothalamus, amygdala, and cerebellum. Contrast obtained enabled visualization of specific features of neuroarchitecture. The arrowhead structure of the dentate gyrus as well as the CA1-CA3 region of the hippocampus and layers in cortex, cerebellum, as well as the olfactory bulb could be readily observed. Preliminary assignments of olfactory bulb layers, cortical layers in frontal and somatosensory cortex, and cerebellum were made. Systemic MnCl2 leads to MRI visualization of neuroarchitecture nondestructively. Copyright 2004 Elsevier Inc.

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Year:  2004        PMID: 15219577     DOI: 10.1016/j.neuroimage.2004.03.031

Source DB:  PubMed          Journal:  Neuroimage        ISSN: 1053-8119            Impact factor:   6.556


  94 in total

1.  Self-organized Mn2+-Block Copolymer Complexes and Their Use for In Vivo MR Imaging of Biological Processes.

Authors:  Nikorn Pothayee; Der-Yow Chen; Maria A Aronova; Chunqi Qian; Nadia Bouraoud; Stephen Dodd; Richard D Leapman; Alan P Koretsky
Journal:  J Mater Chem B       Date:  2014       Impact factor: 6.331

2.  Manganese-enhanced magnetic resonance imaging (MEMRI).

Authors:  Cynthia A Massaad; Robia G Pautler
Journal:  Methods Mol Biol       Date:  2011

Review 3.  Is there a path beyond BOLD? Molecular imaging of brain function.

Authors:  Alan P Koretsky
Journal:  Neuroimage       Date:  2012-03-03       Impact factor: 6.556

4.  In vivo detection of excitotoxicity by manganese-enhanced MRI: comparison with physiological stimulation.

Authors:  Oliviero L Gobbo; Fanny Petit; Hirac Gurden; Marc Dhenain
Journal:  Magn Reson Med       Date:  2011-11-29       Impact factor: 4.668

5.  Deficits in axonal transport in hippocampal-based circuitry and the visual pathway in APP knock-out animals witnessed by manganese enhanced MRI.

Authors:  Joseph J Gallagher; Xiaowei Zhang; Gregory J Ziomek; Russell E Jacobs; Elaine L Bearer
Journal:  Neuroimage       Date:  2012-02-10       Impact factor: 6.556

6.  Measurement of manganese content in various organs in rats with or without glucose stimulation.

Authors:  Mamoru Nagata; Toshio Kagawa; Daichi Koutou; Taro Matsushita; Youichi Yamazaki; Kenya Murase
Journal:  Radiol Phys Technol       Date:  2010-08-17

Review 7.  In vivo structural imaging of the cerebellum, the contribution of ultra-high fields.

Authors:  José P Marques; Rolf Gruetter; Wietske van der Zwaag
Journal:  Cerebellum       Date:  2012-06       Impact factor: 3.847

8.  Anatomy, Functionality, and Neuronal Connectivity with Manganese Radiotracers for Positron Emission Tomography.

Authors:  Galit Saar; Corina M Millo; Lawrence P Szajek; Jeff Bacon; Peter Herscovitch; Alan P Koretsky
Journal:  Mol Imaging Biol       Date:  2018-08       Impact factor: 3.488

Review 9.  Effects of manganese on thyroid hormone homeostasis: potential links.

Authors:  O P Soldin; M Aschner
Journal:  Neurotoxicology       Date:  2007-05-13       Impact factor: 4.294

10.  Deletion in the N-terminal half of olfactomedin 1 modifies its interaction with synaptic proteins and causes brain dystrophy and abnormal behavior in mice.

Authors:  Naoki Nakaya; Afia Sultana; Jeeva Munasinghe; Aiwu Cheng; Mark P Mattson; Stanislav I Tomarev
Journal:  Exp Neurol       Date:  2013-10-02       Impact factor: 5.330

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