首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Elevated postsynaptic (Ca2+)i and L-type calcium channel activity in aged hippocampal neurons: relationship to impaired synaptic plasticity.
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Elevated postsynaptic (Ca2+)i and L-type calcium channel activity in aged hippocampal neurons: relationship to impaired synaptic plasticity.

机译:老年海马神经元突触后(Ca2 +)i和L型钙通道活性升高:与受损的突触可塑性的关系。

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Considerable evidence supports a Ca(2+) dysregulation hypothesis of brain aging and Alzheimer's disease. However, it is still not known whether (1) intracellular [Ca(2+)](i) is altered in aged brain neurons during synaptically activated neuronal activity; (2) altered [Ca(2+)](i) is directly correlated with impaired neuronal plasticity; or (3) the previously observed age-related increase in L-type voltage-sensitive Ca(2+) channel (L-VSCC) density in hippocampal neurons is sufficient to impair synaptic plasticity. Here, we used confocal microscopy to image [Ca(2+)](i) in single CA1 neurons in hippocampal slices of young-adult and aged rats during repetitive synaptic activation. Simultaneously, we recorded intracellular EPSP frequency facilitation (FF), a form of short-term synaptic plasticity that is impaired with aging and inversely correlated with cognitive function. Resting [Ca(2+)](i) did not differ clearly with age. Greater elevation of somatic [Ca(2+)](i) and greater depression of FF developed in aged neurons during 20 sec trains of 7 Hz synaptic activation, but only if the activation triggered repetitive action potentials for several seconds. Elevated [Ca(2+)](i) and FF also were negatively correlated in individual aged neurons. In addition, the selective L-VSCC agonist Bay K8644 increased the afterhyperpolarization and mimicked the depressive effects of aging on FF in young-adult neurons. Thus, during physiologically relevant firing patterns in aging neurons, postsynaptic Ca(2+) elevation is closely associated with altered neuronal plasticity. Moreover, selectively increasing postsynaptic L-VSCC activity, as occurs in aging, negatively regulated a form of short-term plasticity that enhances synaptic throughput. Together, the results elucidate novel processes that may contribute to impaired cognitive function in aging.
机译:大量证据支持大脑衰老和阿尔茨海默氏病的Ca(2+)失调假说。但是,尚不知道(1)在突触激活的神经元活动过程中,老年大脑神经元中的细胞内[Ca(2 +)](i)是否发生改变; (2)[Ca(2 +)](i)的改变与神经元可塑性受损直接相关;或(3)先前观察到的海马神经元中L型电压敏感Ca(2+)通道(L-VSCC)密度与年龄相关的增加足以削弱突触可塑性。在这里,我们使用共聚焦显微镜对年轻和成年大鼠海马切片中单个CA1神经元在重复突触激活过程中的[Ca(2 +)](i)进行成像。同时,我们记录了细胞内EPSP频率促进(FF),这是一种短期突触可塑性,受衰老影响且与认知功能呈负相关。休息时[Ca(2 +)](i)随年龄的变化没有明显差异。体细胞[Ca(2 +)](i)的高度升高和FF的更大抑制在20 Hz的7 Hz突触激活火车中的老年神经元中发展,但前提是该激活触发了几秒钟的重复动作电位。 [Ca(2 +)](i)和FF升高在个别老年神经元中也呈负相关。此外,选择性L-VSCC激动剂Bay K8644可增加超极化后的效用,并模仿衰老对年轻成人神经元FF的抑制作用。因此,在衰老的神经元的生理相关放电模式期间,突触后Ca(2+)升高与神经元可塑性的改变密切相关。此外,如在衰老中发生的那样,选择性地增加突触后L-VSCC活性,会负面调节一种形式的短期可塑性,从而增强突触通量。在一起,结果阐明了可能导致衰老的认知功能受损的新过程。

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