Nordentoft Malthe S, Takahashi Naoya, Heltberg Mathias S, Jensen Mogens H, Rasmussen Rune N, Papoutsi Athanasia
Niels Bohr Institute, University of Copenhagen, Copenhagen, Denmark.
University of Bordeaux, CNRS, Interdisciplinary Institute for Neuroscience (IINS), UMR 5297, Bordeaux, France.
PLoS Biol. 2024 Dec 4;22(12):e3002935. doi: 10.1371/journal.pbio.3002935. eCollection 2024 Dec.
During neuronal activity, the extracellular concentration of potassium ions ([K+]o) increases substantially above resting levels, yet it remains unclear what role these [K+]o changes play in the dendritic integration of synaptic inputs. We here used mathematical formulations and biophysical modeling to explore the role of synaptic activity-dependent K+ changes in dendritic segments of a visual cortex pyramidal neuron, receiving inputs tuned to stimulus orientation. We found that the spatial arrangement of inputs dictates the magnitude of [K+]o changes in the dendrites: Dendritic segments receiving similarly tuned inputs can attain substantially higher [K+]o increases than segments receiving diversely tuned inputs. These [K+]o elevations in turn increase dendritic excitability, leading to more robust and prolonged dendritic spikes. Ultimately, these local effects amplify the gain of neuronal input-output transformations, causing higher orientation-tuned somatic firing rates without compromising orientation selectivity. Our results suggest that local, activity-dependent [K+]o changes in dendrites may act as a "volume knob" that determines the impact of synaptic inputs on feature-tuned neuronal firing.
在神经元活动期间,细胞外钾离子浓度([K+]o)会大幅升高至静息水平之上,但目前尚不清楚这些[K+]o变化在突触输入的树突整合中发挥何种作用。我们在此使用数学公式和生物物理模型,来探究依赖于突触活动的钾离子变化在视觉皮层锥体神经元树突段中的作用,该树突段接收针对刺激方向进行调谐的输入。我们发现,输入的空间排列决定了树突中[K+]o变化的幅度:接收相似调谐输入的树突段比接收不同调谐输入的树突段能够实现显著更高的[K+]o升高。这些[K+]o升高反过来又增加了树突兴奋性,导致更强劲、持续时间更长的树突棘波。最终,这些局部效应放大了神经元输入 - 输出转换的增益,在不损害方向选择性的情况下,导致更高的方向调谐体细胞放电率。我们的结果表明,树突中依赖于活动的局部[K+]o变化可能充当一个“音量旋钮”,决定突触输入对特征调谐神经元放电的影响。