Literature DB >> 17195878

Research update: neurogenesis in adult brain and neuropsychiatric disorders.

Gregory A Elder1, Rita De Gasperi, Miguel A Gama Sosa.   

Abstract

Until recently neurogenesis in mammals was considered to occur only during the embryonic and early post-natal periods and to have no significant role in the adult nervous system. However, it is now accepted that neurogenesis occurs in two brain regions in adult mammals, namely, the hippocampus and olfactory bulb. In both regions new neurons arise from a resident population of neural progenitor cells that are maintained throughout adult life. Hippocampal neurogenesis is required for some types of hippocampal-dependent learning. Many factors enhance hippocampal neurogenesis including hormones, growth factors, drugs, neurotransmitters, and physical exercise as well as learning a hippocampal-dependent task. Other factors suppress hippocampal neurogenesis; these include aging, stress, glucocorticoids and stimuli that activate the pituitary/adrenal axis. Recently much attention has become focused on the relevance of hippocampal neurogenesis to the pathophysiology and treatment of mood disorders. Indeed all major pharmacological and non-pharmacological treatments for depression enhance hippocampal neurogenesis and suppressing hippocampal neurogenesis in mice blocks behavioral responses in some antidepressant-sensitive tests. Altered hippocampal neurogenesis may also play a pathophysiological role in neurodegenerative disorders such as Alzheimer's disease. How much neurogenesis occurs normally in other brain regions is unclear. Neural progenitors are found throughout the neuraxis including both neurogenic and non-neurogenic regions. When cultured in vitro or isolated and transplanted back into neurogenic brain regions, these cells can differentiate into neurons although in their in situ location they seem to behave as lineage-restricted glial progenitors. The environmental cues that limit the potential of progenitor cells in non-neurogenic brain regions are unknown. However, an emerging view is that astrocytes, a subset of which also functions as neural progenitor cells, are critical in regulating the local environment. After transplantation into adult brain, neural stem cells are capable of surviving and differentiating into both neurons and glial cells, offering hope that stem cell therapy may be utilized to treat a variety of neurological and perhaps psychiatric disorders. The widespread existence of endogenous neural progenitors even in non-neurogenic brain regions also offers hope that the potential of these cells may be harnessed to repair cellular injuries caused by injuries such as stroke, trauma or neurodegenerative diseases. While obstacles remain to both approaches, stem-cell-based therapies remain an area of intense research interest.

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Year:  2006        PMID: 17195878

Source DB:  PubMed          Journal:  Mt Sinai J Med        ISSN: 0027-2507


  33 in total

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Review 2.  Specifying the neuropsychology of affective disorders: clinical, demographic and neurobiological factors.

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3.  Progress in the development of new drugs in Alzheimer's disease.

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4.  Global and regional alterations of hippocampal anatomy in long-term meditation practitioners.

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5.  Differentiating the Influences of Aging and Adiposity on Brain Weights, Levels of Serum and Brain Cytokines, Gastrointestinal Hormones, and Amyloid Precursor Protein.

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Review 6.  Synucleinopathies: common features and hippocampal manifestations.

Authors:  Weiwei Yang; Shun Yu
Journal:  Cell Mol Life Sci       Date:  2016-11-08       Impact factor: 9.261

Review 7.  The subependymal zone neurogenic niche: a beating heart in the centre of the brain: how plastic is adult neurogenesis? Opportunities for therapy and questions to be addressed.

Authors:  Ilias Kazanis
Journal:  Brain       Date:  2009-09-22       Impact factor: 13.501

8.  Challenges of using MR spectroscopy to detect neural progenitor cells in vivo.

Authors:  Z Dong; W Dreher; D Leibfritz; B S Peterson
Journal:  AJNR Am J Neuroradiol       Date:  2009-04-08       Impact factor: 3.825

Review 9.  Presenilin transgenic mice as models of Alzheimer's disease.

Authors:  Gregory A Elder; Miguel A Gama Sosa; Rita De Gasperi; Dara L Dickstein; Patrick R Hof
Journal:  Brain Struct Funct       Date:  2009-11-18       Impact factor: 3.270

Review 10.  Pathways linking late-life depression to persistent cognitive impairment and dementia.

Authors:  Meryl A Butters; Jeffrey B Young; Oscar Lopez; Howard J Aizenstein; Benoit H Mulsant; Charles F Reynolds; Steven T DeKosky; James T Becker
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