Ultrasound nanotheranostics: Toward precision medicine

生物医学中的光声成像 声动力疗法 纳米技术 药物输送 纳米医学 纳米颗粒 精密医学 计算机科学 超声波 材料科学 医学 病理 放射科 光学 物理
作者
Yang Qin,Xiaorui Geng,Yue Sun,Yitong Zhao,Wenyu Chai,Xiaobing Wang,Pan Wang
出处
期刊:Journal of Controlled Release [Elsevier BV]
卷期号:353: 105-124 被引量:67
标识
DOI:10.1016/j.jconrel.2022.11.021
摘要

Ultrasound (US) is a mechanical wave that can penetrate biological tissues and trigger complex bioeffects. The mechanisms of US in different diagnosis and treatment are different, and the functional application of commercial US is also expanding. In particular, recent developments in nanotechnology have led to a wider use of US in precision medicine. In this review, we focus on US in combination with versatile micro and nanoparticles (NPs)/nanovesicles for tumor theranostics. We first introduce US-assisted drug delivery as a stimulus-responsive approach that spatiotemporally regulates the deposit of nanomedicines in target tissues. Multiple functionalized NPs and their US-regulated drug-release curves are analyzed in detail. Moreover, as a typical representative of US therapy, sonodynamic antitumor strategy is attracting researchers' attention. The collaborative efficiency and mechanisms of US and various nano-sensitizers such as nano-porphyrins and organic/inorganic nanosized sensitizers are outlined in this paper. A series of physicochemical processes during ultrasonic cavitation and NPs activation are also discussed. Finally, the new applications of US and diagnostic NPs in tumor-monitoring and image-guided combined therapy are summarized. Diagnostic NPs contain substances with imaging properties that enhance US contrast and photoacoustic imaging. The development of such high-resolution, low-background US-based imaging methods has contributed to modern precision medicine. It is expected that the integration of non-invasive US and nanotechnology will lead to significant breakthroughs in future clinical applications.
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