Department of Mechanical Engineering, University of Maryland , College Park, Maryland 20742, United States.
Langmuir. 2018 Jan 30;34(4):1760-1766. doi: 10.1021/acs.langmuir.7b02939. Epub 2018 Jan 18.
Electric double layers (or EDLs) formed at the membrane-electrolyte interface (MEI) and membrane-cytosol interface (MCI) of a charged lipid bilayer plasma membrane develop finitely large capacitances. However, these EDL capacitances are often much larger than the intrinsic capacitance of the membrane, and all of these capacitances are in series. Consequently, the effect of these EDL capacitances in dictating the overall membrane-EDL effective capacitance C becomes negligible. In this paper, we challenge this conventional notion pertaining to the membrane-EDL capacitances. We demonstrate that, on the basis of the system parameters, the EDL capacitance for both the permeable and semipermeable membranes can be small enough to influence C. For the semipermeable membranes, however, this lowering of the EDL capacitance can be much larger, ensuring a reduction of C by more than 20-25%. Furthermore, for the semipermeable membranes, the reduction in C is witnessed over a much larger range of system parameters. We attribute such an occurrence to the highly nonintuitive electrostatic potential distribution associated with the recently discovered phenomena of charge-inversion-like electrostatics and the attainment of a positive zeta potential at the MCI for charged semipermeable membranes. We anticipate that our findings will impact the quantification and the identification of a large number of biophysical phenomena that are probed by measuring the plasma membrane capacitance.
在带电荷脂质双层质膜的膜-电解质界面 (MEI) 和膜-细胞质界面 (MCI) 处形成的双电层 (EDL) 具有有限大的电容。然而,这些 EDL 电容通常比膜的固有电容大得多,并且所有这些电容都是串联的。因此,这些 EDL 电容对整体膜-EDL 有效电容 C 的影响可以忽略不计。在本文中,我们挑战了与膜-EDL 电容有关的传统观念。我们证明,根据系统参数,可渗透膜和半渗透膜的 EDL 电容可以小到足以影响 C。然而,对于半渗透膜,这种 EDL 电容的降低幅度可以大得多,从而使 C 降低超过 20-25%。此外,对于半渗透膜,在更大的系统参数范围内可以观察到 C 的降低。我们将这种情况归因于与最近发现的电荷反转类似静电现象和带电荷半渗透膜在 MCI 处获得正 ζ 电位相关的高度非直观静电势分布。我们预计,我们的发现将影响通过测量质膜电容来探测的大量生物物理现象的量化和识别。