用于超声神经调节的微创低频微换能器的设计

Amit P. Mulgaonkar, Rahul S. Singh, G. Saddik, Ashkan Maccabi, W. Melega, M. Culjat, W. Grundfest
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引用次数: 0

摘要

最近,低强度聚焦超声(LIFU)和其他相关技术的研究表明,超声在许多不同的体内模型中具有可逆调节神经回路的潜力。然而,由于声束在经颅通过头盖骨过程中的衰减和畸变,精确的声定位可能会变得复杂。这可能会使靶向超声神经刺激效果的基础研究复杂化。另一种干预策略是开发足够小的超声神经刺激器探针,以微创方式直接植入目标神经结构附近。针对这一策略,设计、制造并评估了两种不同结构的压电陶瓷低频微换能器。声学测试证明了均匀准直的声辐射剖面,并在小动物模型中进行了初步研究,证明了这种方法的总体可行性。
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Design of a minimally invasive low-frequency microtransducer for ultrasonic neuromodulation
Studies with low intensity focused ultrasound (LIFU) and other related techniques have recently demonstrated the potential for ultrasound to reversibly modulate neural circuits in a number of different in vivo models. However, accurate acoustic targeting can be complicated by the attenuation and distortion of the acoustic beam during transcranial passage through the cranium. This can potentially complicate basic studies of the effects of targeted ultrasonic neurostimulation. An alternative intervention strategy is to develop ultrasonic neurostimulator probes small enough to be minimally-invasively implanted directly adjacent to target neural structures. Two different configurations of PZT-based low frequency microtransducers were designed, fabricated, and evaluated for such a strategy. Acoustic testing demonstrated evenly collimated acoustic radiation profiles, and a pilot study in a small animal model demonstrated the overall feasibility of this approach.
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