Ultrasound contrast agents from microbubbles to biogenic gas vesicles.

Medical review (Berlin, Germany) Pub Date : 2022-10-19 eCollection Date: 2023-02-01 DOI:10.1515/mr-2022-0020
Wenlong Zeng, Xiuli Yue, Zhifei Dai
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Abstract

Microbubbles have been the earliest and most widely used ultrasound contrast agents by virtue of their unique features: such as non-toxicity, intravenous injectability, ability to cross the pulmonary capillary bed, and significant enhancement of echo signals for the duration of the examination, resulting in essential preclinical and clinical applications. The use of microbubbles functionalized with targeting ligands to bind to specific targets in the bloodstream has further enabled ultrasound molecular imaging. Nevertheless, it is very challenging to utilize targeted microbubbles for molecular imaging of extravascular targets due to their size. A series of acoustic nanomaterials have been developed for breaking free from this constraint. Especially, biogenic gas vesicles, gas-filled protein nanostructures from microorganisms, were engineered as the first biomolecular ultrasound contrast agents, opening the door for more direct visualization of cellular and molecular function by ultrasound imaging. The ordered protein shell structure and unique gas filling mechanism of biogenic gas vesicles endow them with excellent stability and attractive acoustic responses. What's more, their genetic encodability enables them to act as acoustic reporter genes. This article reviews the upgrading progresses of ultrasound contrast agents from microbubbles to biogenic gas vesicles, and the opportunities and challenges for the commercial and clinical translation of the nascent field of biomolecular ultrasound.

超声造影剂从微泡到生物气泡。
微气泡由于其独特的特点,已成为最早和最广泛使用的超声造影剂:如无毒、静脉注射、穿过肺毛细血管床的能力,以及在检查期间回声信号的显著增强,从而产生了重要的临床前和临床应用。使用靶向配体功能化的微气泡与血流中的特定靶标结合,进一步实现了超声分子成像。然而,由于靶向微泡的大小,利用它们对血管外靶点进行分子成像是非常具有挑战性的。为了摆脱这种限制,已经开发了一系列声学纳米材料。特别是,生物气囊泡,即来自微生物的充气蛋白质纳米结构,被设计成第一种生物分子超声造影剂,为通过超声成像更直接地显示细胞和分子功能打开了大门。生物气囊泡有序的蛋白质外壳结构和独特的气体填充机制使其具有优异的稳定性和吸引人的声学响应。更重要的是,它们的遗传易感性使它们能够充当声学报告基因。本文综述了超声造影剂从微气泡到生物气泡的升级进展,以及生物分子超声这一新兴领域在商业和临床上的机遇和挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
1.30
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