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时空模式选择性的突触自组织。

Synaptic self-organization of spatio-temporal pattern selectivity.

机构信息

Institute for Theoretical Physics, University of Bremen, Bremen, Germany.

出版信息

PLoS Comput Biol. 2023 Feb 13;19(2):e1010876. doi: 10.1371/journal.pcbi.1010876. eCollection 2023 Feb.

Abstract

Spiking model neurons can be set up to respond selectively to specific spatio-temporal spike patterns by optimization of their input weights. It is unknown, however, if existing synaptic plasticity mechanisms can achieve this temporal mode of neuronal coding and computation. Here it is shown that changes of synaptic efficacies which tend to balance excitatory and inhibitory synaptic inputs can make neurons sensitive to particular input spike patterns. Simulations demonstrate that a combination of Hebbian mechanisms, hetero-synaptic plasticity and synaptic scaling is sufficient for self-organizing sensitivity for spatio-temporal spike patterns that repeat in the input. In networks inclusion of hetero-synaptic plasticity that depends on the pre-synaptic neurons leads to specialization and faithful representation of pattern sequences by a group of target neurons. Pattern detection is robust against a range of distortions and noise. The proposed combination of Hebbian mechanisms, hetero-synaptic plasticity and synaptic scaling is found to protect the memories for specific patterns from being overwritten by ongoing learning during extended periods when the patterns are not present. This suggests a novel explanation for the long term robustness of memory traces despite ongoing activity with substantial synaptic plasticity. Taken together, our results promote the plausibility of precise temporal coding in the brain.

摘要

通过优化神经元的输入权重,尖峰模型神经元可以被设置为对特定的时空尖峰模式做出选择性反应。然而,目前尚不清楚现有的突触可塑性机制是否能够实现这种神经元编码和计算的时间模式。本文表明,趋向于平衡兴奋性和抑制性突触输入的突触效能变化可以使神经元对特定的输入尖峰模式敏感。模拟表明,赫布机制、异突触可塑性和突触缩放的组合足以实现对重复输入的时空尖峰模式的自组织敏感性。在网络中,包含依赖于前突神经元的异突可塑性会导致一组目标神经元对模式序列的专业化和忠实表示。模式检测对一系列失真和噪声具有鲁棒性。研究发现,赫布机制、异突可塑性和突触缩放的组合可以保护特定模式的记忆,使其免受长时间不存在模式时持续学习的影响。这为尽管存在大量突触可塑性,但记忆痕迹的长期稳健性提供了一种新的解释。总之,我们的研究结果促进了大脑中精确时间编码的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c0c/9977062/9d521fb1417c/pcbi.1010876.g001.jpg

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