4D MEMRI atlas of neonatal FVB/N mouse brain development Journal Article


Authors: Szulc, K. U.; Lerch, J. P.; Nieman, B. J.; Bartelle, B. B.; Friedel, M.; Suero-Abreu, G. A.; Watson, C.; Joyner, A. L.; Turnbull, D. H.
Article Title: 4D MEMRI atlas of neonatal FVB/N mouse brain development
Abstract: The widespread use of the mouse as a model system to study brain development has created the need for noninvasive neuroimaging methods that can be applied to early postnatal mice. The goal of this study was to optimize in vivo three- (3D) and four-dimensional (4D) manganese (Mn)-enhanced MRI (MEMRI) approaches for acquiring and analyzing data from the developing mouse brain. The combination of custom, stage-dependent holders and self-gated (motion-correcting) 3D MRI sequences enabled the acquisition of high-resolution (100-μm isotropic), motion artifact-free brain images with a high level of contrast due to Mn-enhancement of numerous brain regions and nuclei. We acquired high-quality longitudinal brain images from two groups of FVB/N strain mice, six mice per group, each mouse imaged on alternate odd or even days (6 3D MEMRI images at each day) covering the developmental stages between postnatal days 1 to 11. The effects of Mn-exposure, anesthesia and MRI were assessed, showing small but significant transient effects on body weight and brain volume, which recovered with time and did not result in significant morphological differences when compared to controls. Metrics derived from deformation-based morphometry (DBM) were used for quantitative analysis of changes in volume and position of a number of brain regions. The cerebellum, a brain region undergoing significant changes in size and patterning at early postnatal stages, was analyzed in detail to demonstrate the spatiotemporal characterization made possible by this new atlas of mouse brain development. These results show that MEMRI is a powerful tool for quantitative analysis of mouse brain development, with great potential for in vivo phenotype analysis in mouse models of neurodevelopmental diseases. © 2015 Elsevier Inc.
Keywords: controlled study; nonhuman; neuroimaging; nuclear magnetic resonance imaging; mouse; cerebellum; body weight; quantitative analysis; brain development; contrast enhancement; image quality; newborn; computer program; morphometrics; time series analysis; artifact reduction; brain nucleus; brain region; image registration; postnatal development; brain size; manganese chloride; brain growth; priority journal; article; brain nuclei; mn-enhanced mri; deformation base morphometry; four dimensional manganese enhanced magnetic resonance imaging; fvb/n mouse; nuclear magnetic resonance spectrometer
Journal Title: NeuroImage
Volume: 118
ISSN: 1053-8119
Publisher: Elsevier Science, Inc.  
Date Published: 2015-09-01
Start Page: 49
End Page: 62
Language: English
DOI: 10.1016/j.neuroimage.2015.05.029
PROVIDER: scopus
PMCID: PMC4554969
PUBMED: 26037053
DOI/URL:
Notes: Export Date: 2 September 2015 -- Source: Scopus
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  1. Alexandra L Joyner
    97 Joyner