Skip to main content
Top
Published in: Brain Structure and Function 1/2017

01-01-2017 | Original Article

Activity in the rat olfactory cortex is correlated with behavioral response to odor: a microPET study

Authors: Philippe Litaudon, Caroline Bouillot, Luc Zimmer, Nicolas Costes, Nadine Ravel

Published in: Brain Structure and Function | Issue 1/2017

Login to get access

Abstract

How olfactory cortical areas interpret odor maps evoked in the olfactory bulb and translate odor information into behavioral responses is still largely unknown. Indeed, rat olfactory cortices encompass an extensive network located in the ventral part of the brain, thus complicating the use of invasive functional methods. In vivo imaging techniques that were previously developed for brain activation studies in humans have been adapted for use in rodents and facilitate the non-invasive mapping of the whole brain. In this study, we report an initial series of experiments designed to demonstrate that microPET is a powerful tool to investigate the neural processes underlying odor-induced behavioral response in a large-scale olfactory neuronal network. After the intravenous injection of [18F]Fluorodeoxyglucose ([18F]FDG), awake rats were placed in a ventilated Plexiglas cage for 50 min, where odorants were delivered every 3 min for a 10-s duration in a random order. Individual behavioral responses to odor were classified into categories ranging from 1 (head movements associated with a short sniffing period in response to a few stimulations) to 4 (a strong reaction, including rearing, exploring and sustained sniffing activity, to several stimulations). After [18F]FDG uptake, rats were anesthetized to perform a PET scan. This experimental session was repeated 2 weeks later using the same animals without odor stimulation to assess the baseline level of activation in each individual. Two voxel-based statistical analyses (SPM 8) were performed: (1) a two-sample paired t test analysis contrasting baseline versus odor scan and (2) a correlation analysis between voxel FDG activity and behavioral score. As expected, the contrast analysis between baseline and odor session revealed activations in various olfactory cortical areas. Significant increases in glucose metabolism were also observed in other sensory cortical areas involved in whisker movement and in several modules of the cerebellum involved in motor and sensory function. Correlation analysis provided new insight into these results. [18F]FDG uptake was correlated with behavioral response in a large part of the anterior piriform cortex and in some lobules of the cerebellum, in agreement with the previous data showing that both piriform cortex and cerebellar activity in humans can be driven by sniffing activity, which was closely related to the high behavioral scores observed in our experiment. The present data demonstrate that microPET imaging offers an original perspective for rat behavioral neuroimaging.
Literature
go back to reference Armstrong DM, Drew T (1980) Responses in the posterior lobe of the rat cerebellum to electrical stimulation of cutaneous afferents to the snout. J Physiol 309:357–374CrossRefPubMedPubMedCentral Armstrong DM, Drew T (1980) Responses in the posterior lobe of the rat cerebellum to electrical stimulation of cutaneous afferents to the snout. J Physiol 309:357–374CrossRefPubMedPubMedCentral
go back to reference Bojsen-Moller F, Fahrenkrug J (1971) Nasal swell-bodies and cyclic changes in the air passage of the rat and rabbit nose. J Anat 110:25–37PubMedPubMedCentral Bojsen-Moller F, Fahrenkrug J (1971) Nasal swell-bodies and cyclic changes in the air passage of the rat and rabbit nose. J Anat 110:25–37PubMedPubMedCentral
go back to reference Chabaud P, Ravel N, Wilson DA, Gervais R (1999) Functional coupling in rat central olfactory pathways: a coherence analysis. Neurosci Lett 276:17–20CrossRefPubMed Chabaud P, Ravel N, Wilson DA, Gervais R (1999) Functional coupling in rat central olfactory pathways: a coherence analysis. Neurosci Lett 276:17–20CrossRefPubMed
