Jirounek P, Jones G J, Burckhardt C W, Straub R W
Biophys J. 1981 Jan;33(1):107-19. doi: 10.1016/S0006-3495(81)84875-8.
The distribution of extracellular and intracellular potential in the sucrose gap apparatus, previously established for a single fiber using the cable equations for a core conductor model (Jirounek and Straub, Biophys. J., 11:1, 1971), is obtained for a multifiber preparation. The exact equation is derived relating the true membrane potential change to the measured potential differences across the sucrose gap, the junction potentials between sucrose and physiological solution, the membrane potential in the sucrose region, and the electrical parameters of the preparation in each region of the sucrose gap. The extracellular potential distribution has been measured using a modified sucrose gap apparatus for the frog sciatic nerve and the rabbit vagus nerve. The results indicate a hyperpolarization of the preparations in the sucrose region, of 60--75 mV. The hyperpolarization is independent of the presence of junction potentials. The calculation of the correction terms in the equation relating the actual to the measured potential change is illustrated for the case of complete depolarization by KC1 on one side of the sucrose gap. The correction terms in the equation are given for various experimental conditions, and a number of nomographic charts are presented, by means of which the correction factors can be rapidly evaluated.
利用芯导体模型的电缆方程(Jirounek和Straub,《生物物理杂志》,11:1,1971),先前已为单根纤维建立了蔗糖间隙装置中的细胞外和细胞内电位分布,现针对多纤维制剂进行了研究。推导出了精确方程,该方程将真实膜电位变化与跨蔗糖间隙测量的电位差、蔗糖与生理溶液之间的交界电位、蔗糖区域的膜电位以及蔗糖间隙各区域制剂的电学参数相关联。已使用改良的蔗糖间隙装置测量了青蛙坐骨神经和兔迷走神经的细胞外电位分布。结果表明,制剂在蔗糖区域出现了60 - 75 mV的超极化。这种超极化与交界电位的存在无关。以蔗糖间隙一侧被KCl完全去极化的情况为例,说明了将实际电位变化与测量电位变化相关联的方程中校正项的计算方法。给出了该方程在各种实验条件下的校正项,并呈现了一些列线图,借助这些图可以快速评估校正因子。