Literature DB >> 21613496

Evidence for reduced experience-dependent dendritic spine plasticity in the aging prefrontal cortex.

Erik B Bloss1, William G Janssen, Daniel T Ohm, Frank J Yuk, Shannon Wadsworth, Karl M Saardi, Bruce S McEwen, John H Morrison.   

Abstract

Cognitive functions that require the prefrontal cortex are highly sensitive to aging in humans, nonhuman primates, and rodents, although the neurobiological correlates of this vulnerability remain largely unknown. It has been proposed that dendritic spines represent the primary site of structural plasticity in the adult brain, and recent data have supported the hypothesis that aging is associated with alterations of dendritic spine morphology and plasticity in prefrontal cortex. However, no study to date has directly examined whether aging alters the capacity for experience-dependent spine plasticity in aging prefrontal neurons. To address this possibility, we used young, middle-aged, and aged rats in a behavioral stress paradigm known to produce spine remodeling in prefrontal cortical neurons. In young rats, stress resulted in dendritic spine loss and altered patterns of spine morphology; in contrast, spines from middle-aged and aged animals were remarkably stable and did not show evidence of remodeling. The loss of stress-induced spine plasticity observed in aging rats occurred alongside robust age-related reductions in spine density and shifts in remaining spine morphology. Together, the data presented here provide the first evidence that experience-dependent spine plasticity is altered by aging in prefrontal cortex, and support a model in which dendritic spines become progressively less plastic in the aging brain.

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Year:  2011        PMID: 21613496      PMCID: PMC3398699          DOI: 10.1523/JNEUROSCI.0839-11.2011

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


  55 in total

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Review 6.  Remodeling of axo-spinous synapses in the pathophysiology and treatment of depression.

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7.  Selective Loss of Thin Spines in Area 7a of the Primate Intraparietal Sulcus Predicts Age-Related Working Memory Impairment.

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Review 9.  Dendritic spine changes associated with normal aging.

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