Zanjan Pharmaceutical Nanotechnology Research Center (ZPNRC), and Department of Pharmaceutical Nanotechnology School of pharmacy, Zanjan University of Medical Sciences, Zanjan, 4513956184, Iran.
State Key Laboratory of Rare Earth Resource Utilization, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, 130022, China.
Small. 2023 Mar;19(12):e2206253. doi: 10.1002/smll.202206253. Epub 2023 Jan 15.
Sonodynamic therapy (SDT) has considerably revolutionized the healthcare sector as a viable noninvasive therapeutic procedure. It employs a combination of low-intensity ultrasound and chemical entities, known as a sonosensitizer, to produce cytotoxic reactive oxygen species (ROS) for cancer and antimicrobial therapies. With nanotechnology, several unique nanoplatforms are introduced as a sonosensitizers, including, titanium-based nanomaterials, thanks to their high biocompatibility, catalytic efficiency, and customizable physicochemical features. Additionally, developing titanium-based sonosensitizers facilitates the integration of SDT with other treatment modalities (for example, chemotherapy, chemodynamic therapy, photodynamic therapy, photothermal therapy, and immunotherapy), hence increasing overall therapeutic results. This review summarizes the most recent developments in cancer therapy and tissue engineering using titanium nanoplatforms mediated SDT. The synthesis strategies and biosafety aspects of Titanium-based nanoplatforms for SDT are also discussed. Finally, various challenges and prospects for its further development and potential clinical translation are highlighted.
声动力学疗法 (SDT) 作为一种可行的非侵入性治疗方法,极大地改变了医疗保健领域。它结合了低强度超声和化学物质(称为声敏剂)来产生细胞毒性活性氧 (ROS),用于癌症和抗菌治疗。借助纳米技术,引入了几种独特的纳米平台作为声敏剂,包括基于钛的纳米材料,这要归功于它们的高生物相容性、催化效率和可定制的物理化学特性。此外,开发基于钛的声敏剂有助于将 SDT 与其他治疗方式(例如化学疗法、化学动力学疗法、光动力疗法、光热疗法和免疫疗法)相结合,从而提高整体治疗效果。本综述总结了使用钛纳米平台介导的 SDT 在癌症治疗和组织工程方面的最新进展。还讨论了用于 SDT 的基于钛的纳米平台的合成策略和生物安全性方面。最后,强调了其进一步发展和潜在临床转化的各种挑战和前景。