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Low-intensity focused ultrasound alters the latency and spatial patterns of sensory-evoked cortical responses in vivo

机译:低强度聚焦超声可改变体内感觉诱发皮层反应的潜伏期和空间模式

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Objective. The use of transcranial, low intensity focused ultrasound (FUS) is an emerging neuromodulation technology that shows promise for both therapeutic and research applications. Among many, one of the most exciting applications is the use of FUS to rehabilitate or augment human sensory capabilities. While there is compelling empirical evidence demonstrating this capability, basic questions regarding the spatiotemporal extent of the modulatory effects remain. Our objective was to assess the basic, yet often overlooked hypothesis that FUS in fact alters sensory-evoked neural activity within the region of the cerebral cortex at the beam's focus. Approach. To address this knowledge gap, we developed an approach to optically interrogate patterns of neural activity in the cortex directly at the acoustic focus, in vivo. Implementing simultaneous wide-field optical imaging and FUS stimulation in mice, our experiments probed somatosensory-evoked electrical activity through the use of voltage sensitive dyes (VSDs) and, in transgenic mice expressing GCaMP6f, monitored associated Ca~(2+) responses. Main results. Our results demonstrate that low-intensity FUS alters both the kinetics and spatial patterns of neural activity in primary somatosensory cortex at the acoustic focus. When preceded by 1 s of pulsed ultrasound at intensities below 1 W cm~(-2) (I_(spPa)), the onset of sensory-evoked cortical responses occurred 3.0 ± 0.7 ms earlier and altered the surface spatial morphology of Ca~(2+) responses. Significance. These findings support the heretofore unconfirmed assumption that FUS-induced sensory modulation reflects, at least in part, altered reactivity in primary sensory cortex at the site of sonication. The findings are significant given the interest in using FUS to target and alter spatial aspects of sensory receptive fields on the cerebral cortex.
机译:目的。经颅低强度聚焦超声(FUS)的使用是一种新兴的神经调节技术,对治疗和研究应用均显示出希望。在众多应用中,最令人兴奋的应用之一是使用FUS来恢复或增强人类的感觉能力。尽管有令人信服的经验证据证明了这种能力,但有关调制效应的时空范围的基本问题仍然存在。我们的目标是评估FUS实际上改变了束焦点处大脑皮层区域内感觉诱发的神经活动的基本但经常被忽略的假设。方法。为了解决这一知识差距,我们开发了一种方法,可以直接在体内声学焦点上光学询问皮层中神经活动的模式。我们在小鼠中实施了同时的宽视野光学成像和FUS刺激,我们的实验通过使用电压敏感染料(VSD)探测了体感诱发的电活动,并在表达GCaMP6f的转基因小鼠中监测了相关的Ca〜(2+)反应。主要结果。我们的研究结果表明,低强度FUS可以改变声聚焦处主要体感皮层神经活动的动力学和空间模式。当在低于1 W cm〜(-2)(I_(spPa))的强度下进行1 s的脉冲超声处理时,感觉诱发的皮层反应发生的时间早3.0±0.7 ms,并改变了Ca〜( 2+)回应。意义。这些发现支持迄今尚未证实的假设,即FUS诱导的感觉调节至少部分反映了超声部位原发感觉皮层反应性的改变。鉴于有兴趣使用FUS靶向和改变大脑皮层上的感觉感受野的空间方面,这一发现意义重大。

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