Department of Biomedical Engineering/Healthcare Engineering Innovation Centre (HEIC), Khalifa University, Abu Dhabi, UAE.
Integr Biol (Camb). 2024 Jan 23;16. doi: 10.1093/intbio/zyae003.
The standard model of the cell membrane potential Vm describes it as arising from diffusion currents across a membrane with a constant electric field, with zero electric field outside the cell membrane. However, the influence of Vm has been shown to extend into the extracellular space where it alters the cell's ζ-potential, the electrical potential measured a few nm from the cell surface which defines how the cell interacts with charged entities in its environment, including ions, molecules, and other cells. The paradigm arising from surface science is that the ζ-potential arises only from fixed membrane surface charge, and has consequently received little interest. However, if the ζ-potential can mechanistically and dynamically change by alteration of Vm, it allows the cell to dynamically alter cell-cell and cell-molecule interactions and may explain previously unexplained electrophysiological behaviours. Whilst the two potentials Vm and ζ are rarely reported together, they are occasionally described in different studies for the same cell type. By considering published data on these parameters across multiple cell types, as well as incidences of unexplained but seemingly functional Vm changes correlating with changes in cell behaviour, evidence is presented that this may play a functional role in the physiology of red blood cells, macrophages, platelets, sperm, ova, bacteria and cancer. Understanding how these properties will improve understanding of the role of electrical potentials and charges in the regulation of cell function and in the way in which cells interact with their environment. Insight The zeta (ζ) potential is the electrical potential a few nm beyond the surface of any suspensoid in water. Whilst typically assumed to arise only from fixed charges on the cell surface, recent and historical evidence shows a strong link to the cell's membrane potential Vm, which the cell can alter mechanistically through the use of ion channels. Whilst these two potentials have rarely been studied simultaneously, this review collates data across multiple studies reporting Vm, ζ-potential, electrical properties of changes in cell behaviour. Collectively, this points to Vm-mediated ζ-potential playing a significant role in the physiology and activity of blood cells, immune response, developmental biology and egg fertilization, and cancer among others.
细胞膜电位 Vm 的标准模型描述了它是如何通过穿过具有恒定电场的膜的扩散电流产生的,而细胞膜外的电场为零。然而,已经证明 Vm 的影响可以延伸到细胞外空间,在那里它改变了细胞的 ζ-电位,即从细胞表面几纳米处测量的电势能,它定义了细胞如何与其环境中的带电实体相互作用,包括离子、分子和其他细胞。表面科学所产生的范例是,ζ-电位仅源于固定的膜表面电荷,因此很少受到关注。然而,如果 ζ-电位可以通过 Vm 的改变在机械和动态上发生变化,它就可以使细胞动态改变细胞-细胞和细胞-分子相互作用,并可能解释以前无法解释的电生理行为。虽然 Vm 和 ζ 这两个电位很少一起报告,但它们在不同的研究中偶尔会被描述为同一细胞类型。通过考虑跨多种细胞类型的这些参数的已发表数据,以及与细胞行为变化相关的但似乎功能正常的 Vm 变化的实例,有证据表明,这可能在红细胞、巨噬细胞、血小板、精子、卵子、细菌和癌症的生理学中发挥功能作用。了解这些特性将如何提高对电势能和电荷在调节细胞功能以及细胞与环境相互作用方式中的作用的理解。见解 ζ 电位是水中小悬液表面几纳米处的电势能。虽然通常假定仅来自细胞表面的固定电荷,但最近和历史证据表明,它与细胞的膜电位 Vm 有很强的联系,细胞可以通过离子通道的机械作用来改变 Vm。虽然这两个电位很少同时进行研究,但本综述汇集了跨多个报告 Vm、ζ-电位、细胞行为变化的电学特性的研究的数据。总的来说,这表明 Vm 介导的 ζ-电位在血细胞生理学和活性、免疫反应、发育生物学和卵子受精以及癌症等方面发挥着重要作用。