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Published in: Brain Structure and Function 1/2014

01-01-2014 | Original Article

Cytoarchitecture of mouse and rat cingulate cortex with human homologies

Authors: Brent A. Vogt, George Paxinos

Published in: Brain Structure and Function | Issue 1/2014

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Abstract

A gulf exists between cingulate area designations in human neurocytology and those used in rodent brain atlases with a major underpinning of the former being midcingulate cortex (MCC). The present study used images extracted from the Franklin and Paxinos mouse atlas and Paxinos and Watson rat atlas to demonstrate areas comprising MCC and modifications of anterior cingulate (ACC) and retrosplenial cortices. The laminar architecture not available in the atlases is also provided for each cingulate area. Both mouse and rat have a MCC with neurons in all layers that are larger than in ACC and layer Va has particularly prominent neurons and reduced neuron densities. An undifferentiated ACC area 33 lies along the rostral callosal sulcus in rat but not in mouse and area 32 has dorsal and ventral subdivisions with the former having particularly large pyramidal neurons in layer Vb. Both mouse and rat have anterior and posterior divisions of retrosplenial areas 29c and 30, although their cytology is different in rat and mouse. Maps of the rodent cingulate cortices provide for direct comparisons with each region in the human including MCC and it is significant that rodents do not have a posterior cingulate region composed of areas 23 and 31 like the human. It is concluded that rodents and primates, including humans, possess a MCC and this homology along with those in ACC and retrosplenial cortices permit scientists inspired by human considerations to test hypotheses on rodent models of human diseases.
Literature
go back to reference Bacon SJ, Smith AD (1993) A monosynaptic pathway from an identified vasomotor centre in the medial prefrontal cortex to an autonomic area in the thoracic spinal cord. Neuroscience 54:719–728PubMedCrossRef Bacon SJ, Smith AD (1993) A monosynaptic pathway from an identified vasomotor centre in the medial prefrontal cortex to an autonomic area in the thoracic spinal cord. Neuroscience 54:719–728PubMedCrossRef
go back to reference Brodmann K (1909) Vergleichende Lokalisationslehre der Grosshirnrinde in ihren Prinzipiendargestelltauf Grund des Zellenbaues. Barth, Leipzig Brodmann K (1909) Vergleichende Lokalisationslehre der Grosshirnrinde in ihren Prinzipiendargestelltauf Grund des Zellenbaues. Barth, Leipzig
go back to reference Bush G, Vogt BA, Holmes J, Dale AM, Greve D, Jenike MA, Rosen BR (2002) Dorsal anterior cingulate cortex: a role in reward-based decision-making. Proc Natl Acad Sci 99:523–528PubMedCrossRef Bush G, Vogt BA, Holmes J, Dale AM, Greve D, Jenike MA, Rosen BR (2002) Dorsal anterior cingulate cortex: a role in reward-based decision-making. Proc Natl Acad Sci 99:523–528PubMedCrossRef
go back to reference Franklin KBJ, Paxinos G (2007) The mouse brain in stereotaxic coordinates, 3rd edn. Academic Press, San Diego Franklin KBJ, Paxinos G (2007) The mouse brain in stereotaxic coordinates, 3rd edn. Academic Press, San Diego
go back to reference Gabbott PLA, Warner TA, Jays PRL, Salway P, Busby SJ (2005) Prefrontal cortex in the rat: projections to subcortical autonomic, motor, and limbic centers. J Comp Neurol 492:145–177PubMedCrossRef Gabbott PLA, Warner TA, Jays PRL, Salway P, Busby SJ (2005) Prefrontal cortex in the rat: projections to subcortical autonomic, motor, and limbic centers. J Comp Neurol 492:145–177PubMedCrossRef
go back to reference Heidbredera CA, Groenewegen HJ (2003) The medial prefrontal cortex in the rat: evidence for a dorso-ventral distinction based upon functional and anatomical characteristics. Neurosci Biobehav Rev 27:555–579CrossRef Heidbredera CA, Groenewegen HJ (2003) The medial prefrontal cortex in the rat: evidence for a dorso-ventral distinction based upon functional and anatomical characteristics. Neurosci Biobehav Rev 27:555–579CrossRef
