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Synapse
March 1, 1999Annual Review of Neuroscience2,079 citations

Stress and Hippocampal Plasticity

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BMBruce S. McEwen

Key Points

  • To examine the effects of stress hormones and excitatory neurochemicals on structural plasticity, neurogenesis, and remodeling within the vulnerable hippocampus.
  • Synthesis of neurobiological evidence evaluating structural remodeling, neurogenesis, and hormonal modulation across CA3 and dentate gyrus subregions.
  • Evaluation of underlying molecular pathways involving glucocorticoids, excitatory amino acids, and NMDA receptor activation.
  • Repeated stress causes dendritic atrophy in CA3 pyramidal neurons, whereas both acute and chronic stress suppress granule cell neurogenesis in the dentate gyrus.
  • Glucocorticoids, excitatory amino acids, and NMDA receptors mediate stress-induced structural changes and contribute to neuronal death during ischemic or seizure events.
  • Stress-driven hippocampal structural alterations correspond to human declarative, spatial, and contextual memory impairments, emphasizing the therapeutic importance of differentiating reversible atrophy from cell death.

Abstract

The hippocampus is a target of stress hormones, and it is an especially plastic and vulnerable region of the brain. It also responds to gonadal, thyroid, and adrenal hormones, which modulate changes in synapse formation and dendritic structure and regulate dentate gyrus volume during development and in adult life. Two forms of structural plasticity are affected by stress: Repeated stress causes atrophy of dendrites in the CA3 region, and both acute and chronic stress suppresses neurogenesis of dentate gyrus granule neurons. Besides glucocorticoids, excitatory amino acids and N-methyl-D-aspartate (NMDA) receptors are involved in these two forms of plasticity as well as in neuronal death that is caused in pyramidal neurons by seizures and by ischemia. The two forms of hippocampal structural plasticity are relevant to the human hippocampus, which undergoes a selective atrophy in a number of disorders, accompanied by deficits in declarative episodic, spatial, and contextual memory performance. It is important, from a therapeutic standpoint, to distinguish between a permanent loss of cells and a reversible atrophy.

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Cite This Study

Bruce S. McEwen (1999) studied this question.

synapsesocial.com/papers/6a128ccee407b266963524a4https://doi.org/10.1146/annurev.neuro.22.1.105
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