Literature DB >> 26179319

Evolution of the mammalian dentate gyrus.

Robert F Hevner1,2.   

Abstract

The dentate gyrus (DG), a part of the hippocampal formation, has important functions in learning, memory, and adult neurogenesis. Compared with homologous areas in sauropsids (birds and reptiles), the mammalian DG is larger and exhibits qualitatively different phenotypes: 1) folded (C- or V-shaped) granule neuron layer, concave toward the hilus and delimited by a hippocampal fissure; 2) nonperiventricular adult neurogenesis; and 3) prolonged ontogeny, involving extensive abventricular (basal) migration and proliferation of neural stem and progenitor cells (NSPCs). Although gaps remain, available data indicate that these DG traits are present in all orders of mammals, including monotremes and marsupials. The exception is Cetacea (whales, dolphins, and porpoises), in which DG size, convolution, and adult neurogenesis have undergone evolutionary regression. Parsimony suggests that increased growth and convolution of the DG arose in stem mammals concurrently with nonperiventricular adult hippocampal neurogenesis and basal migration of NSPCs during development. These traits could all result from an evolutionary change that enhanced radial migration of NSPCs out of the periventricular zones, possibly by epithelial-mesenchymal transition, to colonize and maintain nonperiventricular proliferative niches. In turn, increased NSPC migration and clonal expansion might be a consequence of growth in the cortical hem (medial patterning center), which produces morphogens such as Wnt3a, generates Cajal-Retzius neurons, and is regulated by Lhx2. Finally, correlations between DG convolution and neocortical gyrification (or capacity for gyrification) suggest that enhanced abventricular migration and proliferation of NSPCs played a transformative role in growth and folding of neocortex as well as archicortex.
© 2015 Wiley Periodicals, Inc.

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Year:  2015        PMID: 26179319      PMCID: PMC4706817          DOI: 10.1002/cne.23851

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


  101 in total

1.  Cell types, lineage, and architecture of the germinal zone in the adult dentate gyrus.

Authors:  Bettina Seri; José Manuel García-Verdugo; Lucia Collado-Morente; Bruce S McEwen; Arturo Alvarez-Buylla
Journal:  J Comp Neurol       Date:  2004-10-25       Impact factor: 3.215

Review 2.  Cortical complexity in cetacean brains.

Authors:  Patrick R Hof; Rebecca Chanis; Lori Marino
Journal:  Anat Rec A Discov Mol Cell Evol Biol       Date:  2005-11

3.  Oblique radial glial divisions in the developing mouse neocortex induce self-renewing progenitors outside the germinal zone that resemble primate outer subventricular zone progenitors.

Authors:  Atsunori Shitamukai; Daijiro Konno; Fumio Matsuzaki
Journal:  J Neurosci       Date:  2011-03-09       Impact factor: 6.167

Review 4.  The cell biology of neurogenesis: toward an understanding of the development and evolution of the neocortex.

Authors:  Elena Taverna; Magdalena Götz; Wieland B Huttner
Journal:  Annu Rev Cell Dev Biol       Date:  2014-06-27       Impact factor: 13.827

5.  Embryonic signaling centers expressing BMP, WNT and FGF proteins interact to pattern the cerebral cortex.

Authors:  Tomomi Shimogori; Victoria Banuchi; Hanyann Y Ng; Jonathan B Strauss; Elizabeth A Grove
Journal:  Development       Date:  2004-11       Impact factor: 6.868

6.  Distinctive population of Gfap-expressing neural progenitors arising around the dentate notch migrate and form the granule cell layer in the developing hippocampus.

Authors:  Tatsunori Seki; Toru Sato; Keiko Toda; Noriko Osumi; Tetsuya Imura; Seiji Shioda
Journal:  J Comp Neurol       Date:  2014-02-01       Impact factor: 3.215

7.  The cortical hem regulates the size and patterning of neocortex.

Authors:  Giuliana Caronia-Brown; Michio Yoshida; Forrest Gulden; Stavroula Assimacopoulos; Elizabeth A Grove
Journal:  Development       Date:  2014-06-19       Impact factor: 6.868

8.  The anatomy of the brain of the bottlenose dolphin (Tursiops truncatus). Rhinic lobe (Rhinencephalon): The archicortex.

