Research Center for Translational Medicine at Shanghai East Hospital, School of Life Sciences and Technology, Tongji University, Shanghai, 200092, People's Republic of China.
School of Physics Science and Engineering, Tongji University, Shanghai, 200092, People's Republic of China.
J Nanobiotechnology. 2022 Jul 6;20(1):316. doi: 10.1186/s12951-022-01521-7.
The magneto-mechanical force killing cancer cells is an interesting and important strategy for cancer therapy.
Novel magnetic microspheres composed of a FeO nanocore, a bovine serum albumin (BSA) matrix, and a rod-like SiO nanoshell, which had flagellum-like surface for force-mediated cancer therapy were developed. One such magnetic microsphere (FeO/BSA/rSiO) at a cancer cell (not leave the cell surface) under a low frequency vibrating magnetic field (VMF) could generate 6.17 pN force. Interestingly, this force could induce cancer cell to generate reactive oxygen species (ROS). The force and force-induced ROS could kill cancer cells. The cell killing efficiency of FeO/BSA/rSiO exposed to a VMF was enhanced with increasing silica nanorod length, and the microspheres with straight nanorods exhibited stronger cell killing ability than those with curled nanorods. FeO/BSA/rSiO triggered by a VMF could efficiently inhibit mouse tumor growth, while these microspheres without a VMF had no significant effect on the cell cycle distribution, cell viability, tumor growth, and mouse health.
These microspheres with unique morphological characteristics under VMF have great potential that can provide a new platform for treating solid tumors at superficial positions whether with hypoxia regions or multidrug resistance.
磁机械力杀伤癌细胞是癌症治疗的一种有趣且重要的策略。
开发了一种新颖的磁性微球,由 FeO 纳米核、牛血清白蛋白 (BSA) 基质和棒状 SiO 纳米壳组成,具有鞭毛样表面,可用于力介导的癌症治疗。在低频振动磁场 (VMF) 下,一个这样的磁性微球 (FeO/BSA/rSiO) 可以在癌细胞(未离开细胞表面)上产生 6.17 pN 的力。有趣的是,这种力可以诱导癌细胞产生活性氧 (ROS)。力和力诱导的 ROS 可以杀死癌细胞。暴露于 VMF 的 FeO/BSA/rSiO 的细胞杀伤效率随着二氧化硅纳米棒长度的增加而提高,具有直纳米棒的微球比具有卷曲纳米棒的微球具有更强的细胞杀伤能力。VMF 触发的 FeO/BSA/rSiO 可以有效地抑制小鼠肿瘤生长,而没有 VMF 的这些微球对细胞周期分布、细胞活力、肿瘤生长和小鼠健康没有显著影响。
这些在 VMF 下具有独特形态特征的微球具有很大的潜力,可以为治疗浅层位置的实体瘤提供一个新的平台,无论是否存在缺氧区域或多药耐药性。