Department of Radiology, Brigham and Women's Hospital, Harvard Medical School, Boston, MA, USA; Center for Pain and the Brain, Boston Children's Hospital, Harvard Medical School, Boston, MA, 02115, USA.
Department of Radiology, Brigham and Women's Hospital, Harvard Medical School, Boston, MA, USA.
Neuroimage. 2019 Apr 1;189:267-275. doi: 10.1016/j.neuroimage.2019.01.037. Epub 2019 Jan 16.
The technology of transcranial focused ultrasound (FUS) enables a novel approach to neuromodulation, a tool for selective manipulation of brain function to be used in neurobiology research and with potential applications in clinical treatment. The method uses transcranial focused ultrasound to non-invasively open the blood-brain barrier (BBB) in a localized region such that a systemically injected neurotransmitter chemical can be delivered to the targeted brain site. The approach modulates the chemical signaling that occurs in and between neurons, making it complimentary to most other neuromodulation techniques that affect the electrical properties of neuronal activity. Here, we report delivering the inhibitory neurotransmitter GABA to the right somatosensory cortex of the rat brain during bilateral hind paw electrical stimulation and measure the inhibition of activation using functional MRI (fMRI). In a 2 × 2 factorial design, we evaluated conditions of BBB Closed vs BBB Open and No GABA vs GABA. Results from fMRI measurements of the blood oxygen level-dependent (BOLD) signal show: 1) intravenous GABA injection without FUS-mediated BBB opening does not have an effect on the BOLD response; 2) FUS-mediated BBB opening alone significantly alters the BOLD signal response to the stimulus, both in amplitude and shape of the time course; 3) the combination of FUS-mediated BBB opening and GABA injection further reduces the peak amplitude and spatial extent of the BOLD signal response to the stimulus. The data support the thesis that FUS-mediated opening of the BBB can be used to achieve non-invasive delivery of neuroactive substances for targeted manipulation of brain function.
经颅聚焦超声(FUS)技术为神经调节提供了一种新方法,这是一种用于选择性操纵大脑功能的工具,可用于神经生物学研究,并具有临床治疗的潜在应用。该方法使用经颅聚焦超声在局部区域非侵入式地打开血脑屏障(BBB),使得系统内注射的神经递质化学物质可以递送到靶向脑区。该方法调节了神经元内和神经元之间发生的化学信号传递,使其成为大多数影响神经元活动电特性的其他神经调节技术的补充手段。在这里,我们报告在双侧后爪电刺激期间将抑制性神经递质 GABA 递送至大鼠大脑的右侧体感皮层,并使用功能磁共振成像(fMRI)测量激活的抑制情况。在 2×2 析因设计中,我们评估了 BBB 关闭与 BBB 打开以及无 GABA 与 GABA 的条件。血氧水平依赖(BOLD)信号的 fMRI 测量结果表明:1)没有 FUS 介导的 BBB 打开的静脉内 GABA 注射对 BOLD 反应没有影响;2)FUS 介导的 BBB 打开本身会显著改变刺激的 BOLD 信号反应,包括幅度和时间过程的形状;3)FUS 介导的 BBB 打开和 GABA 注射的组合进一步降低了刺激的 BOLD 信号反应的峰值幅度和空间范围。这些数据支持了这样的假设,即 FUS 介导的 BBB 打开可用于实现神经活性物质的非侵入性递送,以靶向操纵大脑功能。