Oregon Hearing Research Center, Department of Otolaryngology, Oregon Health & Science University, Portland, Oregon.
Oregon Hearing Research Center, Department of Otolaryngology, Oregon Health & Science University, Portland, Oregon; Kresge Hearing Research Institute, University of Michigan, Ann Arbor, Michigan.
Biophys J. 2013 Dec 17;105(12):2666-75. doi: 10.1016/j.bpj.2013.11.021.
Intracochlear electric fields arising out of sound-induced receptor currents, silent currents, or electrical current injected into the cochlea induce transmembrane potential along the outer hair cell (OHC) but its distribution along the cells is unknown. In this study, we investigated the distribution of OHC transmembrane potential induced along the cell perimeter and its sensitivity to the direction of the extracellular electric field (EEF) on isolated OHCs at a low frequency using the fast voltage-sensitive dye ANNINE-6plus. We calibrated the potentiometric sensitivity of the dye by applying known voltage steps to cells by simultaneous whole-cell voltage clamp. The OHC transmembrane potential induced by the EEF is shown to be highly nonuniform along the cell perimeter and strongly dependent on the direction of the electrical field. Unlike in many other cells, the EEF induces a field-direction-dependent intracellular potential in the cylindrical OHC. We predict that without this induced intracellular potential, EEF would not generate somatic electromotility in OHCs. In conjunction with the known heterogeneity of OHC membrane microdomains, voltage-gated ion channels, charge, and capacitance, the EEF-induced nonuniform transmembrane potential measured in this study suggests that the EEF would impact the cochlear amplification and electropermeability of molecules across the cell.
由于声音引起的受体电流、静息电流或注入耳蜗的电流而产生的耳蜗内电场会引起外毛细胞 (OHC) 的跨膜电位,但沿细胞的分布情况尚不清楚。在这项研究中,我们使用快速电压敏感染料 ANNINE-6plus 研究了在低频下,分离的 OHC 上细胞周界诱导的 OHC 跨膜电位分布及其对细胞外电场 (EEF) 方向的敏感性。我们通过同时进行全细胞膜片钳来施加已知电压阶跃来校准染料的位敏灵敏度。EEF 诱导的 OHC 跨膜电位沿细胞周界高度不均匀,并且强烈依赖于电场的方向。与许多其他细胞不同,EEF 在圆柱形 OHC 中诱导与电场方向相关的细胞内电位。我们预测,如果没有这种诱导的细胞内电位,EEF 将不会在 OHC 中产生体细胞电活动。结合已知的 OHC 膜微区、电压门控离子通道、电荷和电容的异质性,本研究中测量的 EEF 诱导的非均匀跨膜电位表明,EEF 会影响耳蜗放大和跨细胞分子的电渗透性。