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在活体巨大轴突模型中,重复脉冲聚焦超声神经刺激的成功率:声参量研究。

Neurostimulation success rate of repetitive-pulse focused ultrasound in an in vivo giant axon model: An acoustic parametric study.

机构信息

LabTAU, INSERM, Centre Léon Bérard, Université Lyon 1, Univ Lyon, F-69003, Lyon, France.

AP-HP, Neurosurgery department, Pitié-Salpêtrière Hospital, Paris, France.

出版信息

Med Phys. 2022 Jan;49(1):682-701. doi: 10.1002/mp.15358. Epub 2021 Dec 7.

Abstract

PURPOSE

Focused ultrasound (FUS) is a promising tool to develop new modalities of therapeutic neurostimulation. The ability of FUS to stimulate the nervous system, in a noninvasive and spatiotemporally precise manner, has been demonstrated in animals and human subjects, but the underlying biomechanisms are not fully understood yet. The objective of the present study was to investigate the bioeffects involved in the generation of trains of action potentials (APs) by repetitive-pulse FUS stimuli in a simple invertebrate neural model.

METHODS

The respective influences of different acoustic parameters on the neurostimulation success rate (NSR), defined as the rate of FUS stimuli capable of evoking at least one AP, were explored using the system of afferent nerves and giant fibers of Lumbricus terrestris as neural model. Each parameter was studied independently by administering random FUS sequences while keeping all but one FUS parameter constant. The NSR was evaluated as a function of (i) the spatial-average pulse-average intensity (I ); (ii) the pulse duration (PD); (iii) the pulse repetition frequency (PRF); iv) the number of cycles per pulse (N ); (v) two ultrasound frequencies, f  = 1.1 MHz and f  = 3.3 MHz, corresponding to the fundamental and third-harmonic resonant frequencies of the FUS transducer, respectively (spherical, radius of curvature: 50 mm); and (vi) levels of emerging stable cavitation and inertial cavitation.

RESULTS

The NSR associated to 1.1 MHz repetitive-pulse FUS stimuli was found to increase as a function of increasing I , PD, PRF, and N . When evaluating each parameter at f = 1.1 MHz, it was observed that NSRs close to 100% were achieved when sufficiently elevating their respective values. When computing the NSR as a function of the spatial-average, temporal-average intensity (I ), defined as the product of PRF, PD, and I , a significant elevation of the NSR from 0% to close to 100% was measured by increasing I from values approximate to 4 W/cm to values higher than 12 W/cm . No clear and consistent trend was observed in trials aimed at exploring the effects of different levels of stable and inertial acoustic cavitation on the NSR. Finally, the feasibility of inducing neural responses with 3.3 MHz repetitive-pulse FUS stimuli was also demonstrated with NSRs reaching up to 60%, in the range of FUS parameters studied.

CONCLUSION

The time-averaged value of the radiation force per unit volume of tissue is proportional to the acoustic intensity. As a result, the observations from this study suggest that the neural structure responding to the stimulus is sensitive to the mean radiation force carried by the FUS sequence, regardless of the combination of FUS parameters giving rise to such force. The results from this study further revealed the existence of a minimal activation threshold with regard to I .

摘要

目的

聚焦超声(FUS)是开发治疗性神经刺激新方法的一种很有前途的工具。FUS 以非侵入性和时空精确的方式刺激神经系统的能力已在动物和人体中得到证实,但潜在的生物力学机制尚未完全了解。本研究的目的是研究在简单的无脊椎动物神经模型中,通过重复脉冲 FUS 刺激产生动作电位(AP)串的生物效应。

方法

使用蚯蚓的传入神经和巨大纤维系统作为神经模型,分别研究不同声参数对神经刺激成功率(NSR)的影响,将 NSR 定义为能够诱发至少一个 AP 的 FUS 刺激的比率。通过给予随机的 FUS 序列,同时保持除一个 FUS 参数外的所有参数不变,独立研究每个参数。NSR 作为(i)空间平均脉冲平均强度(I);(ii)脉冲持续时间(PD);(iii)脉冲重复频率(PRF);(iv)每个脉冲的周期数(N);(v)两个超声频率,f=1.1 MHz 和 f=3.3 MHz,分别对应于 FUS 换能器的基频和谐波频率(球形,曲率半径:50 mm);和(vi)新兴稳定空化和惯性空化的水平的函数进行评估。

结果

发现与 1.1 MHz 重复脉冲 FUS 刺激相关的 NSR 随 I、PD、PRF 和 N 的增加而增加。当在 f=1.1 MHz 时评估每个参数时,观察到当各自的值足够高时,接近 100%的 NSR 就可以实现。当将 NSR 作为空间平均、时间平均强度(I)的函数进行计算时,定义为 PRF、PD 和 I 的乘积,通过将 I 从近似 4 W/cm 增加到高于 12 W/cm,NSR 从 0%显著增加到接近 100%。在旨在探索不同水平的稳定和惯性声空化对 NSR 的影响的试验中,没有观察到明显和一致的趋势。最后,还证明了使用 3.3 MHz 重复脉冲 FUS 刺激诱导神经反应的可行性,在研究的 FUS 参数范围内,NSR 达到了 60%。

结论

单位体积组织的辐射力的时间平均值与声强成正比。因此,本研究的结果表明,对刺激作出反应的神经结构对 FUS 序列携带的平均辐射力敏感,而与产生这种力的 FUS 参数的组合无关。本研究的结果进一步揭示了 I 存在一个最小激活阈值。

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