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局灶性红外神经刺激在听觉皮层中传播动态转变。

Focal Infrared Neural Stimulation Propagates Dynamical Transformations in Auditory Cortex.

作者信息

Coventry Brandon S, Luu Cuong P, Bartlett Edward L

机构信息

Weldon School of Biomedical Engineering, Purdue University, West Lafayette, IN 47907 USA.

Center for Implantable Devices, Purdue University, West Lafayette, IN 47907 USA.

出版信息

bioRxiv. 2025 Mar 16:2025.03.12.642906. doi: 10.1101/2025.03.12.642906.

Abstract

SIGNIFICANCE

Infrared neural stimulation (INS) has emerged as a potent neuromodulation technology, offering safe and focal stimulation with superior spatial recruitment profiles compared to conventional electrical methods. However, the neural dynamics induced by INS stimulation remain poorly understood. Elucidating these dynamics will help develop new INS stimulation paradigms and advance its clinical application.

AIM

In this study, we assessed the local network dynamics of INS entrainment in the auditory thalamocortical circuit using the chronically implanted rat model; our approach focused on measuring INS energy-based local field potential (LFP) recruitment induced by focal thalamocortical stimulation. We further characterized linear and nonlinear oscillatory LFP activity in response to single-pulse and periodic INS and performed spectral decomposition to uncover specific LFP band entrainment to INS. Finally, we examined spike-field transformations across the thalamocortical synapse using spike-LFP coherence coupling.

RESULTS

We found that INS significantly increases LFP amplitude as a log-linear function of INS energy per pulse, primarily entraining to LFP and bands with synchrony extending to 200 Hz in some cases. A subset of neurons demonstrated nonlinear, chaotic oscillations linked to information transfer across cortical circuits. Finally, we utilized spike-field coherences to correlate spike coupling to LFP frequency band activity and suggest an energy-dependent model of network activation resulting from INS stimulation.

CONCLUSIONS

We show that INS reliably drives robust network activity and can potently modulate cortical field potentials across a wide range of frequencies in a stimulus parameter-dependent manner. Based on these results, we propose design principles for developing full coverage, all-optical thalamocortical auditory neuroprostheses.

摘要

意义

红外神经刺激(INS)已成为一种强大的神经调节技术,与传统电刺激方法相比,它能提供安全且局部的刺激,具有更优越的空间募集特性。然而,INS刺激所诱发的神经动力学仍知之甚少。阐明这些动力学将有助于开发新的INS刺激模式并推动其临床应用。

目的

在本研究中,我们使用长期植入的大鼠模型评估了听觉丘脑皮质回路中INS诱导的局部网络动力学;我们的方法侧重于测量由局部丘脑皮质刺激诱发的基于INS能量的局部场电位(LFP)募集。我们进一步表征了响应单脉冲和周期性INS的线性和非线性振荡LFP活动,并进行频谱分解以揭示LFP特定频段对INS的同步化。最后,我们使用尖峰-LFP相干耦合研究了丘脑皮质突触上的尖峰-场转换。

结果

我们发现INS以每脉冲INS能量的对数线性函数显著增加LFP幅度,主要同步到LFP 和 频段,在某些情况下同步扩展到200Hz。一部分神经元表现出与跨皮质回路信息传递相关的非线性、混沌振荡。最后,我们利用尖峰-场相干性将尖峰耦合与LFP频段活动相关联,并提出了一种由INS刺激导致的能量依赖型网络激活模型。

结论

我们表明INS可靠地驱动强大的网络活动,并能以刺激参数依赖的方式在很宽的频率范围内有效调节皮质场电位。基于这些结果,我们提出了开发全覆盖、全光丘脑皮质听觉神经假体的设计原则。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/48f7/11952546/f5b5b113615b/nihpp-2025.03.12.642906v2-f0001.jpg

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