go back to reference Chapuis J, Garcia S, Messaoudi B et al (2009) The way an odor is experienced during aversive conditioning determines the extent of the network recruited during retrieval: a multisite electrophysiological study in rats. J Neurosci 29:10287–10298. doi:10.1523/JNEUROSCI.0505-09.2009 CrossRefPubMed Chapuis J, Garcia S, Messaoudi B et al (2009) The way an odor is experienced during aversive conditioning determines the extent of the network recruited during retrieval: a multisite electrophysiological study in rats. J Neurosci 29:10287–10298. doi:10.​1523/​JNEUROSCI.​0505-09.​2009 CrossRefPubMed
go back to reference Fontanini A, Spano P, Bower JM (2003) Ketamine–xylazine-induced slow (<1.5 Hz) oscillations in the rat piriform (olfactory) cortex are functionally correlated with respiration. J Neurosci 23:7993–8001PubMed Fontanini A, Spano P, Bower JM (2003) Ketamine–xylazine-induced slow (<1.5 Hz) oscillations in the rat piriform (olfactory) cortex are functionally correlated with respiration. J Neurosci 23:7993–8001PubMed
go back to reference Fueger BJ, Czernin J, Hildebrandt I et al (2006) Impact of animal handling on the results of 18F-FDG PET studies in mice. J Nucl Med 47:999–1006PubMed Fueger BJ, Czernin J, Hildebrandt I et al (2006) Impact of animal handling on the results of 18F-FDG PET studies in mice. J Nucl Med 47:999–1006PubMed
go back to reference Haberly LB (1973) Summed potentials evoked in opossum prepyriform cortex. J Neurophysiol 36:775–788PubMed Haberly LB (1973) Summed potentials evoked in opossum prepyriform cortex. J Neurophysiol 36:775–788PubMed
go back to reference Haberly LB, Price JL (1977) The axonal projection patterns of the mitral and tufted cells of the olfactory bulb in the rat. Brain Res 129:152–157CrossRefPubMed Haberly LB, Price JL (1977) The axonal projection patterns of the mitral and tufted cells of the olfactory bulb in the rat. Brain Res 129:152–157CrossRefPubMed
go back to reference Jourdan F, Duveau A, Astic L, Holley A (1980) Spatial distribution of [14C]-2-deoxyglucose uptake in the olfactory bulbs of rats stimulated with two different odours. Brain Res 188:139–154CrossRefPubMed Jourdan F, Duveau A, Astic L, Holley A (1980) Spatial distribution of [14C]-2-deoxyglucose uptake in the olfactory bulbs of rats stimulated with two different odours. Brain Res 188:139–154CrossRefPubMed
go back to reference Litaudon P, Cattarelli M (1994) Multisite recordings of the brain in the in vivo rat using a voltage-sensitive dye. Neurosci Prot 070–02:1–15 Litaudon P, Cattarelli M (1994) Multisite recordings of the brain in the in vivo rat using a voltage-sensitive dye. Neurosci Prot 070–02:1–15
go back to reference Litaudon P, Datiche F, Cattarelli M (1997a) Optical recording of the rat piriform cortex activity. Prog Neurobiol 52:485–510CrossRefPubMed Litaudon P, Datiche F, Cattarelli M (1997a) Optical recording of the rat piriform cortex activity. Prog Neurobiol 52:485–510CrossRefPubMed
go back to reference Litaudon P, Mouly A-M, Sullivan R et al (1997b) Learning-induced changes in rat piriform cortex mapped using multisite recording with voltage-sensitive dye. Eur J Neurosci 8:1593–1602CrossRef Litaudon P, Mouly A-M, Sullivan R et al (1997b) Learning-induced changes in rat piriform cortex mapped using multisite recording with voltage-sensitive dye. Eur J Neurosci 8:1593–1602CrossRef
go back to reference Litaudon P, Garcia S, Buonviso N (2008) Strong coupling between pyramidal cell activity and network oscillations in the olfactory cortex. Neuroscience 156:781–787CrossRefPubMed Litaudon P, Garcia S, Buonviso N (2008) Strong coupling between pyramidal cell activity and network oscillations in the olfactory cortex. Neuroscience 156:781–787CrossRefPubMed
go back to reference Paxinos G, Watson C (2005) The rat brain in stereotaxic coordinates. Elsevier Academic Press, Sidney Paxinos G, Watson C (2005) The rat brain in stereotaxic coordinates. Elsevier Academic Press, Sidney
go back to reference Schoenbaum G, Eichenbaum H (1995) Information coding in the rodent prefrontal cortex.1. Single-neuron activity in orbitofrontal cortex compared with that in pyriform cortex. J Neurophysiol 74:733–750PubMed Schoenbaum G, Eichenbaum H (1995) Information coding in the rodent prefrontal cortex.1. Single-neuron activity in orbitofrontal cortex compared with that in pyriform cortex. J Neurophysiol 74:733–750PubMed
