Dillon P F, Root-Bernstein R S, Sears P R, Olson L K
Department of Physiology, Michigan State University, East Lansing, Michigan 48823, USA.
Biophys J. 2000 Jul;79(1):370-6. doi: 10.1016/S0006-3495(00)76298-9.
The electric field produced by cell membranes, extending only a few nanometers, is 1000 times stronger than the electric fields required to produce dissociation of molecular complexes. Using the complex formed by norepinephrine (NE) and ascorbic acid (AA), we have demonstrated the quantitative binding of AA to NE, the use of capillary electrophoresis to measure quantitative binding of nonelectrolyte complexes, the determination of a dissociation constant (Kd) from electric field-dissociation constants (Ke), and a model for natural dissociation of the NE-AA complex due to the electric field generated by a cell membrane. NE-AA dissociation constants show little effect of NE concentration or pH changes. NE-related compounds also bind AA: epinephrine > norepinephrine > tyrosine > histamine > phenylalanine. Serotonin does not bind AA. Phosphorylated AA and glucose also bind NE at 0.05 and 0.08 of the AA binding, respectively. Natural electrophoresis of molecular complexes allows compounds to travel through the body in a protected state and still be available for physiological activity upon reaching a membrane.
细胞膜产生的电场仅延伸几纳米,但其强度比使分子复合物解离所需的电场强度强1000倍。利用去甲肾上腺素(NE)和抗坏血酸(AA)形成的复合物,我们证明了AA与NE的定量结合、使用毛细管电泳测量非电解质复合物的定量结合、从电场解离常数(Ke)确定解离常数(Kd),以及一个关于由于细胞膜产生的电场导致NE - AA复合物自然解离的模型。NE - AA解离常数受NE浓度或pH变化的影响很小。与NE相关的化合物也能结合AA:肾上腺素>去甲肾上腺素>酪氨酸>组胺>苯丙氨酸。血清素不结合AA。磷酸化的AA和葡萄糖也分别以AA结合量的0.05和0.08结合NE。分子复合物的自然电泳使化合物能够在受保护的状态下在体内移动,并在到达膜时仍可用于生理活动。