go back to reference Herkenham M (1976) The connections of the nucleus reunions thalami: evidence for the direct thalamo-hippocampal pathway in rat. J Comp Neurol 177:589–610CrossRef Herkenham M (1976) The connections of the nucleus reunions thalami: evidence for the direct thalamo-hippocampal pathway in rat. J Comp Neurol 177:589–610CrossRef
go back to reference Horikawa K, Kinjo N, Stanley LC, Powell EW (1988) Topographic organization and collateralization of the projections of the anterior and laterodorsal thalamic nuclei to cingulate areas 24 and 29 in the rat. Neurosci Res 6:31–44PubMedCrossRef Horikawa K, Kinjo N, Stanley LC, Powell EW (1988) Topographic organization and collateralization of the projections of the anterior and laterodorsal thalamic nuclei to cingulate areas 24 and 29 in the rat. Neurosci Res 6:31–44PubMedCrossRef
go back to reference Jones BF, Groenewegen HJ, Witter MP (2005) Intrinsic connections of the cingulate cortex in the rat suggest the existence of multiple functionally segregated networks. Neuroscience 133:193–207PubMedCrossRef Jones BF, Groenewegen HJ, Witter MP (2005) Intrinsic connections of the cingulate cortex in the rat suggest the existence of multiple functionally segregated networks. Neuroscience 133:193–207PubMedCrossRef
go back to reference Marini G, Pianca L, Tredici G (1996) Thalamocortical projection from the parafascicular nucleus to layer V pyramidal cells in frontal and cingulate areas of the rat. Neurosci Lett 203:81–84PubMedCrossRef Marini G, Pianca L, Tredici G (1996) Thalamocortical projection from the parafascicular nucleus to layer V pyramidal cells in frontal and cingulate areas of the rat. Neurosci Lett 203:81–84PubMedCrossRef
go back to reference Mayberg HS, Brannan SK, Tekell JL, Silva A, Mahurin RK, McGinnis S, Jerabek PA (2000) Regional metabolic effects of fluoxetine in major depression: Serial changes and relationship to clinical response. Biol Psychiatry 48:830–843PubMedCrossRef Mayberg HS, Brannan SK, Tekell JL, Silva A, Mahurin RK, McGinnis S, Jerabek PA (2000) Regional metabolic effects of fluoxetine in major depression: Serial changes and relationship to clinical response. Biol Psychiatry 48:830–843PubMedCrossRef
go back to reference Morecraft RJ, Tanji J (2009) Cingulofrontal interactions and the cingulate motor areas. In: Vogt BA (ed) Cingulate neurobiology and disease. Oxford University Press, Oxford, pp 113-144 Morecraft RJ, Tanji J (2009) Cingulofrontal interactions and the cingulate motor areas. In: Vogt BA (ed) Cingulate neurobiology and disease. Oxford University Press, Oxford, pp 113-144
go back to reference Palomero-Gallagher N, Vogt BA, Mayberg HS, Schleicher A, Zilles K (2009) Receptor architecture of human cingulate cortex: evaluation of the four region neurobiological model. Hum Brain Mapp 30:2336–2355PubMedCrossRef Palomero-Gallagher N, Vogt BA, Mayberg HS, Schleicher A, Zilles K (2009) Receptor architecture of human cingulate cortex: evaluation of the four region neurobiological model. Hum Brain Mapp 30:2336–2355PubMedCrossRef
go back to reference Paperna T, Malach R (1991) Patterns of sensory intermodality relationships in the cerebral cortex of the rat. J Comp Neurol 308:432–456PubMedCrossRef Paperna T, Malach R (1991) Patterns of sensory intermodality relationships in the cerebral cortex of the rat. J Comp Neurol 308:432–456PubMedCrossRef
go back to reference Paxinos G, Watson C (2007) The rat brain in stereotaxic coordinates, 6th edn. Elsevier Press, New York Paxinos G, Watson C (2007) The rat brain in stereotaxic coordinates, 6th edn. Elsevier Press, New York
