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Differential effects of static and dynamic inputs on neuronal excitability

机译:静态和动态输入对神经元兴奋性的差异影响

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摘要

The intrinsic excitability of neurons is known to be dynamically regulated by activity-dependent plasticity and homeostatic mechanisms. Such processes are commonly analyzed in the context of input-output functions that describe how neurons fire in response to constant levels of current. However, it is not well understood how changes of excitability as observed under static inputs translate to the function of the same neurons in their natural synaptic environment. Here we performed a computational study and hybrid experiments on rat bed nucleus of stria terminalis neurons to compare the two scenarios. The inward rectifying Kir current (IKir) and the hyperpolarization-activated cation current (Ih) were found to be considerably more effective in regulating the firing under synaptic inputs than under static stimuli. This prediction was experimentally confirmed by dynamic-clamp insertion of a synthetic inwardly rectifying Kir current into the biological neurons. At the same time, ionic currents that activate with depolarization were more effective regulating the firing under static inputs. When two intrinsic currents are concurrently altered such as those under homeostatic regulation, the effects in firing responses under static vs. dynamic inputs can be even more contrasting. Our results show that plastic or homeostatic changes of intrinsic membrane currents can shape the current step responses of neurons and their firing under synaptic inputs in a differential manner.
机译:已知神经元的固有兴奋性是由活动依赖性可塑性和体内平衡机制动态调节的。通常在输入输出功能的上下文中对此类过程进行分析,这些输入输出函数描述了神经元如何响应恒定的电流水平而激发。然而,人们尚不十分了解在静态输入下观察到的兴奋性变化如何转化为相同神经元在其自然突触环境中的功能。在这里,我们对末梢纹状体神经元的大鼠床核进行了计算研究和混合实验,以比较这两种情况。发现在突触输入下,向内整流Kir电流(IKir)和超极化激活的阳离子电流(Ih)在调节发射方面比在静态刺激下有效得多。通过动态钳位合成的向内整流的Kir电流动态插入生物神经元实验证实了这一预测。同时,通过去极化激活的离子电流在静态输入下更有效地调节着火。当两个固有电流同时发生变化时,例如在稳态调节下,则静态和动态输入下的触发响应的影响可能会更大。我们的结果表明,内在膜电流的塑性或稳态变化可以以不同的方式影响神经元的电流阶跃响应及其在突触输入下的放电。

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