Department of Ultrasound, the Third People's Hospital of Chengdu City, the Affiliated Hospital of Southwest Jiaotong University, Chengdu, 600031, P. R. China.
Institute of Ultrasound Imaging and Department of Ultrasound, Second Affiliated Hospital of Chongqing Medical University, Chongqing, 400010, P. R. China.
Adv Healthc Mater. 2017 Sep;6(18). doi: 10.1002/adhm.201700646. Epub 2017 Aug 10.
Ultrasound (US)-based biomedicine has been extensively explored for its applications in both diagnostic imaging and disease therapy. The fast development of theranostic nanomedicine significantly promotes the development of US-based biomedicine. This progress report summarizes and discusses the recent developments of rational design and fabrication of silica-based micro/nanoparticles for versatile US-based biomedical applications. The synthetic strategies and surface-engineering approaches of silica-based micro/nanoparticles are initially discussed, followed by detailed introduction on their US-based theranostic applications. They have been extensively explored in contrast-enhanced US imaging, US-based multi-modality imaging, synergistic high-intensity focused US (HIFU) ablation, sonosensitizer-enhanced sonodynamic therapy (SDT), as well as US-triggered chemotherapy. Their biological effects and biosafety have been briefly discussed to guarantee further clinical translation. Based on the high biocompatibility, versatile composition/structure and high performance in US-based theranostic biomedicine, these silica-based theranostic agents are expected to pave a new way for achieving efficient US-based theranostics of disease by taking the specific advantages of material science, nanotechnology and US-based biomedicine.
基于超声(US)的生物医学已经在诊断成像和疾病治疗方面得到了广泛的探索。治疗诊断一体化纳米医学的快速发展极大地推动了基于超声的生物医学的发展。本进展报告总结并讨论了用于各种基于超声的生物医学应用的基于二氧化硅的微/纳米粒子的合理设计和制备的最新进展。首先讨论了基于二氧化硅的微/纳米粒子的合成策略和表面工程方法,然后详细介绍了它们在基于超声的治疗诊断应用中的应用。它们已广泛应用于超声增强成像、基于超声的多模态成像、协同高强度聚焦超声(HIFU)消融、声敏剂增强声动力学治疗(SDT)以及超声触发化疗。简要讨论了它们的生物学效应和生物安全性,以保证进一步的临床转化。基于高生物相容性、基于超声的治疗诊断生物医学中的多功能组成/结构和高性能,这些基于二氧化硅的治疗诊断剂有望通过利用材料科学、纳米技术和基于超声的生物医学的特定优势,为实现有效的基于超声的疾病治疗诊断开辟新途径。