go back to reference Rose JE, Woolsey CN (1948) Structure and relations of limbic cortex and anterior thalamic nuclei in rabbit and cat. J Comp Neurol 89:279–340PubMedCrossRef Rose JE, Woolsey CN (1948) Structure and relations of limbic cortex and anterior thalamic nuclei in rabbit and cat. J Comp Neurol 89:279–340PubMedCrossRef
go back to reference Shibata H (1993) Efferent projections from the anterior thalamic nuclei to the cingulate cortex in the rat. J Comp Neurol 330:533–542PubMedCrossRef Shibata H (1993) Efferent projections from the anterior thalamic nuclei to the cingulate cortex in the rat. J Comp Neurol 330:533–542PubMedCrossRef
go back to reference Swanson LW (1999) Brain maps: structure of the rat brain, 2nd edn. Elsevier, Amsterdam Swanson LW (1999) Brain maps: structure of the rat brain, 2nd edn. Elsevier, Amsterdam
go back to reference Tribollet E, Charpak S, Schmidt A, Dubois-Dauphin M, Dreifuss JJ (1989) Appearance and transient expression of oxytocin receptors in fetal, infant and peripubertal rat brain studied by autoradiography and electrophysiology. J Neurosci 9:1764–1773PubMed Tribollet E, Charpak S, Schmidt A, Dubois-Dauphin M, Dreifuss JJ (1989) Appearance and transient expression of oxytocin receptors in fetal, infant and peripubertal rat brain studied by autoradiography and electrophysiology. J Neurosci 9:1764–1773PubMed
go back to reference van Groen T, Wyss JM (1995) Projections from the anterodorsal and anteroventral nucleus of the thalamus to the limbic cortex in the rat. J Comp Neurol 358:584–604PubMedCrossRef van Groen T, Wyss JM (1995) Projections from the anterodorsal and anteroventral nucleus of the thalamus to the limbic cortex in the rat. J Comp Neurol 358:584–604PubMedCrossRef
go back to reference van Groen T, Wyss JM (2003) Connections of the retrosplenial granular b cortex in the rat. J Comp Neurol 463:249–263PubMedCrossRef van Groen T, Wyss JM (2003) Connections of the retrosplenial granular b cortex in the rat. J Comp Neurol 463:249–263PubMedCrossRef
go back to reference van Groen T, Vogt BA, Wyss JM (1993) Interconnections between the thalamus and retrosplenial cortex in the rodent brain. In: Neurobiology of cingulate cortex and limbic thalamus. Birkhäuser, Boston, pp 123–150 van Groen T, Vogt BA, Wyss JM (1993) Interconnections between the thalamus and retrosplenial cortex in the rodent brain. In: Neurobiology of cingulate cortex and limbic thalamus. Birkhäuser, Boston, pp 123–150
go back to reference Vertes RP, Hoover WB (2008) Projections of the paraventricular and paratenial nuclei of the dorsal midline thalamus in the rat. J Comp Neurol 508:212–237PubMedCrossRef Vertes RP, Hoover WB (2008) Projections of the paraventricular and paratenial nuclei of the dorsal midline thalamus in the rat. J Comp Neurol 508:212–237PubMedCrossRef
go back to reference Vogt BA (1993) Structural organization of cingulate cortex: areas, neurons, and somatodendritic transmitter receptors. In: Vogt BA, Gabriel M (eds) Neurobiology of cingulate cortex and limbic thalamus. Birkhäuser Boston, Inc., Boston, pp 19–70 Vogt BA (1993) Structural organization of cingulate cortex: areas, neurons, and somatodendritic transmitter receptors. In: Vogt BA, Gabriel M (eds) Neurobiology of cingulate cortex and limbic thalamus. Birkhäuser Boston, Inc., Boston, pp 19–70
go back to reference Vogt BA (2009) Regions and subregions of the cingulate cortex. In: Vogt BA (ed) Cingulate neurobiology and disease. Oxford University Press: Oxford, pp 3–30 Vogt BA (2009) Regions and subregions of the cingulate cortex. In: Vogt BA (ed) Cingulate neurobiology and disease. Oxford University Press: Oxford, pp 3–30
go back to reference Vogt BA (2013) Cingulate cortex and pain architecture. In: Paxinos G (ed) The rat nervous system, 4th edn. Elsevier, San Diego (in press) Vogt BA (2013) Cingulate cortex and pain architecture. In: Paxinos G (ed) The rat nervous system, 4th edn. Elsevier, San Diego (in press)
