Li Xing, Liu Kaida, Fang Haohan, Liu Zirong, Tang Yuchen, Dai Ping
College of Automation Engineering, Nanjing University of Aeronautics and Astronautics, Nan Jing 210016, Jiang Su, China.
Department of Radiotherapy, Shanghai Fourth People's Hospital, School of Medicine, Tongji University, Shanghai 200434, China.
APL Bioeng. 2024 Jun 3;8(2):026118. doi: 10.1063/5.0197900. eCollection 2024 Jun.
Tumor treating fields (TTFields) are a type of sinusoidal alternating current electric field that has proven effective in inhibiting the reproduction of dividing tumor cells. Despite their recognized impact, the precise biophysical mechanisms underlying the unique effects of TTFields remain unknown. Many of the previous studies predominantly attribute the inhibitory effects of TTFields to mitotic disruption, with intracellular microtubules identified as crucial targets. However, this conceptual framework lacks substantiation at the mesoscopic level. This study addresses the existing gap by constructing force models for tubulin and other key subcellular structures involved in microtubule electrophysiological activities under TTFields exposure. The primary objective is to explore whether the electric force or torque exerted by TTFields significantly influences the normal structure and activities of microtubules. Initially, we examine the potential effect on the dynamic stability of microtubule structures by calculating the electric field torque on the tubulin dimer orientation. Furthermore, given the importance of electrostatics in microtubule-associated activities, such as chromosome segregation and substance transport of kinesin during mitosis, we investigate the interaction between TTFields and these electrostatic processes. Our data show that the electrodynamic effects of TTFields are most likely too weak to disrupt normal microtubule electrophysiological activities significantly. Consequently, we posit that the observed cytoskeleton destruction in mitosis is more likely attributable to non-mechanical mechanisms.
肿瘤治疗电场(TTFields)是一种正弦交变电流电场,已被证明在抑制分裂肿瘤细胞的增殖方面有效。尽管其作用已得到认可,但TTFields独特效应背后的确切生物物理机制仍不清楚。先前的许多研究主要将TTFields的抑制作用归因于有丝分裂破坏,细胞内微管被确定为关键靶点。然而,这一概念框架在介观水平上缺乏证据支持。本研究通过构建在TTFields暴露下参与微管电生理活动的微管蛋白和其他关键亚细胞结构的力模型,解决了现有的差距。主要目的是探讨TTFields施加的电场力或扭矩是否会显著影响微管的正常结构和活动。首先,我们通过计算微管蛋白二聚体取向上的电场扭矩,研究其对微管结构动态稳定性的潜在影响。此外,鉴于静电在微管相关活动中的重要性,如有丝分裂期间的染色体分离和驱动蛋白的物质运输,我们研究了TTFields与这些静电过程之间的相互作用。我们的数据表明,TTFields的电动力学效应很可能太弱,无法显著破坏正常的微管电生理活动。因此,我们认为在有丝分裂中观察到的细胞骨架破坏更可能归因于非机械机制。