Institute of Biomedical Engineering, Department of Engineering Science, University of Oxford, Oxford OX1 3PJ, UK.
Botnar Research Centre, Nuffield Department of Orthopaedics, Rheumatology and Musculoskeletal Sciences (NDORMS), University of Oxford, Oxford OX1 3PJ, UK.
Molecules. 2023 Nov 23;28(23):7733. doi: 10.3390/molecules28237733.
Ultrasound-mediated cavitation shows great promise for improving targeted drug delivery across a range of clinical applications. Cavitation nuclei-sound-sensitive constructs that enhance cavitation activity at lower pressures-have become a powerful adjuvant to ultrasound-based treatments, and more recently emerged as a drug delivery vehicle in their own right. The unique combination of physical, biological, and chemical effects that occur around these structures, as well as their varied compositions and morphologies, make cavitation nuclei an attractive platform for creating delivery systems tuned to particular therapeutics. In this review, we describe the structure and function of cavitation nuclei, approaches to their functionalization and customization, various clinical applications, progress toward real-world translation, and future directions for the field.
超声空化在一系列临床应用中显示出极大的改善靶向药物输送的潜力。空化核——对声音敏感的构建物,可在较低压力下增强空化活性——已成为基于超声的治疗的有力辅助手段,最近又成为一种独立的药物输送载体。这些结构周围发生的物理、生物和化学效应的独特组合,以及它们的不同组成和形态,使空化核成为创建针对特定治疗方法的输送系统的有吸引力的平台。在这篇综述中,我们描述了空化核的结构和功能、它们的功能化和定制化方法、各种临床应用、向实际转化的进展以及该领域的未来方向。
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