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脑微血管中的微泡动力学

Microbubble dynamics in brain microvessels.

作者信息

Bezer James H, Prentice Paul, Lim Kee Chang William, Morse Sophie V, Christensen-Jeffries Kirsten, Rowlands Christopher J, Kozlov Andriy S, Choi James J

机构信息

Department of Bioengineering, Imperial College London, London, United Kingdom.

School of Engineering, University of Glasgow, Glasgow, United Kingdom.

出版信息

PLoS One. 2025 Feb 5;20(2):e0310425. doi: 10.1371/journal.pone.0310425. eCollection 2025.

Abstract

Focused ultrasound stimulation of microbubbles is being tested in clinical trials for its ability to deliver drugs across the blood-brain barrier (BBB). This technique has the potential to treat neurological diseases by preferentially delivering drugs to targeted regions. Yet despite its potential, the physical mechanisms by which microbubbles alter the BBB permeability remain unclear, as direct observations of microbubbles oscillating in brain microvessels have never been previously recorded. The purpose of this study was to reveal how microbubbles respond to ultrasound when within the microvessels of living brain tissue. Microbubbles in acute brain slices acquired from juvenile rats perfused with a concentrated solution of SonoVue® and dye were exposed to ultrasound pulses typically used in BBB disruption (center frequency: 1 MHz, peak-negative pressure: 0.2-1 MPa, pulse length: up to 10 ms) and observed using high-speed microscopy at up to 10 million frames per second. We observed that microbubbles can exert mechanical stresses on a wide region of tissue beyond their initial location and immediate surroundings. A single microbubble can apply mechanical stress to parenchymal tissues several micrometers away from the vessel. Microbubbles can travel at high velocities within the microvessels, extending their influence across tens of micrometers during a single pulse. With longer pulses and higher pressures, microbubbles could penetrate the vessel wall and move through the parenchyma. The probability of extravasation scales approximately with mechanical index, being rare at low pressures, but much more common at a mechanical index ≥ 0.6. These results present the first direct observations of ultrasound-driven microbubbles within brain tissue, and illustrate a range of microbubble behaviors that have the potential to lead to safe drug delivery or tissue damage.

摘要

聚焦超声刺激微泡正在临床试验中接受测试,以评估其跨越血脑屏障(BBB)输送药物的能力。这项技术有潜力通过将药物优先输送到目标区域来治疗神经疾病。然而,尽管具有潜力,但微泡改变血脑屏障通透性的物理机制仍不清楚,因为此前从未记录过在脑微血管中振荡的微泡的直接观察结果。本研究的目的是揭示微泡在活脑组织微血管内时对超声的反应。从幼年大鼠获取的急性脑切片中的微泡,用声诺维®浓缩溶液和染料灌注后,暴露于通常用于破坏血脑屏障的超声脉冲(中心频率:1兆赫,负峰值压力:0.2 - 1兆帕,脉冲长度:最长10毫秒),并使用高达每秒1000万帧的高速显微镜进行观察。我们观察到微泡可以在其初始位置及紧邻的周围区域之外的广泛组织区域施加机械应力。单个微泡可以对距血管几微米远的实质组织施加机械应力。微泡可以在微血管内高速移动,在单个脉冲期间将其影响扩展到几十微米。随着脉冲延长和压力升高,微泡可以穿透血管壁并在实质组织中移动。外渗的概率大致与机械指数成比例,在低压下很少见,但在机械指数≥0.6时更为常见。这些结果首次直接观察了脑组织内超声驱动的微泡,并说明了一系列有可能导致安全药物输送或组织损伤的微泡行为。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5342/11798480/7598cc2da290/pone.0310425.g001.jpg

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