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High-resolution 2-deoxyglucose autoradiography in quick-frozen slabs of neonatal rat olfactory bulb
Authors:Thane E. Benson   Gail D. Burd   Charles A. Greer   Dennis M. D. Landis  Gordon M. Shepherd
Affiliation:1. Section of Neuroanatomy, Yale University School of Medicine, 333 Cedar Street, New Haven, CT 06510, U.S.A.;2. Sections of Neuroanatomy and Neurosurgery, Yale University School of Medicine, 333 Cedar Street, New Haven, CT 06510, U.S.A.;3. Rockefeller University, Box 137, 1230 York Avenue, New York, NY 10021, U.S.A.;4. Department of Neurology, Massachusetts General Hospital, Boston, MA 02114 U.S.A.;1. School of Biochemistry and Immunology and Trinity College Institute for Neuroscience, Trinity College Dublin, Dublin, D02 PN40, Ireland;2. Florey Institute of Neuroscience and Mental Health, Melbourne Brain Centre, University of Melbourne, Parkville, VIC 3052, Australia;3. Child & Brain Development Program, Canadian Institute for Advanced Research (CIFAR), Toronto, Ontario M5G 1M1, Canada;4. Centre for Research on Adaptive Nanostructures and Nanodevices and School of Physics, Trinity College Dublin, D02 PN40, Ireland
Abstract:We have used rapid freezing and freeze-substitution fixation to permit electron microscopic study of [3H]2-deoxyglucose autoradiographs. The techniques minimize diffusion of label into processing fluids and, by inference, migration of label within tissue. Slabs of olfactory bulbs from 12-day-old rats were quick-frozen after one hour of exposure to physiological olfactory stimuli. In light microscopic autoradiographs at low magnification, the neuropil of individual olfactory glomeruli appeared uniformly labeled with different levels of labeling in different glomeruli. At higher magnification, glomerular neuropil labeling consisted of small unlabeled regions surrounded by label clusters, suggesting greater deoxyglucose uptake by olfactory nerve terminals as compared with their postsynaptic dendrites. Periglomerular neurons were labeled differentially. Some microglia and glia precursor cells were heavily labeled in all bulbar laminae. The ultrastructure of cells and neuropil in all bulbar laminae was well-preserved. Cell processes and organelles could be identified in both stained sections and unstained electron microscopic autoradiographs. These experiments demonstrate the feasibility of combining quick-freezing with freeze substitution, in order to extend the resolution of studies using diffusable tracers such as 2-deoxyglucose. The results suggest that this is a promising method for assessing several controversies concerning deoxyglucose incorporation and neuronal and glial metabolism.
Keywords:2-deoxyglucose   electron microscopy   autoradiography   olfactory bulb   neurons   neuropil   glia
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