Nandi Tulika, Kop Benjamin R, Naftchi-Ardebili Kasra, Stagg Charlotte J, Pauly Kim Butts, Verhagen Lennart
Donders Institute for Brain Cognition and Behaviour, Radboud University, Thomas van Aquinostraat 4, 6525 GD, Nijmegen, the Netherlands; Department of Human Movement Sciences, Vrije Universiteit Amsterdam, De Boelelaan 1105, 1081 HV, Amsterdam, the Netherlands.
Donders Institute for Brain Cognition and Behaviour, Radboud University, Thomas van Aquinostraat 4, 6525 GD, Nijmegen, the Netherlands.
Brain Stimul. 2025 May-Jun;18(3):659-664. doi: 10.1016/j.brs.2025.02.019. Epub 2025 Mar 5.
Transcranial ultrasonic stimulation (TUS) has the potential to usher in a new era for human neuroscience by allowing spatially precise and high-resolution non-invasive targeting of both deep and superficial brain regions. Currently, fundamental research on the mechanisms of interaction between ultrasound and neural tissues is progressing in parallel with application-focused research. However, a major hurdle in the wider use of TUS is the selection of optimal parameters to enable safe and effective neuromodulation in humans. In this paper, we will discuss the major factors that determine the efficacy of TUS. We will discuss the thermal and mechanical biophysical effects of ultrasound, which underlie its biological effects, in the context of their relationships with tunable parameters. Based on this knowledge of biophysical effects, and drawing on concepts from radiotherapy, we propose a framework for conceptualising TUS dose.
经颅超声刺激(TUS)有潜力开创人类神经科学的新纪元,因为它能够对深部和浅表脑区进行空间精确且高分辨率的非侵入性靶向刺激。目前,关于超声与神经组织相互作用机制的基础研究与以应用为重点的研究正在同步推进。然而,TUS更广泛应用的一个主要障碍是选择最佳参数,以实现对人类安全有效的神经调节。在本文中,我们将讨论决定TUS疗效的主要因素。我们将在超声的热和机械生物物理效应与可调参数的关系背景下,探讨这些作为其生物学效应基础的效应。基于对生物物理效应的这一认识,并借鉴放射治疗的概念,我们提出了一个用于概念化TUS剂量的框架。