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首页> 外文期刊>Molecular pharmacology. >Molecular Mechanism of Taurocholate Transport by the Bile Salt Export Pump, an ABC Transporter Associated with Intrahepatic Cholestasis
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Molecular Mechanism of Taurocholate Transport by the Bile Salt Export Pump, an ABC Transporter Associated with Intrahepatic Cholestasis

机译:胆汁盐出口泵的牛磺酸盐输出的分子机制,与肝内胆汁淤积症相关的ABC转运蛋白

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摘要

The bile salt export pump (BSEP/ABCB11) transports bile salts from hepatocytes into bile canaliculi. Its malfunction is associated with severe liver disease. One reason for functional impairment of BSEP is systemic administration of drugs, which as a side effect inhibit the transporter. Therefore, drug candidates are routinely screened for potential interaction with this transporter. Hence, understanding the functional biology of BSEP is of key importance. In this study, we engineered the transporter to dissect interdomain communication paths. We introduced mutations in noncanonical and in conserved residues of either of the two nucleotide binding domains and determined the effect on BSEP basal and substrate-stimulated ATPase activity as well as on taurocholate transport. Replacement of the noncanonical methionine residue M584 (Walker B sequence of nucleotide binding site 1) by glutamate imparted hydrolysis competency to this site. Importantly, this mutation was able to sustain 15% of wild-type transport activity, when the catalytic glutamate of the canonical nucleotide binding site 2 was mutated to glutamine. Kinetic modeling of experimental results for the ensuing M584E/E1244Q mutant suggests that a transfer of hydrolytic capacity from the canonical to the noncanonical nucleotide binding site results in loss of active and adoption of facilitative characteristics. This facilitative transport is ATP-gated. To the best of our knowledge, this result is unprecedented in ATP-binding cassette proteins with one noncanonical nucleotide binding site. Our study promotes an understanding of the domain interplay in BSEP as a basis for exploration of drug interactions with this transporter.
机译:胆汁盐出口泵(BSEP / ABCB11)将胆汁盐从肝细胞转运成胆汁灌注液。它的故障与严重的肝病有关。 BSEP功能损伤的一个原因是系统施用药物,其作为副作用抑制转运蛋白。因此,常规筛选药物候选物以潜在与该转运仪的潜在相互作用。因此,了解BSEP的功能生物学是关键重要性。在这项研究中,我们设计了运输器来解剖互补通信路径。我们引入了两种核苷酸结合结构域中的任一种的非甘露解物和保守残余物中的突变,并确定了对BSEP基础和基材刺激的ATP酶活性以及牛磺酸盐的影响。用谷氨酸赋予该部位的谷氨酸赋予水解能力替代非共甘氨酸甲硫氨酸残基M584(伴核苷酸结合位点1)。重要的是,当规范核苷酸结合位点2的催化谷氨酸突变到谷氨酰胺时,该突变能够维持15%的野生型运输活性。随后的M584E / E124QQ突变体的实验结果的动力学建模表明,从规范的水解能力转移到非甘露糖核苷酸结合位点导致活性和采用的促进特性。这种促进的运输是ATP门控。据我们所知,该结果在ATP结合盒式蛋白质中前所未有,具有一个非甘露糖苷酸结合位点。我们的研究促进了对BSEP中的域相互作用的理解作为与该转运蛋白的药物相互作用探索的基础。

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  • 来源
    《Molecular pharmacology.》 |2017年第4期|共13页
  • 作者单位

    Med Univ Vienna Ctr Pathobiochem &

    Genet Inst Med Chem Waehringerstr 10 A-1090 Vienna Austria;

    Med Univ Vienna Ctr Physiol &

    Pharmacol Inst Physiol Vienna Austria;

    Univ Vienna Fac Life Sci Dept Pharmaceut Chem Vienna Austria;

    Med Univ Vienna Ctr Pathobiochem &

    Genet Inst Med Chem Waehringerstr 10 A-1090 Vienna Austria;

    Med Univ Vienna Inst Canc Res Vienna Austria;

    Med Univ Vienna Hans Popper Lab Mol Hepatol Div Gastroenterol &

    Hepatol Dept Internal Med 3;

    Med Univ Vienna Ctr Physiol &

    Pharmacol Inst Pharmacol Vienna Austria;

    Med Univ Vienna Ctr Pathobiochem &

    Genet Inst Med Chem Waehringerstr 10 A-1090 Vienna Austria;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 药理学;
  • 关键词

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