Physics World 2024年12月20日
Optimization algorithm improves safety of transcranial focused ultrasound treatments
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Zeta Surgical的研究人员开发了一种算法,旨在优化单元素聚焦超声换能器的位置,从而减少经颅超声治疗中因颅骨引起的波束模糊、衰减和偏移问题。该算法通过模拟超声波在颅骨内的传播,计算不同换能器位置下的声场,并量化焦点偏移和散焦。通过加载患者CT扫描数据,算法确定目标中心点,并模拟换能器旋转,寻找使焦点偏移最小且焦点体积最小的位置,从而实现更安全有效的治疗。该方法结合了神经导航系统和机器人手臂,可以精确引导换能器到达最佳位置。

🧠 经颅聚焦超声作为一种潜在的脑疾病治疗方法,面临着穿过颅骨时超声波束的模糊、衰减和偏移的挑战。

🎯 Zeta Surgical开发了一种优化算法,通过模拟超声波在颅骨中的传播,自动确定单元素聚焦换能器的最佳放置位置,以减少焦点偏移和散焦。

⚙️ 该算法利用患者CT扫描数据,模拟换能器在不同位置的旋转,计算归一化峰值负压和焦点体积,并寻找在焦点偏移低于阈值的情况下,焦点体积最小的位置。

🤖 结合Zeta神经导航系统和机器人手臂,该算法能够精确引导换能器到达头模上的最佳位置,并在45次独立注册尝试中实现了平均位置误差0.0925毫米和平均轨迹角度误差0.0650毫米的精度。

Transcranial focused ultrasound is being developed as a potential treatment for various brain diseases and disorders. One big challenge, however, is focusing the ultrasound through the skull, which can blur, attenuate and shift the beam. To minimize these effects, researchers at Zeta Surgical have developed an algorithm that automatically determines the optimal location to place a single-element focused transducer.

For therapeutic applications – including, for example, thermal ablation, drug delivery, disruption of the blood–brain barrier and neuromodulation – the ultrasound beam must be focused onto a small spot in the brain. The resulting high acoustic pressure at this spot generates a high temperature or mechanical force to treat the targeted tissues, ideally while avoiding overheating of nearby healthy tissues.

Unfortunately, when the ultrasound beam passes through the skull, which is a complex layered structure, it is both attenuated and distorted. This decreases the acoustic pressure at the focus, defocusing the beam and shifting the focus position.

Ultrasound arrays with multiple elements can compensate for such aberrations by controlling the individual array elements. But cost constraints mean that most applications still use single-element focused transducers, for which such compensation is difficult. This can result in ineffective or even unsafe treatments. What’s needed is a method that finds the optimal position to place a single-element focused ultrasound transducer such that defocusing and focus shift are minimized.

Raahil Sha and colleagues have come up with a way to do just this, using an optimization algorithm that simulates the ultrasound field through the skull. Using the k-Wave MATLAB toolbox, the algorithm simulates ultrasound fields generated within the skull cavity with the transducer placed at different locations. It then analyses the calculated fields to quantify the defocusing and focus shift.

The algorithm starts by loading a patient CT scan, which provides information on the density, speed of sound, absorption, geometry and porosity of the skull. It then defines the centre point of the target as the origin and the centre of a single-element 0.5 MHz transducer as the initial transducer location, and determines the initial values of the normalized peak-negative pressure (PNP) and focal volume.

The algorithm then performs a series of rotations of the transducer centre, simulating the PNP and focal volume at each new location. The PNP value is used to quantify the focus shift, with a higher PNP at the focal point representing a smaller shift.

Any change in the focal position is particularly concerning as it can lead to off-target tissue disruption. As such, the algorithm first identifies transducer positions that keep the focus shift below a specified threshold. Within these confines, it then finds the location with the smallest focal volume. This is then output as the optimal location for placing the transducer. In this study, this optimal location had a normalized PNP of 0.966 (higher than the pre-set threshold of 0.95) and a focal volume 6.8% smaller than that without the skull in place.

Next, the team used a Zeta neuro-navigation system and a robotic arm to automatically guide a transducer to the optimal location on a head phantom and track the placement accuracy in real time. In 45 independent registration attempts, the surgical robot could position the transducer at the optimal location with a mean position error of 0.0925 mm and a mean trajectory angle error of 0.0650 mm. These low values indicate the potential for accurate transducer placement during treatment.

The researchers conclude that the algorithm can find the optimal transducer location to avoid large focus shift and defocusing. “With the Zeta navigation system, our algorithm can help to make transcranial focused ultrasound treatment safer and more successful,” they write.

The study is reported in Bioengineering.

The post Optimization algorithm improves safety of transcranial focused ultrasound treatments appeared first on Physics World.

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经颅聚焦超声 优化算法 Zeta Surgical 神经导航 机器人辅助
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