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超声驱动微泡的生物效应增强大分子传递的机制理解。

Mechanistic understanding the bioeffects of ultrasound-driven microbubbles to enhance macromolecule delivery.

机构信息

Department of Instrument Science and Engineering, Shanghai Jiao Tong University, Shanghai, China.

Department of Instrument Science and Engineering, Shanghai Jiao Tong University, Shanghai, China.

出版信息

J Control Release. 2018 Feb 28;272:169-181. doi: 10.1016/j.jconrel.2018.01.001. Epub 2018 Jan 4.

Abstract

Ultrasound-driven microbubbles can trigger reversible membrane perforation (sonoporation), open interendothelial junctions and stimulate endocytosis, thereby providing a temporary and reversible time-window for the delivery of macromolecules across biological membranes and endothelial barriers. This time-window is related not only to cavitation events, but also to biological regulatory mechanisms. Mechanistic understanding of the interaction between cavitation events and cells and tissues, as well as the subsequent cellular and molecular responses will lead to new design strategies with improved efficacy and minimized side effects. Recent important progress on the spatiotemporal characteristics of sonoporation, cavitation-induced interendothelial gap and endocytosis, and the spatiotemporal bioeffects and the preliminary biological mechanisms in cavitation-enhanced permeability, has been made. On the basis of the summary of this research progress, this Review outlines the underlying bioeffects and the related biological regulatory mechanisms involved in cavitation-enhanced permeability; provides a critical commentary on the future tasks and directions in this field, including developing a standardized methodology to reveal mechanism-based bioeffects in depth, and designing biology-based treatment strategies to improve efficacy and safety. Such mechanistic understanding the bioeffects that contribute to cavitation-enhanced delivery will accelerate the translation of this approach to the clinic.

摘要

超声驱动的微泡可以引发可逆的细胞膜穿孔(声孔作用),打开内皮细胞连接并刺激内吞作用,从而为大分子跨生物膜和内皮屏障的递供提供一个临时和可逆的时间窗口。这个时间窗口不仅与空化事件有关,还与生物调节机制有关。对声空化事件与细胞和组织之间的相互作用以及随后的细胞和分子反应的机制理解,将导致具有改进的疗效和最小化的副作用的新的设计策略。最近在声孔作用的时空特征、空化诱导的内皮细胞间隙和内吞作用以及空化增强通透性的时空生物效应和初步生物学机制方面取得了重要进展。在总结这些研究进展的基础上,本文综述了空化增强通透性所涉及的潜在生物效应及其相关的生物学调节机制;对该领域未来的任务和方向进行了批判性评论,包括开发一种标准化的方法来深入揭示基于机制的生物效应,以及设计基于生物学的治疗策略来提高疗效和安全性。对有助于空化增强递送的生物效应的这种机制理解将加速该方法向临床的转化。

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