Literature DB >> 17372974

Origin and topography of fibers contributing to the fornix in macaque monkeys.

Richard C Saunders1, John P Aggleton.   

Abstract

The distribution of neurons contributing to the fornix was mapped by placing the retrograde tracer horseradish peroxidase (HRP) in polyacrylamide gels in different medial to lateral locations within the fornix of three rhesus monkeys (Macaca mulatta). The HRP was placed from 3 to 5 mm caudal to the descending columns of the fornix. Additional information came from a series of rhesus and cynomolgus monkeys (Macaca fasciculata) with anterograde tracer injections in the medial temporal lobe. The hippocampal formation, including the subiculum and presubiculum, together with the entorhinal cortex (EC) and perirhinal cortex (area 35) contribute numerous axons to the fornix in a topographical manner. In contrast, the lateral perirhinal cortex (area 36) and parahippocampal cortical areas TF and TH only contained a handful of cells labeled via the fornix. The medial fornix originates from cells in the caudal half of the subiculum, the lamina principalis interna of the caudal half of the presubiculum, and from the perirhinal cortex (area 35). The intermediate portion of the fornix (i.e., that part midway between the midline and most lateral parts of the fornix) originates from cells in the rostral half of the subiculum and prosubiculum, the anterior presubiculum (only from the lamina principalis externa), the caudal presubiculum (primarily from lamina principalis interna), the rostral half of CA3, the EC (primarily 28I and 28M), and the perirhinal cortex (area 35). The lateral parts of the fornix arise from the rostral EC (28L only) and the most rostral portion of CA3. Subcortically, the medial septum, nucleus of the diagonal band, supramammillary nucleus, lateral hypothalamus, dorsal raphe nucleus, and the thalamic nucleus reuniens all send projections through the fornix, which presumably terminate in the hippocampus and adjacent parahippocampal region. These results not only help to define those regions that project via the fornix, but also reveal those subcortical projections to the hippocampal formation most likely to rely entirely on nonfornical pathways.

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Year:  2007        PMID: 17372974     DOI: 10.1002/hipo.20276

Source DB:  PubMed          Journal:  Hippocampus        ISSN: 1050-9631            Impact factor:   3.899


  54 in total

1.  Fornix deep brain stimulation circuit effect is dependent on major excitatory transmission via the nucleus accumbens.

Authors:  Erika K Ross; Joo Pyung Kim; Megan L Settell; Seong Rok Han; Charles D Blaha; Hoon-Ki Min; Kendall H Lee
Journal:  Neuroimage       Date:  2016-01-11       Impact factor: 6.556

2.  Altered fimbria-fornix white matter integrity in anorexia nervosa predicts harm avoidance.

Authors:  Demitry Kazlouski; Michael D H Rollin; Jason Tregellas; Megan E Shott; Leah M Jappe; Jennifer O Hagman; Tamara Pryor; Tony T Yang; Guido K W Frank
Journal:  Psychiatry Res       Date:  2011-04-17       Impact factor: 3.222

3.  Dissociable roles for cortical and subcortical structures in memory retrieval and acquisition.

Authors:  Anna S Mitchell; Philip G F Browning; Charles R E Wilson; Mark G Baxter; David Gaffan
Journal:  J Neurosci       Date:  2008-08-20       Impact factor: 6.167

4.  Cortico-cortical, cortico-striatal, and cortico-thalamic white matter fiber tracts generated in the macaque brain via dynamic programming.

Authors:  J Tilak Ratnanather; Rakesh M Lal; Michael An; Clare B Poynton; Muwei Li; Hangyi Jiang; Kenichi Oishi; Lynn D Selemon; Susumu Mori; Michael I Miller
Journal:  Brain Connect       Date:  2013-09-18

5.  Loss of fornix white matter volume as a predictor of cognitive impairment in cognitively normal elderly individuals.

Authors:  Evan Fletcher; Mekala Raman; Philip Huebner; Amy Liu; Dan Mungas; Owen Carmichael; Charles DeCarli
Journal:  JAMA Neurol       Date:  2013-11       Impact factor: 18.302

6.  Uncovering a Role for the Dorsal Hippocampal Commissure in Recognition Memory.

Authors:  M Postans; G D Parker; H Lundell; M Ptito; K Hamandi; W P Gray; J P Aggleton; T B Dyrby; D K Jones; M Winter
Journal:  Cereb Cortex       Date:  2020-03-14       Impact factor: 5.357

Review 7.  Unraveling the contributions of the diencephalon to recognition memory: a review.

Authors:  John P Aggleton; Julie R Dumont; Elizabeth Clea Warburton
Journal:  Learn Mem       Date:  2011-05-19       Impact factor: 2.460

8.  Contributions of the hippocampus and entorhinal cortex to rapid visuomotor learning in rhesus monkeys.

Authors:  Tianming Yang; Rachel L Bavley; Kevin Fomalont; Kevin J Blomstrom; Andrew R Mitz; Janita Turchi; Peter H Rudebeck; Elisabeth A Murray
Journal:  Hippocampus       Date:  2014-05-06       Impact factor: 3.899

9.  Western diet, obesity and bariatric surgery sequentially modulated anxiety, eating patterns and brain responses to sucrose in adult Yucatan minipigs.

Authors:  Yentl Gautier; Damien Bergeat; Yann Serrand; Noémie Réthoré; Mathilde Mahérault; Charles-Henri Malbert; Paul Meurice; Nicolas Coquery; Romain Moirand; David Val-Laillet
Journal:  Sci Rep       Date:  2020-11-18       Impact factor: 4.379

10.  Severe scene learning impairment, but intact recognition memory, after cholinergic depletion of inferotemporal cortex followed by fornix transection.

Authors:  Philip G F Browning; David Gaffan; Paula L Croxson; Mark G Baxter
Journal:  Cereb Cortex       Date:  2009-05-15       Impact factor: 5.357

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