Amasheh S, Wenzel U, Boll M, Dorn D, Weber W, Clauss W, Daniel H
Institute of Nutritional Sciences, University of Giessen, Wilhelmstrasse 20, D-35392 Giessen, FRG.
J Membr Biol. 1997 Feb 1;155(3):247-56. doi: 10.1007/s002329900177.
The cloned intestinal peptide transporter is capable of electrogenic H+-coupled cotransport of neutral di- and tripeptides and selected peptide mimetics. Since the mechanism by which PepT1 transports substrates that carry a net negative or positive charge at neutral pH is poorly understood, we determined in Xenopus oocytes expressing PepT1 the characteristics of transport of differently charged glycylpeptides. Transport function of PepT1 was assessed by flux studies employing a radiolabeled dipeptide and by the two-electrode voltage-clamp-technique. Our studies show, that the transporter is capable of translocating all substrates by an electrogenic process that follows Michaelis Menten kinetics. Whereas the apparent K0.5 value of a zwitterionic substrate is only moderately affected by alterations in pH or membrane potential, K0.5 values of charged substrates are strongly dependent on both, pH and membrane potential. Whereas the affinity of the anionic dipeptide increased dramatically by lowering the pH, a cationic substrate shows only a weak affinity for PepT1 at all pH values (5.5-8.0). The driving force for uptake is provided mainly by the inside negative transmembrane electrical potential. In addition, affinity for proton interaction with PepT1 was found to depend on membrane potential and proton binding subsequently affects the substrate affinity. Furthermore, our studies suggest, that uptake of the zwitterionic form of a charged substrate contributes to overall transport and that consequently the stoichiometry of the flux-coupling ratios for peptide: H+/H3O+ cotransport may vary depending on pH.
克隆的肠道肽转运体能够进行电生性的H⁺偶联中性二肽、三肽及某些肽模拟物的共转运。由于对PepT1在中性pH条件下转运带净负电荷或正电荷底物的机制了解甚少,我们在表达PepT1的非洲爪蟾卵母细胞中确定了不同电荷的甘氨酰肽的转运特性。通过使用放射性标记二肽的通量研究和双电极电压钳技术评估PepT1的转运功能。我们的研究表明,该转运体能够通过遵循米氏动力学的电生性过程转运所有底物。两性离子底物的表观K0.5值仅受到pH或膜电位变化的中度影响,而带电荷底物的K0.5值强烈依赖于pH和膜电位两者。阴离子二肽的亲和力通过降低pH而显著增加,而阳离子底物在所有pH值(5.5 - 8.0)下对PepT1仅表现出较弱的亲和力。摄取的驱动力主要由膜内负跨膜电位提供。此外,发现质子与PepT1相互作用的亲和力取决于膜电位,并且质子结合随后会影响底物亲和力。此外,我们的研究表明,带电荷底物的两性离子形式的摄取有助于整体转运,因此肽:H⁺/H₃O⁺共转运的通量耦合比的化学计量可能因pH而异。