Department of Neurological Surgery, University of Virginia Health System, Charlottesville, Virginia.
Department of Neurosurgery, Fondazione IRCCS Istituto Neurologico Carlo Besta, Milan, Italy.
Neurosurgery. 2020 Jul 1;87(1):1-10. doi: 10.1093/neuros/nyz407.
The concept of focusing high-intensity ultrasound beams for the purpose of cerebral ablation has interested neurosurgeons for more than 70 yr. However, the need for a craniectomy or a cranial acoustic window hindered the clinical diffusion of this technique. Recent technological advances, including the development of phased-array transducers and magnetic resonance imaging technology, have rekindled the interest in ultrasound for ablative brain surgery and have led to the development of the transcranial magnetic resonance-guided focused ultrasound (MRgFUS) thermal ablation procedure. In the last decade, this method has become increasingly popular, and its clinical applications are broadening. Despite the demonstrated efficacy of MRgFUS, transcranial thermal ablation using ultrasound is limited in that it can target exclusively the central region of the brain where the multiple acoustic beams are most optimally focused. On the contrary, lesioning of the cortex, the superficial subcortical areas, and regions close to the skull base is not possible with the limited treatment envelope of current phased-array transducers. Therefore, new ultrasound ablative techniques, which are not based on thermal mechanisms, have been developed and tested in experimental settings. This review describes the mechanisms by which these novel, nonthermal ablative techniques are based and also presents the current clinical applications of MRgFUS thermal ablation.
将高强度超声束聚焦用于脑消融的概念引起神经外科医生的兴趣已经超过 70 年了。然而,开颅术或颅窗的需求阻碍了这项技术的临床推广。最近的技术进步,包括相控阵换能器和磁共振成像技术的发展,重新激发了人们对超声消融脑外科的兴趣,并导致了经颅磁共振引导聚焦超声(MRgFUS)热消融手术的发展。在过去的十年中,这种方法越来越受欢迎,其临床应用也在扩大。尽管 MRgFUS 的疗效已经得到证实,但使用超声进行经颅热消融有其局限性,因为它只能靶向多个声束最优化聚焦的大脑中央区域。相反,由于当前相控阵换能器的治疗范围有限,无法对皮质、浅表皮质下区域和靠近颅底的区域进行消融。因此,已经开发和测试了基于新的非热机制的新型超声消融技术。这篇综述描述了这些新型非热消融技术的作用机制,并介绍了 MRgFUS 热消融的当前临床应用。