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二异丙基氟磷酸(DIDS)与人红细胞膜中带3蛋白(AE1)结合的动力学机制

Kinetic mechanism of DIDS binding to band 3 (AE1) in human erythrocyte membranes.

作者信息

Salhany J M, Schopfer L M

机构信息

Veterans Administration Medical Center, University of Nebraska Medical Center, Omaha, Nebraska 68198-5290, USA.

出版信息

Blood Cells Mol Dis. 2001 Sep-Oct;27(5):844-9. doi: 10.1006/bcmd.2001.0458.

Abstract

Stilbenedisulfonates (S) are used widely in cell biology as competitive inhibitors of anion exchange, but the mechanism of competition is not resolved. Resolution requires understanding the detailed steps in the reaction of stilbenedisulfonates with various anion-exchange proteins. Studies on the reversible binding of DBDS (4,4'-dibenzamido-2,2'-stilbenedisulfonate) and H2DIDS (4,4'-diisothiocyanatodihydro-2,2'-stilbenedisulfonate) to erythrocyte band 3 (B) have shown biphasic kinetic time courses at 25 degrees C. Yet, results for the reversible binding of DIDS (4,4'-diisothiocyanato-2,2'-stilbenedisulfonate) are controversial. One recent report has shown monophasic kinetics, in experiments performed at 0 degrees C, and at a single, very low concentration of DIDS (0.1 microM). Studies are presented which attempt to reconcile these recent findings with the other kinetic data in the literature. We measure the kinetics of DIDS reversible binding to band 3, over a wide DIDS concentration range. In addition, the time course for DIDS binding to band 3 at 0 degrees C is compared with that at 25 degrees C. The results show biphasic binding kinetics at both 0 and 25 degrees C, and they are consistent with expectations for a two-step binding mechanism (S + B <--> SB <--> SB*). Furthermore, computer-assisted model simulation studies reveal that monophasic DIDS binding kinetics are generated by a two-step mechanism, when calculations are performed at 0.1 microM DIDS and 0 degrees C. Under these conditions the initial binding step in the two-step reaction becomes rate limiting. We conclude that the two-step binding mechanism best describes stilbenedisulfonate binding to band 3 and that the observation of monophasic kinetics at low concentrations of DIDS, while valid, is not mechanistically discriminating, since both one-step and two-step mechanisms can yield the same result.

摘要

二苯乙烯二磺酸盐(S)在细胞生物学中被广泛用作阴离子交换的竞争性抑制剂,但其竞争机制尚未明确。要明确该机制,需要了解二苯乙烯二磺酸盐与各种阴离子交换蛋白反应的详细步骤。关于4,4'-二苯甲酰胺基-2,2'-二苯乙烯二磺酸盐(DBDS)和4,4'-二异硫氰酸二氢-2,2'-二苯乙烯二磺酸盐(H2DIDS)与红细胞带3(B)的可逆结合研究表明,在25℃时其动力学时间进程呈双相。然而,4,4'-二异硫氰酸-2,2'-二苯乙烯二磺酸盐(DIDS)可逆结合的结果存在争议。最近的一份报告显示,在0℃且DIDS浓度非常低(0.1μM)的单一浓度下进行的实验中,其动力学呈单相。本文所呈现的研究试图将这些最新发现与文献中的其他动力学数据相协调。我们在较宽的DIDS浓度范围内测量了DIDS与带3的可逆结合动力学。此外,还比较了0℃和25℃时DIDS与带3结合的时间进程。结果表明,在0℃和25℃时均呈现双相结合动力学,这与两步结合机制(S + B <--> SB <--> SB*)的预期一致。此外,计算机辅助模型模拟研究表明,当在0.1μM DIDS和0℃条件下进行计算时,两步机制会产生单相DIDS结合动力学。在这些条件下,两步反应中的初始结合步骤成为限速步骤。我们得出结论,两步结合机制最能描述二苯乙烯二磺酸盐与带3的结合,并且在低浓度DIDS下观察到的单相动力学虽然有效,但在机制上并无区分作用,因为一步和两步机制都能产生相同的结果。

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