Department of Oncology, University of Torino, Via Santena 5 bis, 10126 Torino, Italy.
Department of Energy, Politecnico di Torino, Corso Duca degli Abruzzi 24, 10129 Torino, Italy.
Int J Mol Sci. 2022 Jul 19;23(14):7955. doi: 10.3390/ijms23147955.
In our recent studies, we have developed a thermodynamic biochemical model able to select the resonant frequency of an extremely low frequency electromagnetic field (ELF-EMF) specifically affecting different types of cancer, and we have demonstrated its effects in vitro. In this work, we investigate the cellular response to the ELF electromagnetic wave in three-dimensional (3D) culture models, which mimic the features of tumors in vivo. Cell membrane was modelled as a resistor-capacitor circuit and the specific thermal resonant frequency was calculated and tested on two-dimensional (2D) and three-dimensional (3D) cell cultures of human pancreatic cancer, glioblastoma and breast cancer. Cell proliferation and the transcription of respiratory chain and adenosine triphosphate synthase subunits, as well as uncoupling proteins, were assessed. For the first time, we demonstrate that an ELF-EMF hampers growth and potentiates both the coupled and uncoupled respiration of all analyzed models. Interestingly, the metabolic shift was evident even in the 3D aggregates, making this approach particularly valuable and promising for future application in vivo, in aggressive cancer tissues characterized by resistance to treatments.
在我们最近的研究中,我们开发了一个热力学生化模型,能够选择特定影响不同类型癌症的极低频电磁场(ELF-EMF)的谐振频率,并且我们已经在体外证明了其效果。在这项工作中,我们研究了细胞对三维(3D)培养模型中 ELF 电磁波的反应,该模型模拟了体内肿瘤的特征。细胞膜被建模为电阻-电容电路,并且在二维(2D)和三维(3D)人胰腺癌细胞、神经胶质瘤和乳腺癌培养物上计算和测试了特定的热谐振频率。评估了细胞增殖以及呼吸链和三磷酸腺苷合酶亚基的转录和解偶联蛋白。我们首次证明,ELF-EMF 会阻碍所有分析模型的生长并增强它们的偶联和非偶联呼吸。有趣的是,即使在 3D 聚集体中也能明显看出代谢转变,这使得这种方法在未来具有侵袭性癌症组织中的体内应用特别有价值和有前途,这些组织对治疗具有抗性。