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Integrating hydrogen deuterium exchange mass spectrometry with molecular dynamics simulations to probe lipid-modulated conformational changes in membrane proteins

机译:将氢氘交换质谱与分子动力学模拟整合到膜蛋白的脂质调制构象变化探测

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摘要

Biological membranes define the boundaries of cells and are composed primarily of phospholipids and membrane proteins. It has become increasingly evident that direct interactions of membrane proteins with their surrounding lipids play key roles in regulating both protein conformations and function. However, the exact nature and structural consequences of these interactions remain difficult to track at the molecular level. Here, we present a protocol that specifically addresses this challenge, First, hydrogen-deuterium exchange mass spectrometry (HDX-MS) of membrane proteins incorporated into nanodiscs of controlled lipid composition is used to obtain information on the lipid species that are involved in modulating the conformational changes in the membrane protein. Then molecular dynamics (MD) simulations in lipid bilayers are used to pinpoint likely lipid-protein interactions, which can be tested experimentally using HDX-MS. By bringing together the MD predictions with the conformational readouts from HDX-MS, we have uncovered key lipid-protein interactions implicated in stabilizing important functional conformations. This protocol can be applied to virtually any integral membrane protein amenable to classic biophysical studies and for which a near-atomic-resolution structure or homology model is available. This protocol takes similar to 4 d to complete, excluding the time for data analysis and MD simulations, which depends on the size of the protein under investigation.
机译:生物膜限定细胞的边界,主要由磷脂和膜蛋白组成。越来越明显,膜蛋白与周围脂质的直接相互作用在调节蛋白质构象和功能方面发挥关键作用。然而,这些相互作用的确切性质和结构后果仍然难以在分子水平追踪。在这里,我们提出了一种具体地解决了该挑战的方案,首先,掺入受控脂质组合物的纳米蛋白中的氢氘交换质谱(HDX-MS)用于获得有关调节脂质物种的信息膜蛋白的构象变化。然后,在脂质双层中的分子动力学(MD)模拟用于定位可能使用HDX-MS进行实验测试的脂质 - 蛋白质相互作用。通过将MD预测与HDX-MS的构象读出一起,我们已经发现涉及稳定重要的功能构象的关键脂质 - 蛋白质相互作用。该方案可以应用于几乎任何完整的膜蛋白,其均可用于经典的生物物理学研究,并且可以使用近原子分辨率结构或同源模型。该协议类似于4 d,以完成,不包括数据分析的时间和MD模拟,这取决于正在调查的蛋白质的大小。

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    Kings Coll London Dept Chem London England;

    Univ Illinois Beckman Inst Adv Sci &

    Technol NIH Ctr Macromol Modeling &

    Bioinformat Ctr Biophys &

    Quantitat Biol Dept Biochem Urbana IL 61801 USA;

    Kings Coll London Dept Chem London England;

    Univ Illinois Beckman Inst Adv Sci &

    Technol NIH Ctr Macromol Modeling &

    Bioinformat Ctr Biophys &

    Quantitat Biol Dept Biochem Urbana IL 61801 USA;

    Kings Coll London Dept Chem London England;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物科学;
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