首页> 外文期刊>Neuroscience: An International Journal under the Editorial Direction of IBRO >Short exposure to an enriched environment accelerates plasticity in the barrel cortex of adult rats.
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Short exposure to an enriched environment accelerates plasticity in the barrel cortex of adult rats.

机译:短时间暴露于丰富的环境会加速成年大鼠桶状皮质的可塑性。

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摘要

Cortical sensory neurons adapt their response properties to use and disuse of peripheral receptors in their receptive field. Changes in synaptic strength can be generated in cortex by simply altering the balance of input activity, so that a persistent bias in activity levels modifies cortical receptive field properties. Such activity-dependent plasticity in cortical cell responses occurs in rat cortex when all but two whiskers are trimmed for a period of time at any age. The up-regulation of evoked responses to the intact whiskers is first seen within 24 h in the supragranular layers [Laminar comparison of somatosensory cortical plasticity. Science 265(5180):1885-1888] and continues until a new stable state is achieved [Experience-dependent plasticity in adult rat barrel cortex. Proc Natl Acad Sci U S A 90(5):2082-2086; Armstrong-James M, Diamond ME, Ebner FF (1994) An innocuous bias in whisker use in adult rat modifies receptive fields of barrel cortex neurons. J Neurosci 14:6978-6991]. These and manyother results suggest that activity-dependent changes in cortical cell responses have an accumulation threshold that can be achieved more quickly by increasing the spike rate arising from the active region of the receptive field. Here we test the hypothesis that the rate of neuronal response change can be accelerated by placing the animals in a high activity environment after whisker trimming. Test stimuli reveal an highly significant receptive field bias in response to intact and trimmed whiskers in layer IV as well as in layers II-III neurons in only 15 h after whisker trimming. Layer IV barrel cells fail to show plasticity after 15-24 h in a standard cage environment, but produce a response bias when activity is elevated by the enriched environment. We conclude that elevated activity achieves the threshold for response modification more quickly, and this, in turn, accelerates the rate of receptive field plasticity.
机译:皮质感觉神经元使它们的反应特性适应于在其感受野中使用和停用外周受体。只需改变输入活动的平衡,即可在皮质中产生突触强度的变化,因此活动水平的持续偏差会改变皮质的感受野特性。当在任何年龄修剪除两个晶须以外的所有晶须一段时间后,这种皮质细胞反应中的活动依赖性可塑性就会发生。最初对完整晶须的诱发反应的上调首先是在24小时内在颗粒上层中发现的[体感皮质可塑性的层流比较。 Science 265(5180):1885-1888]并持续到达到新的稳定状态[成年大鼠桶状皮质的经验依赖性可塑性。美国国家科学院院刊90(5):2082-2086; Armstrong-James M,Diamond ME,Ebner FF(1994)成年大鼠晶须使用中的无害偏向改变了桶状皮质神经元的感受野。神经科学杂志14:6978-6991]。这些以及许多其他结果表明,皮质细胞反应中与活动有关的变化具有累积阈值,可以通过增加由感受野的活跃区域引起的尖峰频率来更快地实现累积阈值。在这里,我们测试了这样的假说:通过将动物置于晶须修剪后的高活动环境中,可以加快神经元反应变化的速率。测试刺激显示,在晶须修整后仅15小时内,对IV层以及II-III层神经元的完整晶须和修整的晶须作出响应时,就显示出高度显着的接受电场偏置。在标准笼环境中,IV层桶形细胞在15-24小时后无法显示可塑性,但在富集环境下提高活性时会产生响应偏差。我们得出的结论是,活动增加可更快地达到反应修饰的阈值,这反过来又加快了感受野可塑性的速度。

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