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来自大肠杆菌的蜜二糖通透酶的内部螺旋间环4-5在糖结合后参与构象变化。

The inner interhelix loop 4-5 of the melibiose permease from Escherichia coli takes part in conformational changes after sugar binding.

作者信息

Meyer-Lipp Kerstin, Séry Natacha, Ganea Constanta, Basquin Cécile, Fendler Klaus, Leblanc Gérard

机构信息

Max Planck Institute of Biophysics, Max-von-Laue-Strasse 3, 60438 Frankfurt/M, Germany.

出版信息

J Biol Chem. 2006 Sep 8;281(36):25882-92. doi: 10.1074/jbc.M601259200. Epub 2006 Jul 5.

Abstract

Cytoplasmic loop 4-5 of the melibiose permease from Escherichia coli is essential for the process of Na+-sugar translocation (Abdel-Dayem, M., Basquin, C., Pourcher, T., Cordat, E., and Leblanc, G. (2003) J. Biol. Chem. 278, 1518-1524). In the present report, we analyze functional consequences of mutating each of the three acidic amino acids in this loop into cysteines. Among the mutants, only the E142C substitution impairs selectively Na+-sugar translocation. Because R141C has a similar defect, we investigated these two mutants in more detail. Liposomes containing purified mutated melibiose permease were adsorbed onto a solid supported lipid membrane, and transient electrical currents resulting from different substrate concentration jumps were recorded. The currents evoked by a melibiose concentration jump in the presence of Na+, previously assigned to an electrogenic conformational transition (Meyer-Lipp, K., Ganea, C., Pourcher, T., Leblanc, G., and Fendler, K. (2004) Biochemistry 43, 12606-12613), were much smaller for the two mutants than the corresponding signals in cysteineless MelB. Furthermore, in R141C the stimulating effect of melibiose on Na+ affinity was lost. Finally, whereas tryptophan fluorescence spectroscopy revealed impaired conformational changes upon melibiose binding in the mutants, fluorescence resonance energy transfer measurements indicated that the mutants still show cooperative modification of their sugar binding sites by Na+. These data suggest that: 1) loop 4-5 contributes to the coordinated interactions between the ion and sugar binding sites; 2) it participates in an electrogenic conformational transition after melibiose binding that is essential for the subsequent obligatory coupled translocation of substrates. A two-step mechanism for substrate translocation in the melibiose permease is suggested.

摘要

来自大肠杆菌的蜜二糖通透酶的细胞质环4-5对于Na⁺-糖转运过程至关重要(阿卜杜勒-戴耶姆,M.,巴斯坎,C.,普尔彻,T.,科尔达特,E.,和勒布朗,G.(2003年)《生物化学杂志》278,1518 - 1524)。在本报告中,我们分析了将该环中的三个酸性氨基酸逐个突变为半胱氨酸的功能后果。在这些突变体中,只有E142C替换选择性地损害了Na⁺-糖转运。由于R141C有类似缺陷,我们对这两个突变体进行了更详细的研究。含有纯化的突变蜜二糖通透酶的脂质体被吸附到固体支持脂质膜上,并记录了由不同底物浓度跃变产生的瞬态电流。在Na⁺存在下蜜二糖浓度跃变所诱发的电流,之前被认为是由电生构象转变引起的(迈耶-利普,K.,加内亚,C.,普尔彻,T.,勒布朗,G.,和芬德勒,K.(2004年)《生物化学》43,12606 - 12613),这两个突变体的电流比无半胱氨酸的MelB中的相应信号小得多。此外,在R141C中,蜜二糖对Na⁺亲和力的刺激作用丧失。最后,虽然色氨酸荧光光谱显示突变体中蜜二糖结合后构象变化受损,但荧光共振能量转移测量表明突变体仍然显示出Na⁺对其糖结合位点的协同修饰。这些数据表明:1)环4-5有助于离子和糖结合位点之间的协调相互作用;2)它参与蜜二糖结合后的电生构象转变,这对于随后底物的强制偶联转运至关重要。提出了蜜二糖通透酶中底物转运的两步机制。

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