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经颅聚焦超声刺激增强脑脊液流动:实时在体双光子和宽场成像证据。

Transcranial focused ultrasound stimulation enhances cerebrospinal fluid movement: Real-time in vivo two-photon and widefield imaging evidence.

机构信息

Department of East-West Medicine, Graduate School, Kyung Hee University, Seoul, 02447, Republic of Korea.

Bionics Research Center, Biomedical Research Division, Korea Institute of Science and Technology, Seoul, 02792, Republic of Korea.

出版信息

Brain Stimul. 2024 Sep-Oct;17(5):1119-1130. doi: 10.1016/j.brs.2024.09.006. Epub 2024 Sep 12.

Abstract

BACKGROUND

Cerebrospinal fluid (CSF) flow is crucial for brain homeostasis and its dysfunction is highly associated with neurodegenerative diseases. Restoring CSF circulation is proposed as a key strategy for the treatment of the diseases. Among the methods to improve CSF circulation, focused ultrasound (FUS) stimulation has emerged as a promising non-invasive brain stimulation technique, with effectiveness evidenced by ex vivo studies. However, due to technical disturbances in in vivo imaging combined with FUS, direct evidence of real-time in vivo CSF flow enhancement by FUS remains elusive.

OBJECTIVE

To investigate whether FUS administered through the skull base can enhance CSF influx in living animals with various real-time imaging techniques.

METHODS

We demonstrate a novel method of applying FUS through the skull base, facilitating cortical CSF influx, evidenced by diverse in vivo imaging techniques. Acoustic simulation confirmed effective sonication of our approach through the skull base. After injecting fluorescent CSF tracers into cisterna magna, FUS was administered at the midline of the jaw through the skull base for 30 min, during which imaging was performed concurrently.

RESULTS

Enhanced CSF influx was observed in macroscopic imaging, demonstrated by the influx area and intensity of the fluorescent dyes after FUS. In two-photon imaging, increased fluorescence was observed in the perivascular space (PVS) after stimulation. Moreover, particle tracking of microspheres showed more microspheres entering the imaging field, with increased mean speed after FUS.

CONCLUSION

Our findings provide direct real-time in vivo imaging evidence that FUS promotes CSF influx and flow in the PVS.

摘要

背景

脑脊液(CSF)流动对于脑内环境稳定至关重要,其功能障碍与神经退行性疾病高度相关。恢复 CSF 循环被认为是治疗这些疾病的关键策略。在改善 CSF 循环的方法中,聚焦超声(FUS)刺激作为一种有前途的非侵入性脑刺激技术已经出现,其有效性已被离体研究证明。然而,由于在体成像与 FUS 之间的技术干扰,FUS 实时增强 CSF 流动的直接证据仍然难以捉摸。

目的

利用各种实时成像技术,研究 FUS 通过颅底是否可以增强活体动物的 CSF 流入。

方法

我们展示了一种通过颅底应用 FUS 的新方法,通过各种活体成像技术证实了这种方法可以促进皮质 CSF 的流入。声学模拟证实了我们通过颅底进行的方法可以有效地进行超声处理。在向枕大池注射荧光 CSF 示踪剂后,通过颅底在颌中线处给予 FUS 治疗 30 分钟,同时进行成像。

结果

宏观成像观察到 CSF 流入增强,表现为 FUS 后荧光染料的流入面积和强度增加。在双光子成像中,刺激后观察到血管周围空间(PVS)中的荧光增强。此外,微球的粒子追踪显示更多的微球进入成像区域,并且 FUS 后平均速度增加。

结论

我们的发现提供了直接的实时活体成像证据,表明 FUS 可促进 PVS 中的 CSF 流入和流动。

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