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介孔硅纳米颗粒促进声空化的抗菌作用。

Antibacterial Effect of Acoustic Cavitation Promoted by Mesoporous Silicon Nanoparticles.

机构信息

Faculty of Physics, Lomonosov Moscow State University, Leninskie Gory 1-2, 119991 Moscow, Russia.

Research and Technical Centre of Radiation-Chemical Safety and Hygiene, FMBA, Schukinskaya St 40, 123182 Moscow, Russia.

出版信息

Int J Mol Sci. 2023 Jan 5;24(2):1065. doi: 10.3390/ijms24021065.

Abstract

As-prepared mesoporous silicon nanoparticles, which were synthesized by electrochemical etching of crystalline silicon wafers followed by high-energy milling in water, were explored as a sonosensitizer in aqueous media under irradiation with low-intensity ultrasound at 0.88 MHz. Due to the mixed oxide-hydride coating of the nanoparticles' surfaces, they showed both acceptable colloidal stability and sonosensitization of the acoustic cavitation. The latter was directly measured and quantified as a cavitation energy index, i.e., time integral of the magnitude of ultrasound subharmonics. The index turned out to be several times greater for nanoparticle suspensions as compared to pure water, and it depended nonmonotonically on nanoparticle concentration. In vitro tests with revealed a dramatic drop of the bacterial viability and damage of the cells after ultrasonic irradiation with intensity of about 1 W/cm in the presence of nanoparticles, which themselves are almost non-toxic at the studied concentrations of about 1 mg/mL. The experimental results prove that nanoparticle-sensitized cavitation bubbles nearby bacteria can cause bacterial lysis and death. The sonosensitizing properties of freshly prepared mesoporous silicon nanoparticles are beneficial for their application in mild antibacterial therapy and treatment of liquid media.

摘要

采用电化学蚀刻晶体硅片,然后在水中进行高能球磨的方法合成了介孔硅纳米粒子,将其作为声敏剂在 0.88MHz 低强度超声辐照下的水介质中进行了研究。由于纳米粒子表面的混合氧化物-氢化物涂层,它们表现出了可接受的胶体稳定性和对声空化的声敏化作用。后者直接被测量并量化为空化能量指数,即超声次谐波幅度的时间积分。与纯水相比,纳米粒子悬浮液的指数高出数倍,并且其浓度是非单调依赖的。在体外实验中,在强度约为 1W/cm 的超声波辐照下,在纳米粒子存在的情况下, 显示出细菌活力急剧下降和细胞损伤,而在研究浓度约为 1mg/mL 时,纳米粒子本身几乎没有毒性。实验结果证明,纳米粒子敏化的空化气泡附近的细菌会导致细菌裂解和死亡。新鲜制备的介孔硅纳米粒子的声敏化特性有利于其在温和的抗菌治疗和液体介质处理中的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96df/9866259/3de3e7e11a2c/ijms-24-01065-g001.jpg

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