go back to reference Schwob JE, Price JL (1978) The cortical projections of the olfactory bulb: development in fetal and neonatal rats with additional observations in the adult. Brain Res 151:369–374CrossRefPubMed Schwob JE, Price JL (1978) The cortical projections of the olfactory bulb: development in fetal and neonatal rats with additional observations in the adult. Brain Res 151:369–374CrossRefPubMed
go back to reference Sharp FR, Kauer JS, Shepherd GM (1975) Local sites of activity-related glucose metabolism in rat olfactory bulb during olfactory stimulation. Brain Res 98:596–600CrossRefPubMed Sharp FR, Kauer JS, Shepherd GM (1975) Local sites of activity-related glucose metabolism in rat olfactory bulb during olfactory stimulation. Brain Res 98:596–600CrossRefPubMed
go back to reference Sharp FR, Gonzalez MF, Sharp JW, Sagar SM (1989) c-fos expression and (14C) 2-deoxyglucose uptake in the caudal cerebellum of the rat during motor/sensory cortex stimulation. J Comp Neurol 284:621–636. doi:10.1002/cne.902840409 CrossRefPubMed Sharp FR, Gonzalez MF, Sharp JW, Sagar SM (1989) c-fos expression and (14C) 2-deoxyglucose uptake in the caudal cerebellum of the rat during motor/sensory cortex stimulation. J Comp Neurol 284:621–636. doi:10.​1002/​cne.​902840409 CrossRefPubMed
go back to reference Sobel N, Prabhakaran V, Hartley CA et al (1998b) Odorant-induced and sniff-induced activation in the cerebellum of the human. J Neurosci 18:8990–9001PubMed Sobel N, Prabhakaran V, Hartley CA et al (1998b) Odorant-induced and sniff-induced activation in the cerebellum of the human. J Neurosci 18:8990–9001PubMed
go back to reference Sobel N, Prabhakaran V, Zhao Z et al (2000) Time course of odorant-induced activation in the human primary olfactory cortex. J Neurophysiol 83:537–551PubMed Sobel N, Prabhakaran V, Zhao Z et al (2000) Time course of odorant-induced activation in the human primary olfactory cortex. J Neurophysiol 83:537–551PubMed
go back to reference Soto-Montenegro ML, Vaquero JJ, Pascau J et al (2009) Detection of visual activation in the rat brain using 2-deoxy-2-[(18)F]fluoro-d-glucose and statistical parametric mapping (SPM). Mol Imaging Biol 11:94–99. doi:10.1007/s11307-008-0179-7 CrossRefPubMed Soto-Montenegro ML, Vaquero JJ, Pascau J et al (2009) Detection of visual activation in the rat brain using 2-deoxy-2-[(18)F]fluoro-d-glucose and statistical parametric mapping (SPM). Mol Imaging Biol 11:94–99. doi:10.​1007/​s11307-008-0179-7 CrossRefPubMed
go back to reference Welker WI (1964) Analysis of sniffing of the albino rat. Behavior 22:223–244CrossRef Welker WI (1964) Analysis of sniffing of the albino rat. Behavior 22:223–244CrossRef
go back to reference Xu F, Kida I, Hyder F, Shulman RG (2000) Assessment and discrimination of odor stimuli in rat olfactory bulb by dynamic functional MRI. Proc Nat Acad Sci USA 19:10601–10606. doi:10.1073/pnas.180321397 CrossRef Xu F, Kida I, Hyder F, Shulman RG (2000) Assessment and discrimination of odor stimuli in rat olfactory bulb by dynamic functional MRI. Proc Nat Acad Sci USA 19:10601–10606. doi:10.​1073/​pnas.​180321397 CrossRef
go back to reference Yang X, Renken R, Hyder F et al (1998) Dynamic mapping at the laminar level of odor-elicited responses in rat olfactory bulb by functional MRI. Proc Nat Acad Sci USA 95:7715–7720CrossRefPubMedPubMedCentral Yang X, Renken R, Hyder F et al (1998) Dynamic mapping at the laminar level of odor-elicited responses in rat olfactory bulb by functional MRI. Proc Nat Acad Sci USA 95:7715–7720CrossRefPubMedPubMedCentral
go back to reference Zinyuk LE, Datiche F, Cattarelli M (2001) Cell activity in the anterior piriform cortex during an olfactory learning in the rat. Behav Brain Res 124:29–32CrossRefPubMed Zinyuk LE, Datiche F, Cattarelli M (2001) Cell activity in the anterior piriform cortex during an olfactory learning in the rat. Behav Brain Res 124:29–32CrossRefPubMed
Metadata
Title
Activity in the rat olfactory cortex is correlated with behavioral response to odor: a microPET study
Authors
Philippe Litaudon
Caroline Bouillot
Luc Zimmer
Nicolas Costes
Nadine Ravel
Publication date
01-01-2017
Publisher
Springer Berlin Heidelberg
Published in
Brain Structure and Function / Issue 1/2017
Print ISSN: 1863-2653
Electronic ISSN: 1863-2661
DOI
https://doi.org/10.1007/s00429-016-1235-8

Other articles of this Issue 1/2017

Brain Structure and Function 1/2017 Go to the issue