全息经颅超声神经调节通过协同招募分布式脑回路来提高刺激效果

IF 26.8 1区 医学 Q1 ENGINEERING, BIOMEDICAL
Hector Estrada, Yiming Chen, Théo Lemaire, Neda Davoudi, Ali Özbek, Qendresa Parduzi, Shy Shoham, Daniel Razansky
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引用次数: 0

摘要

精确定向的超声神经调节为研究脑功能和治疗神经系统疾病提供了巨大的潜力。然而,在实现精确的时空控制和监测超声对大脑回路的影响方面,它的应用受到了限制。在这里,我们表明经颅超声引发直接和高度聚焦的反应,这可以在与神经功能相关的时空尺度上动态操纵。此外,全息经颅超声刺激可以直接控制受刺激的体积,并主动调节局部和中程网络投影,有效地降低了一个数量级的激活阈值。为了更好地理解这种以前未被探索的兴奋性机制,传统的压力-频率二元模型不能完全解释,我们开发了一个双重建模框架,其中既构建了经验模型,又构建了机制模型,以捕捉全息经颅超声刺激的复杂性。这些模型与我们的实验结果在定性上一致,表明这些发现主要是由假定的网络相互作用驱动的。我们的研究结果揭示了超声与神经组织的复杂相互作用机制,并强调了其在分布式脑网络无创接口方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Holographic transcranial ultrasound neuromodulation enhances stimulation efficacy by cooperatively recruiting distributed brain circuits

Holographic transcranial ultrasound neuromodulation enhances stimulation efficacy by cooperatively recruiting distributed brain circuits

Precision-targeted ultrasonic neuromodulation offers immense potential for studying brain function and treating neurological diseases. Yet, its application has been limited by challenges in achieving precise spatio-temporal control and monitoring of ultrasound effects on brain circuits. Here we show that transcranial ultrasound elicits direct and highly focal responses, which can be dynamically steered at spatio-temporal scales relevant for neural function. Furthermore, holographic transcranial ultrasound stimulation allows direct control of the stimulated volume and actively modulates local and mid-range network projections, effectively lowering the activation threshold by an order of magnitude. To better understand this previously unexplored excitability regime not fully explained by the conventional pressure–frequency dyad, we developed a dual modelling framework, where both an empirical and a mechanistic model were constructed to capture the intricacies of holographic transcranial ultrasound stimulation. These models achieve qualitative agreement with our experimental results, suggesting that these findings are predominantly driven by putative network interactions. Our results bring insight on the complex interaction mechanisms of ultrasound with neural tissue and highlight its potential for the noninvasive interfacing of distributed brain networks.

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来源期刊
Nature Biomedical Engineering
Nature Biomedical Engineering Medicine-Medicine (miscellaneous)
CiteScore
45.30
自引率
1.10%
发文量
138
期刊介绍: Nature Biomedical Engineering is an online-only monthly journal that was launched in January 2017. It aims to publish original research, reviews, and commentary focusing on applied biomedicine and health technology. The journal targets a diverse audience, including life scientists who are involved in developing experimental or computational systems and methods to enhance our understanding of human physiology. It also covers biomedical researchers and engineers who are engaged in designing or optimizing therapies, assays, devices, or procedures for diagnosing or treating diseases. Additionally, clinicians, who make use of research outputs to evaluate patient health or administer therapy in various clinical settings and healthcare contexts, are also part of the target audience.
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