Literature DB >> 6306065

The topographic organization of associational fibers of the olfactory system in the rat, including centrifugal fibers to the olfactory bulb.

M B Luskin, J L Price.   

Abstract

This study analyzed the topographic organization of the associational fibers within the olfactory cortex of the rat, by using the autoradiographic method. Small injections of 3H-leucine were placed in all of the subdivisions of the olfactory cortex, to label selectively the fibers arising in each area. Intracortical fibers were identified from all of the olfactory cortical areas except the olfactory tubercle and were classified into two major systems (the layer Ib system and the layer II-deep Ib system) on the basis of their laminar pattern of termination (see Luskin and Price, '83). The layer Ib fiber system arises in the anterior olfactory nucleus, piriform cortex, and lateral entorhinal area, and is broadly organized in relation to the lateral olfactory tract. Cortical areas deep to or near the lateral olfactory tract are preferentially interconnected with areas near the tract, while parts of the cortex lateral and caudal to the lateral olfactory tract are most heavily interconnected with areas lateral, caudal, and medial to the tract. Commissural projections from the anterior olfactory nucleus and the anterior piriform cortex match some (but not all) components of the ipsilateral layer Ib fiber system. The layer II-deep Ib fiber system arises in three small areas--the ventral tenia tecta, the dorsal peduncular cortex, and the periamygdaloid cortex. The fibers from the ventral tenia tecta terminate in layer II of the anterior olfactory nucleus and are topographically organized. The fibers from the dorsal peduncular cortex and the periamygdaloid cortex are more widely distributed, especially in the lateral and caudal parts of the cortex. Two other intracortical projections do not fit into either of these fiber systems. The nucleus of the lateral olfactory tract projects bilaterally to the islands of Calleja and the medial edge of the anterior piriform cortex. The anterior cortical nucleus projects to many parts of the olfactory cortex, but the fibers end in both superficial and deep parts of layer I (layer Ia and Ib). There are projections from several of the olfactory cortical areas to the cortical areas surrounding the olfactory cortex. Virtually all of the olfactory areas also project to the ventral and dorsal endopiriform nuclei deep to the piriform cortex and/or to the polymorph zone deep to the olfactory tubercle. In addition, projections have been demonstrated to the deep amygdaloid nuclei, especially from the more ventromedial and caudal parts of the olfactory cortex.

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Year:  1983        PMID: 6306065     DOI: 10.1002/cne.902160305

Source DB:  PubMed          Journal:  J Comp Neurol        ISSN: 0021-9967            Impact factor:   3.215


  123 in total

Review 1.  Zonal organization of the mammalian main and accessory olfactory systems.

Authors:  K Mori; H von Campenhause; Y Yoshihara
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2000-12-29       Impact factor: 6.237

2.  New features of connectivity in piriform cortex visualized by intracellular injection of pyramidal cells suggest that "primary" olfactory cortex functions like "association" cortex in other sensory systems.

Authors:  D M Johnson; K R Illig; M Behan; L B Haberly
Journal:  J Neurosci       Date:  2000-09-15       Impact factor: 6.167

3.  Membrane and synaptic properties of pyramidal neurons in the anterior olfactory nucleus.

Authors:  Matthew J McGinley; Gary L Westbrook
Journal:  J Neurophysiol       Date:  2010-12-01       Impact factor: 2.714

Review 4.  Functional neuroanatomy of amygdalohippocampal interconnections and their role in learning and memory.

Authors:  Alexander J McDonald; David D Mott
Journal:  J Neurosci Res       Date:  2016-02-14       Impact factor: 4.164

5.  Adult depression-like behavior, amygdala and olfactory cortex functions are restored by odor previously paired with shock during infant's sensitive period attachment learning.

Authors:  Yannick Sevelinges; Anne-Marie Mouly; Charlis Raineki; Stéphanie Moriceau; Christina Forest; Regina M Sullivan
Journal:  Dev Cogn Neurosci       Date:  2011-01       Impact factor: 6.464

6.  Olfactory fear conditioning induces field potential potentiation in rat olfactory cortex and amygdala.

Authors:  Yannick Sevelinges; Rémi Gervais; Belkacem Messaoudi; Lionel Granjon; Anne-Marie Mouly
Journal:  Learn Mem       Date:  2004-11-10       Impact factor: 2.460

Review 7.  Sniffing and spatiotemporal coding in olfaction.

Authors:  John W Scott
Journal:  Chem Senses       Date:  2005-12-14       Impact factor: 3.160

8.  Associative encoding in anterior piriform cortex versus orbitofrontal cortex during odor discrimination and reversal learning.

Authors:  Matthew R Roesch; Thomas A Stalnaker; Geoffrey Schoenbaum
Journal:  Cereb Cortex       Date:  2006-05-12       Impact factor: 5.357

Review 9.  Dopamine reward circuitry: two projection systems from the ventral midbrain to the nucleus accumbens-olfactory tubercle complex.

Authors:  Satoshi Ikemoto
Journal:  Brain Res Rev       Date:  2007-05-17

10.  Cortical feedback control of olfactory bulb circuits.

Authors:  Alison M Boyd; James F Sturgill; Cindy Poo; Jeffry S Isaacson
Journal:  Neuron       Date:  2012-12-20       Impact factor: 17.173

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