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Kinase-dependent modification of dendritic excitability after long-term potentiation.

机译:长期增强后依赖树突状兴奋性的激酶修饰。

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Patterns of presynaptic activity properly timed with postsynaptic action potential output can not only increase the strength of synaptic inputs but can also increase the excitability of dendritic branches of adult CA1 pyramidal neurons. Here, we examined the role of protein kinase A (PKA) and mitogen-activated protein kinase (MAPK) in the enhancement of dendritic excitability that occurs during theta-burst pairing of presynaptic and postsynaptic firing activity. Using dendritic and somatic whole-cell recordings in rat hippocampal slices, we measured the increase in the amplitude of back-propagating action potentials in the apical dendrite that occurs in parallel with long-term potentiation (LTP) of synaptic inputs. We found that inhibition of the MAPK pathway prevents this enhancement of dendritic excitability using either a weak or strong LTP induction protocol, while synaptic LTP can still be induced by the strong protocol. Both forms of plasticity are blocked by inhibition of PKA and occluded by interfering with cAMP degradation, consistent with a PKA-mediated increase in MAPK activity following induction of LTP. This provides a signalling mechanism for plasticity of dendritic excitability that occurs during neuronal activity and demonstrates the necessity of MAPK activation. Furthermore, this study uncovers an additional contribution of kinase activation to plasticity that may occur during learning.
机译:与突触后动作电位输出适当定时的突触前活动模式不仅可以增加突触输入的强度,还可以增加成年CA1锥体神经元树突分支的兴奋性。在这里,我们检查了蛋白激酶A(PKA)和有丝分裂原激活的蛋白激酶(MAPK)在增强突触前和突触后射击活动的theta-burst配对过程中发生的树突兴奋性中的作用。使用大鼠海马切片中的树突状细胞和体细胞全细胞记录,我们测量了与突触输入的长期增强(LTP)平行发生的根尖状树突中反向传播动作电位幅度的增加。我们发现抑制MAPK通路可以阻止使用弱或强LTP诱导方案的树突兴奋性增强,而强突触仍然可以诱导突触LTP。两种形式的可塑性都被PKA抑制所阻断,并被干扰cAMP降解所阻断,这与LTP诱导后PKA介导的MAPK活性增加有关。这提供了在神经元活动期间发生的树突状兴奋性可塑性的信号传导机制,并证明了MAPK激活的必要性。此外,这项研究发现了激酶激活对学习过程中可能发生的可塑性的其他贡献。

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