Zheng Youwei, Schwabe Lars
Faculty of Computer Science and Electrical Engineering, University of Rostock, Rostock, Germany.
PLoS One. 2014 Feb 14;9(2):e88592. doi: 10.1371/journal.pone.0088592. eCollection 2014.
Single spikes and their timing matter in changing synaptic efficacy, which is known as spike-timing-dependent plasticity (STDP). Most previous studies treated spikes as all-or-none events, and considered their duration and magnitude as negligible. Here we explore the effects of action potential (AP) duration on synaptic plasticity in a simplified model neuron using computer simulations. We propose a novel STDP model that depresses synapses using an AP duration dependent LTD window and induces potentiation of synaptic strength when presynaptic spikes arrive before and during a postsynaptic AP (dSTDP). We demonstrate that AP duration is another key factor for insensitizing the postsynaptic neural firing and for controlling the shape of synaptic weight distribution. Extended AP durations produce a wide unimodal weight distribution that resembles the ones reported experimentally and make the postsynaptic neuron tranquil when disturbed by poisson noise spike trains, while equivalently sensitive to the synchronized. Our results suggest that the impact of AP duration, modeled here as an AP-dependent STDP window, on synaptic plasticity can be dramatic and should motivate future STDP studies.
单个脉冲及其时间在改变突触效能方面至关重要,这被称为脉冲时间依赖可塑性(STDP)。以前的大多数研究将脉冲视为全或无事件,并认为其持续时间和幅度可忽略不计。在此,我们使用计算机模拟在一个简化的模型神经元中探索动作电位(AP)持续时间对突触可塑性的影响。我们提出了一种新颖的STDP模型,该模型使用依赖于AP持续时间的长时程抑制窗口来抑制突触,并在突触前脉冲在突触后AP之前和期间到达时诱导突触强度增强(双相STDP)。我们证明,AP持续时间是使突触后神经放电不敏感以及控制突触权重分布形状的另一个关键因素。延长的AP持续时间会产生类似于实验报道的宽单峰权重分布,并在受到泊松噪声脉冲序列干扰时使突触后神经元平静,同时对同步刺激同样敏感。我们的结果表明,在此作为依赖于AP的STDP窗口建模的AP持续时间对突触可塑性的影响可能很大,这应该会推动未来的STDP研究。