go back to reference Vogt BA, Derbyshire SWG (2009) Visceral circuits and cingulate-mediated autonomic functions. In: Vogt BA (ed) Cingulate neurobiology and disease. Oxford University Press, Oxford, pp 219–235 Vogt BA, Derbyshire SWG (2009) Visceral circuits and cingulate-mediated autonomic functions. In: Vogt BA (ed) Cingulate neurobiology and disease. Oxford University Press, Oxford, pp 219–235
go back to reference Vogt BA, Miller M (1983) Cortical connections between rat cingulate cortex and visual, motor and postsubicular cortices. J Comp Neurol 216:192–210PubMedCrossRef Vogt BA, Miller M (1983) Cortical connections between rat cingulate cortex and visual, motor and postsubicular cortices. J Comp Neurol 216:192–210PubMedCrossRef
go back to reference Vogt BA, Palomero-Gallagher N (2012) Cingulate cortex. In: Paxinos G, Mai JK (eds) The human nervous system, 3rd edn. Academic Press, London, pp 943–987CrossRef Vogt BA, Palomero-Gallagher N (2012) Cingulate cortex. In: Paxinos G, Mai JK (eds) The human nervous system, 3rd edn. Academic Press, London, pp 943–987CrossRef
go back to reference Vogt BA, Peters A (1981) Form and distribution of neurons in rat cingulate cortex: areas 32, 24 and 29. J Comp Neurol 195:603–625PubMedCrossRef Vogt BA, Peters A (1981) Form and distribution of neurons in rat cingulate cortex: areas 32, 24 and 29. J Comp Neurol 195:603–625PubMedCrossRef
go back to reference Vogt BA, Gabriel M, Vogt LJ, Poremba A, Jensen EL, Kubota Y, Kang E (1991) Muscarinic receptor binding increases in anterior thalamus and cingulate cortex during discriminative avoidance learning. J Neurosci 11:1508–1514PubMed Vogt BA, Gabriel M, Vogt LJ, Poremba A, Jensen EL, Kubota Y, Kang E (1991) Muscarinic receptor binding increases in anterior thalamus and cingulate cortex during discriminative avoidance learning. J Neurosci 11:1508–1514PubMed
go back to reference Vogt BA, Nimchinsky EA, Vogt LJ, Hof PR (1995) Human cingulate cortex: surface features, flat maps, and cytoarchitecture. J Comp Neurol 359:490–506PubMedCrossRef Vogt BA, Nimchinsky EA, Vogt LJ, Hof PR (1995) Human cingulate cortex: surface features, flat maps, and cytoarchitecture. J Comp Neurol 359:490–506PubMedCrossRef
go back to reference Vogt BA, Vogt LJ, Farber NB (2004) Cingulate cortex and models of disease. In: Paxinos G (ed) The rat nervous system, 3rd edn. pp 705–727 Vogt BA, Vogt LJ, Farber NB (2004) Cingulate cortex and models of disease. In: Paxinos G (ed) The rat nervous system, 3rd edn. pp 705–727
go back to reference Wager TD, Rilling JK, Smith EE, Sokolik A, Casey KL, Davidson RJ, Kosslyn SM, Rose RM, Cohen JD (2004) Placebo-induced changes in fMRI in the anticipation and experience of pain. Science 303:1162–1167PubMedCrossRef Wager TD, Rilling JK, Smith EE, Sokolik A, Casey KL, Davidson RJ, Kosslyn SM, Rose RM, Cohen JD (2004) Placebo-induced changes in fMRI in the anticipation and experience of pain. Science 303:1162–1167PubMedCrossRef
go back to reference Wiesendanger R, Wiesendanger M (1982a) The corticopontine system in the rat. I. Mapping of corticopontine neurons. J Comp Neurol 208:215–226PubMedCrossRef Wiesendanger R, Wiesendanger M (1982a) The corticopontine system in the rat. I. Mapping of corticopontine neurons. J Comp Neurol 208:215–226PubMedCrossRef
go back to reference Wiesendanger R, Wiesendanger M (1982b) The corticopontine system in the rat. II. The projection pattern. J Comp Neurol 208:227–238PubMedCrossRef Wiesendanger R, Wiesendanger M (1982b) The corticopontine system in the rat. II. The projection pattern. J Comp Neurol 208:227–238PubMedCrossRef
Metadata
Title
Cytoarchitecture of mouse and rat cingulate cortex with human homologies
Authors
Brent A. Vogt
George Paxinos
Publication date
01-01-2014
Publisher
Springer Berlin Heidelberg
Published in
Brain Structure and Function / Issue 1/2014
Print ISSN: 1863-2653
Electronic ISSN: 1863-2661
DOI
https://doi.org/10.1007/s00429-012-0493-3

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