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通过外源电场诱导神经相位进动。

Induced neural phase precession through exogeneous electric fields.

作者信息

Wischnewski M, Tran H, Zhao Z, Shirinpour S, Haigh Z J, Rotteveel J, Perera N D, Alekseichuk I, Zimmermann J, Opitz A

机构信息

Department of Biomedical Engineering, University of Minnesota, Minneapolis, MN, USA.

Department of Neuroscience, University of Minnesota, Minneapolis, MN, USA.

出版信息

bioRxiv. 2023 Oct 30:2023.03.31.535073. doi: 10.1101/2023.03.31.535073.

Abstract

The gradual shifting of preferred neural spiking relative to local field potentials (LFPs), known as phase precession, plays a prominent role in neural coding. Correlations between the phase precession and behavior have been observed throughout various brain regions. As such, phase precession is suggested to be a global neural mechanism that promotes local neuroplasticity. However, causal evidence and neuroplastic mechanisms of phase precession are lacking so far. Here we show a causal link between LFP dynamics and phase precession. In three experiments, we modulated LFPs in humans, a non-human primate, and computational models using alternating current stimulation. We show that continuous stimulation of motor cortex oscillations in humans lead to a gradual phase shift of maximal corticospinal excitability by 90°. Further, exogenous alternating current stimulation induced phase precession in a subset of entrained neurons (30%) in the non-human primate. Multiscale modeling of realistic neural circuits suggests that alternating current stimulation-induced phase precession is driven by NMDA-mediated synaptic plasticity. Altogether, the three experiments provide mechanistic and causal evidence for phase precession as a global neocortical process. Alternating current-induced phase precession and consequently synaptic plasticity is crucial for the development of novel therapeutic neuromodulation methods.

摘要

首选神经放电相对于局部场电位(LFP)的逐渐偏移,即所谓的相位进动,在神经编码中起着重要作用。在各个脑区都观察到了相位进动与行为之间的相关性。因此,相位进动被认为是一种促进局部神经可塑性的全局神经机制。然而,到目前为止,相位进动的因果证据和神经可塑性机制尚不存在。在这里,我们展示了LFP动力学与相位进动之间的因果联系。在三个实验中,我们使用交流电刺激对人类、非人类灵长类动物和计算模型中的LFP进行调制。我们表明,对人类运动皮层振荡的持续刺激会导致最大皮质脊髓兴奋性逐渐发生约90°的相位偏移。此外,外源交流电刺激在非人类灵长类动物的一部分夹带神经元(约30%)中诱导了相位进动。对真实神经回路的多尺度建模表明,交流电刺激诱导的相位进动是由NMDA介导的突触可塑性驱动的。总之,这三个实验为相位进动作为一种全局新皮质过程提供了机制和因果证据。交流电诱导的相位进动以及由此产生的突触可塑性对于新型治疗性神经调节方法的开发至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5bf4/10621369/7d7607d1a1c9/nihpp-2023.03.31.535073v2-f0001.jpg

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