Literature DB >> 17698999

Definition of the orbital cortex in relation to specific connections with limbic and visceral structures and other cortical regions.

Joseph L Price1.   

Abstract

The orbitofrontal cortex is often defined topographically as the cortex on the ventral surface of the frontal lobe. Unfortunately, this definition is not consistently used, and it obscures distinct connectional and functional systems within the orbital cortex. It is difficult to interpret data on the orbital cortex that do not take these different systems into account. Analysis of cortico-cortical connections between areas in the orbital and medial prefrontal cortex indicate two distinct networks in this region. One system, called the orbital network, involves most of the areas in the central orbital cortex. The other system, has been called the medial prefrontal network, though it is actually more complex, since it includes areas on the medial wall, in the medial orbital cortex, and in the posterolateral orbital cortex. Some areas in the medial orbital cortex are involved in both networks. Connections to other brain areas support the distinction between the networks. The orbital network receives several sensory inputs, from olfactory cortex, taste cortex, somatic sensory association cortex, and visual association cortex, and is connected with multisensory areas in the ventrolateral prefrontal cortex and perirhinal cortex. The medial network has outputs to the hypothalamus and brain stem and connects to a cortical circuit that includes the rostral part of the superior temporal gyrus and dorsal bank of the superior temporal sulcus, the cingulate and retrosplenial cortex, the entorhinal and posterior parahippocampal cortex, and the dorsomedial prefrontal cortex.

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Mesh:

Year:  2007        PMID: 17698999     DOI: 10.1196/annals.1401.008

Source DB:  PubMed          Journal:  Ann N Y Acad Sci        ISSN: 0077-8923            Impact factor:   5.691


  164 in total

1.  fMRI response in the medial prefrontal cortex predicts cocaine but not sucrose self-administration history.

Authors:  Hanbing Lu; Svetlana Chefer; Pradeep K Kurup; Karine Guillem; D Bruce Vaupel; Thomas J Ross; Anna Moore; Yihong Yang; Laura L Peoples; Elliot A Stein
Journal:  Neuroimage       Date:  2012-06-01       Impact factor: 6.556

Review 2.  Behavioral outcomes of late-onset or early-onset orbital frontal cortex (areas 11/13) lesions in rhesus monkeys.

Authors:  Jocelyne Bachevalier; Christopher J Machado; Andy Kazama
Journal:  Ann N Y Acad Sci       Date:  2011-12       Impact factor: 5.691

Review 3.  The orbitofrontal cortex and the computation of subjective value: consolidated concepts and new perspectives.

Authors:  Camillo Padoa-Schioppa; Xinying Cai
Journal:  Ann N Y Acad Sci       Date:  2011-12       Impact factor: 5.691

4.  Updating beliefs for a decision: neural correlates of uncertainty and underconfidence.

Authors:  Emily R Stern; Richard Gonzalez; Robert C Welsh; Stephan F Taylor
Journal:  J Neurosci       Date:  2010-06-09       Impact factor: 6.167

5.  Orbitofrontal cortex and impulsivity in borderline personality disorder: an MRI study of baseline brain perfusion.

Authors:  Robert Christian Wolf; Philipp Arthur Thomann; Fabio Sambataro; Nenad Vasic; Markus Schmid; Nadine Donata Wolf
Journal:  Eur Arch Psychiatry Clin Neurosci       Date:  2012-03-11       Impact factor: 5.270

6.  Separate value comparison and learning mechanisms in macaque medial and lateral orbitofrontal cortex.

Authors:  M P Noonan; M E Walton; T E J Behrens; J Sallet; M J Buckley; M F S Rushworth
Journal:  Proc Natl Acad Sci U S A       Date:  2010-11-08       Impact factor: 11.205

7.  Burning odor-elicited anxiety in OEF/OIF combat veterans: Inverse relationship to gray matter volume in olfactory cortex.

Authors:  Bernadette M Cortese; Patrick A McConnell; Brett Froeliger; Kimberly Leslie; Thomas W Uhde
Journal:  J Psychiatr Res       Date:  2015-08-29       Impact factor: 4.791

8.  Impact of medial orbital cortex and medial subthalamic nucleus inactivation, individually and together, on the maintenance of cocaine self-administration behavior in rats.

Authors:  K M Kantak; L M Yager; M F Brisotti
Journal:  Behav Brain Res       Date:  2012-10-22       Impact factor: 3.332

9.  Neuronal activation in orbitofrontal cortex subregions: Cfos expression following cue-induced reinstatement of cocaine-seeking behavior.

Authors:  Aneesh Bal; Jennifer Gerena; Doris I Olekanma; Amy A Arguello
Journal:  Behav Neurosci       Date:  2019-05-06       Impact factor: 1.912

10.  A potential role for the midbrain in integrating fat-free mass determined energy needs: An H2 (15) O PET study.

Authors:  Christopher M Weise; Pradeep Thiyyagura; Eric M Reiman; Kewei Chen; Jonathan Krakoff
Journal:  Hum Brain Mapp       Date:  2015-03-13       Impact factor: 5.038

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