Mossop Brian J, Barr Roger C, Zaharoff David A, Yuan Fan
Department of Biomedical Engineering, Duke University, Durham, NC 27708-0281, USA.
IEEE Trans Nanobioscience. 2004 Sep;3(3):225-31. doi: 10.1109/tnb.2004.833703.
Externally applied electric fields play an important role in many therapeutic modalities, but the fields they produce inside cells remain largely unknown. This study makes use of a three-dimensional model to determine the electric field that exists in the intracellular domain of a 10-microm spherical cell exposed to an applied field of 100 V/cm. The transmembrane potential resulting from the applied field was also determined and its change was compared to those of the intracellular field. The intracellular field increased as the membrane resistance decreased over a wide range of values. The results showed that the intracellular electric field was about 1.1 mV/cm for Rm of 10,000 omega x cm2, increasing to about 111 mV/cm as Rm decreased to 100 omega x cm2. Over this range of Rm the transmembrane potential was nearly constant. The transmembrane potential declined only as Rm decreased below 1 omega x cm2. The simulation results suggest that intracellular electric field depends on Rm in its physiologic range, and may not be negligible in understanding some mechanisms of electric field-mediated therapies.
外部施加的电场在许多治疗方式中起着重要作用,但它们在细胞内部产生的电场在很大程度上仍不为人知。本研究利用三维模型来确定暴露于100 V/cm外加电场的10微米球形细胞胞内区域存在的电场。还确定了外加电场产生的跨膜电位,并将其变化与胞内电场的变化进行了比较。在很宽的值范围内,随着膜电阻降低,胞内电场增加。结果表明,对于10,000 Ω×cm²的膜电阻(Rm),胞内电场约为1.1 mV/cm,当Rm降至100 Ω×cm²时增加到约111 mV/cm。在这个Rm范围内,跨膜电位几乎恒定。仅当Rm降至低于1 Ω×cm²时,跨膜电位才下降。模拟结果表明,胞内电场在其生理范围内取决于Rm,并且在理解电场介导治疗的某些机制中可能不可忽略。