Literature DB >> 31959697

Age-Dependent Remarkable Regenerative Potential of the Dentate Gyrus Provided by Intrinsic Stem Cells.

Tamar Licht1,2, Tirzah Kreisel3,4, Yoav Biala2, Sandesh Mohan2, Yoel Yaari2, Andrey Anisimov5, Kari Alitalo5, Eli Keshet1.   

Abstract

Multiple insults to the brain lead to neuronal cell death, thus raising the question to what extent can lost neurons be replenished by adult neurogenesis. Here we focused on the hippocampus and especially the dentate gyrus (DG), a vulnerable brain region and one of the two sites where adult neuronal stem cells (NSCs) reside. While adult hippocampal neurogenesis was extensively studied with regard to its contribution to cognitive enhancement, we focused on their underestimated capability to repair a massively injured, nonfunctional DG. To address this issue, we inflicted substantial DG-specific damage in mice of either sex either by diphtheria toxin-based ablation of >50% of mature DG granule cells (GCs) or by prolonged brain-specific VEGF overexpression culminating in extensive, highly selective loss of DG GCs (thereby also reinforcing the notion of selective DG vulnerability). The neurogenic system promoted effective regeneration by increasing NSCs proliferation/survival rates, restoring a nearly original DG mass, promoting proper rewiring of regenerated neurons to their afferent and efferent partners, and regaining of lost spatial memory. Notably, concomitantly with the natural age-related decline in the levels of neurogenesis, the regenerative capacity of the hippocampus also subsided with age. The study thus revealed an unappreciated regenerative potential of the young DG and suggests hippocampal NSCs as a critical reservoir enabling recovery from catastrophic DG damage.SIGNIFICANCE STATEMENT Adult hippocampal neurogenesis has been extensively studied in the context of its role in cognitive enhancement, but whether, and to what extent can dentate gyrus (DG)-resident neural stem cells drive regeneration of an injured DG has remained unclear. Here we show that DG neurogenesis acts to replace lost neurons and restore lost functions even following massive (>50%) neuronal loss. Age-related decline of neurogenesis is paralleled by a progressive decline of regenerative capacity. Considering also the exceptional vulnerability of the DG to insults, these findings provide a further rationale for maintaining DG neurogenesis in adult life.
Copyright © 2020 the authors.

Entities:  

Keywords:  VEGF; adult neurogenesis; dentate gyrus; hippocampal plasticity; neural stem cells; regeneration

Year:  2020        PMID: 31959697      PMCID: PMC6989002          DOI: 10.1523/JNEUROSCI.1010-19.2019

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  72 in total

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Authors:  Tamar Licht; Eli Keshet
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Review 3.  Review: adult neurogenesis contributes to hippocampal plasticity.

Authors:  Tomohisa Toda; Fred H Gage
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4.  Division-coupled astrocytic differentiation and age-related depletion of neural stem cells in the adult hippocampus.

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Review 5.  A pathophysiological framework of hippocampal dysfunction in ageing and disease.

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6.  Dynamic changes in the response of cells to positive hedgehog signaling during mouse limb patterning.

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7.  Necrosis of granule cells of hippocampus in adrenocortical failure.

Authors:  J Maehlen; A Torvik
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8.  Neural stem and progenitor cells in nestin-GFP transgenic mice.

Authors:  John L Mignone; Valery Kukekov; Ann-Shyn Chiang; Dennis Steindler; Grigori Enikolopov
Journal:  J Comp Neurol       Date:  2004-02-09       Impact factor: 3.215

9.  A novel animal model of hippocampal cognitive deficits, slow neurodegeneration, and neuroregeneration.

Authors:  Simon C Spanswick; Hugo Lehmann; Robert J Sutherland
Journal:  J Biomed Biotechnol       Date:  2011-03-15

10.  ZnT3 Gene Deletion Reduces Colchicine-Induced Dentate Granule Cell Degeneration.

Authors:  Bo Young Choi; Dae Ki Hong; Sang Won Suh
Journal:  Int J Mol Sci       Date:  2017-10-19       Impact factor: 5.923

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Review 2.  The interplay of neurovasculature and adult hippocampal neurogenesis.

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Review 3.  Therapeutic Plasticity of Neural Stem Cells.

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