Applications of manganese‐enhanced magnetic resonance imaging (MEMRI) to image brain plasticity in song birds
Open Access
- 1 November 2004
- journal article
- review article
- Published by Wiley in NMR in Biomedicine
- Vol. 17 (8), 602-612
- https://doi.org/10.1002/nbm.936
Abstract
The song control system of song birds is an excellent model for studying brain plasticity and has thus far been extensively analyzed by histological and electrophysiological methods. However, these approaches do not provide a global view of the brain and/or do not allow repeated measures, which are necessary to establish correlations between alterations in neural substrate and behavior. Application of in vivo manganese‐enhanced MRI enabled us for the first time to visualize the song control system repeatedly in the same bird, making it possible to quantify dynamically the volume changes in this circuit as a function of seasonal and hormonal influences. In this review, we introduce and explore the song control system of song birds as a natural model for brain plasticity to validate a new cutting edge technique, which we called ‘repeated dynamic manganese enhanced MRI’ or D‐MEMRI. This technique is based on the use of implanted permanent cannulae—for accurate repeated manganese injections in a defined target area—and the subsequent MRI acquisition of the dynamics of the accumulation of manganese in projection brain targets. A compilation of the D‐MEMRI data obtained thus far in this system demonstrates the usefulness of this new method for studying brain plasticity. In particular it is shown to be a perfect tool for long‐term studies of morphological and functional responses of specific brain circuits to changes in endocrine conditions. The method was also successfully applied to obtain quantitative measures of changes in activity as a function of auditory stimuli in different neuronal populations of a same nucleus that project to different targets. D‐MEMRI, combined with other MRI techniques, clearly harbors potential for unraveling seasonal, hormonal, pharmacological or even genetically driven changes in a neuronal circuit, by simultaneously measuring changes in morphology, activity and connectivity. Copyright © 2004 John Wiley & Sons, Ltd.Keywords
This publication has 61 references indexed in Scilit:
- Revised nomenclature for avian telencephalon and some related brainstem nucleiJournal of Comparative Neurology, 2004
- Differential effects of testosterone on neuronal populations and their connections in a sensorimotor brain nucleus controlling song production in songbirds: a manganese enhanced-magnetic resonance imaging studyNeuroImage, 2004
- Dynamic activity‐induced manganese‐dependent contrast magnetic resonance imaging (DAIM MRI)Magnetic Resonance in Medicine, 2002
- Validation of Diffusion Tensor Magnetic Resonance Axonal Fiber Imaging with Registered Manganese-Enhanced Optic TractsNeuroImage, 2001
- Mechanisms of Fast and Slow Axonal TransportAnnual Review of Neuroscience, 1991
- Birth of Projection Neurons in Adult Avian Brain May Be Related to Perceptual or Motor LearningScience, 1990
- Proliferation “hot spots” in adult avian ventricular zone reveal radial cell divisionNeuron, 1990
- Migration of young neurons in adult avian brainNature, 1988
- Neurogenesis in the Adult Rat: Electron Microscopic Analysis of Light RadioautographsScience, 1977
- Autoradiographic and histological evidence of postnatal hippocampal neurogenesis in ratsJournal of Comparative Neurology, 1965