Authors:  M S Jacobs; W L McFarland; P J Morgane
Journal:  Brain Res Bull       Date:  1979       Impact factor: 4.077

9.  Hippocampus development and generation of dentate gyrus granule cells is regulated by LEF1.

Authors:  J Galceran; E M Miyashita-Lin; E Devaney; J L Rubenstein; R Grosschedl
Journal:  Development       Date:  2000-02       Impact factor: 6.868

Review 10.  Role of radial glial cells in cerebral cortex folding.

Authors:  Víctor Borrell; Magdalena Götz
Journal:  Curr Opin Neurobiol       Date:  2014-03-12       Impact factor: 6.627

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  17 in total

1.  Early postnatal decabromodiphenyl ether exposure reduces thyroid hormone and astrocyte density in the juvenile mouse dentate gyrus.

Authors:  Caitlyn M Edwards; Deena Small; Tyler Bell; Julian David-Drori; Christina Hansen; Keith Morris-Schaffer; Charlene Canale; John Ng; Vincent P Markowski
Journal:  Physiol Behav       Date:  2020-01-09

2.  Malformations of Cerebral Cortex Development: Molecules and Mechanisms.

Authors:  Gordana Juric-Sekhar; Robert F Hevner
Journal:  Annu Rev Pathol       Date:  2019-01-24       Impact factor: 23.472

3.  Increased gyrification and aberrant adult neurogenesis of the dentate gyrus in adult rats.

Authors:  Alejandra Magagna-Poveda; Jillian N Moretto; Helen E Scharfman
Journal:  Brain Struct Funct       Date:  2017-06-27       Impact factor: 3.270

4.  Chick Hippocampal Formation Displays Subdivision- and Layer-Selective Expression Patterns of Serotonin Receptor Subfamily Genes.

Authors:  Toshiyuki Fujita; Naoya Aoki; Chihiro Mori; Eiko Fujita; Toshiya Matsushima; Koichi J Homma; Shinji Yamaguchi
Journal:  Front Physiol       Date:  2022-04-08       Impact factor: 4.755

5.  Pallial patterning and the origin of the isocortex.

Authors:  Juan F Montiel; Francisco Aboitiz
Journal:  Front Neurosci       Date:  2015-10-14       Impact factor: 4.677

Review 6.  Radial glial cells in the adult dentate gyrus: what are they and where do they come from?

Authors:  Daniel A Berg; Allison M Bond; Guo-Li Ming; Hongjun Song
Journal:  F1000Res       Date:  2018-03-05

7.  Polycomb Protein EED Regulates Neuronal Differentiation through Targeting SOX11 in Hippocampal Dentate Gyrus.

Authors:  Pei-Pei Liu; Ya-Jie Xu; Shang-Kun Dai; Hong-Zhen Du; Ying-Ying Wang; Xing-Guo Li; Zhao-Qian Teng; Chang-Mei Liu
Journal:  Stem Cell Reports       Date:  2019-06-13       Impact factor: 7.765

Review 8.  Born this way: Hippocampal neurogenesis across the lifespan.

Authors:  Danka A Kozareva; John F Cryan; Yvonne M Nolan
Journal:  Aging Cell       Date:  2019-07-12       Impact factor: 9.304

9.  Whole-brain multimodal MRI phenotyping of periventricular nodular heterotopia.

Authors:  Francesco Deleo; Seok-Jun Hong; Fatemeh Fadaie; Benoit Caldairou; Sidney Krystal; Neda Bernasconi; Andrea Bernasconi
Journal:  Neurology       Date:  2020-08-14       Impact factor: 9.910

10.  Sevoflurane Postconditioning Ameliorates Neuronal Migration Disorder Through Reelin/Dab1 and Improves Long-term Cognition in Neonatal Rats After Hypoxic-Ischemic Injury.

Authors:  Yahan Zhang; Qiushi Gao; Ziyi Wu; Hang Xue; Ping Zhao
Journal:  Neurotox Res       Date:  2021-07-05       Impact factor: 3.911

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