首页 正文

The Journal of membrane biology. 2018 Jun;251(3):379-391. doi: 10.1007/s00232-018-0030-2 Q22.92025

Refining Protein Penetration into the Lipid Bilayer Using Fluorescence Quenching and Molecular Dynamics Simulations: The Case of Diphtheria Toxin Translocation Domain

应用荧光淬灭和分子动力学模拟改进白喉毒素跨膜结构域向脂质双层的穿透实验:以白喉毒素为例 翻译改进

Alexander Kyrychenko  1  2, Nathan M Lim  3, Victor Vasquez-Montes  1, Mykola V Rodnin  1, J Alfredo Freites  4, Linh P Nguyen  3, Douglas J Tobias  4, David L Mobley  3  4, Alexey S Ladokhin  5

作者单位 +展开

作者单位

  • 1 Department of Biochemistry and Molecular Biology, Kansas University Medical Center, Kansas City, KS, 66160-7421, USA.
  • 2 Institute of Chemistry and School of Chemistry, V. N. Karazin Kharkiv National University, 4 Svobody Square, Kharkiv, 61022, Ukraine.
  • 3 Department of Pharmaceutical Sciences, University of California, Irvine, Irvine, CA, 92697-2025, USA.
  • 4 Department of Chemistry, University of California, Irvine, Irvine, CA, 92697-2025, USA.
  • 5 Department of Biochemistry and Molecular Biology, Kansas University Medical Center, Kansas City, KS, 66160-7421, USA. aladokhin@kumc.edu.
  • DOI: 10.1007/s00232-018-0030-2 PMID: 29550876

    摘要 Ai翻译

    Dynamic disorder of the lipid bilayer presents a challenge for establishing structure-function relationships in membranous systems. The resulting structural heterogeneity is especially evident for peripheral and spontaneously inserting membrane proteins, which are not constrained by the well-defined transmembrane topology and exert their action in the context of intimate interaction with lipids. Here, we propose a concerted approach combining depth-dependent fluorescence quenching with Molecular Dynamics simulation to decipher dynamic interactions of membrane proteins with the lipid bilayers. We apply this approach to characterize membrane-mediated action of the diphtheria toxin translocation domain. First, we use a combination of the steady-state and time-resolved fluorescence spectroscopy to characterize bilayer penetration of the NBD probe selectively attached to different sites of the protein into membranes containing lipid-attached nitroxyl quenching groups. The constructed quenching profiles are analyzed with the Distribution Analysis methodology allowing for accurate determination of transverse distribution of the probe. The results obtained for 12 NBD-labeled single-Cys mutants are consistent with the so-called Open-Channel topology model. The experimentally determined quenching profiles for labeling sites corresponding to L350, N373, and P378 were used as initial constraints for positioning TH8-9 hairpin into the lipid bilayer for Molecular Dynamics simulation. Finally, we used alchemical free energy calculations to characterize protonation of E362 in soluble translocation domain and membrane-inserted conformation of its TH8-9 fragment. Our results indicate that membrane partitioning of the neutral E362 is more favorable energetically (by ~ 6 kcal/mol), but causes stronger perturbation of the bilayer, than the charged E362.

    Keywords: Alchemical free energy; Depth-dependent fluorescence quenching; Diphtheria toxin; Distribution analysis; Protonation.

    Keywords:protein penetration; lipid bilayer; fluorescence quenching; molecular dynamics simulations

    Copyright © The Journal of membrane biology. 中文内容为AI机器翻译,仅供参考!

    相关内容

    期刊名:Journal of membrane biology

    缩写:J MEMBRANE BIOL

    ISSN:0022-2631

    e-ISSN:1432-1424

    IF/分区:2.9/Q2

    文章目录 更多期刊信息

    全文链接
    引文链接
    复制
    已复制!
    推荐内容
    Refining Protein Penetration into the Lipid Bilayer Using Fluorescence Quenching and Molecular Dynamics Simulations: The Case of Diphtheria Toxin Translocation Domain