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Chapter 11 - Reconstitution of membrane proteins in phospholipid bilayer nanodiscs.第11章 - 膜蛋白在磷脂双层纳米盘中的重构。
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Membrane protein assembly into Nanodiscs.膜蛋白组装成纳米盘。
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GroEL as a molecular scaffold for structural analysis of the anthrax toxin pore.作为炭疽毒素孔道结构分析分子支架的伴侣蛋白GroEL
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Magic-angle spinning solid-state NMR spectroscopy of nanodisc-embedded human CYP3A4.嵌入纳米盘的人细胞色素P450 3A4的魔角旋转固态核磁共振光谱
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Anthrax toxin: receptor binding, internalization, pore formation, and translocation.炭疽毒素:受体结合、内化、孔形成及转位
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Applications of phospholipid bilayer nanodiscs in the study of membranes and membrane proteins.磷脂双层纳米盘在膜及膜蛋白研究中的应用。
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Model of the toxic complex of anthrax: responsive conformational changes in both the lethal factor and the protective antigen heptamer.炭疽毒素复合物模型:致死因子和保护性抗原七聚体的响应性构象变化
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Protein translocation through the anthrax toxin transmembrane pore is driven by a proton gradient.蛋白质通过炭疽毒素跨膜孔的转运由质子梯度驱动。
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炭疽毒素孔在脂质纳米盘和脂质囊泡中的三维结构。

Three-dimensional structure of the anthrax toxin pore inserted into lipid nanodiscs and lipid vesicles.

机构信息

Department of Biochemistry and Molecular Biology, University of Kansas Medical Center, Kansas City, KS 66160, USA.

出版信息

Proc Natl Acad Sci U S A. 2010 Feb 23;107(8):3453-7. doi: 10.1073/pnas.1000100107. Epub 2010 Feb 8.

DOI:10.1073/pnas.1000100107
PMID:20142512
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2840458/
Abstract

A major goal in understanding the pathogenesis of the anthrax bacillus is to determine how the protective antigen (PA) pore mediates translocation of the enzymatic components of anthrax toxin across membranes. To obtain structural insights into this mechanism, we constructed PA-pore membrane complexes and visualized them by using negative-stain electron microscopy. Two populations of PA pores were visualized in membranes, vesicle-inserted and nanodisc-inserted, allowing us to reconstruct two virtually identical PA-pore structures at 22-A resolution. Reconstruction of a domain 4-truncated PA pore inserted into nanodiscs showed that this domain does not significantly influence pore structure. Normal mode flexible fitting of the x-ray crystallographic coordinates of the PA prepore indicated that a prominent flange observed within the pore lumen is formed by the convergence of mobile loops carrying Phe427, a residue known to catalyze protein translocation. Our results have identified the location of a crucial functional element of the PA pore and documented the value of combining nanodisc technology with electron microscopy to examine the structures of membrane-interactive proteins.

摘要

了解炭疽杆菌发病机制的一个主要目标是确定保护性抗原 (PA) 孔如何介导炭疽毒素的酶成分跨膜易位。为了深入了解这种机制,我们构建了 PA 孔膜复合物,并通过负染色电子显微镜对其进行了可视化。在膜中观察到两种 PA 孔,即囊泡插入和纳米盘插入,这使我们能够在 22-A 分辨率下重建两个几乎相同的 PA 孔结构。重建插入纳米盘的截断结构域 4 的 PA 孔表明,该结构域不会显著影响孔结构。对 PA 前孔的 X 射线晶体学坐标进行的正常模态灵活拟合表明,在孔腔中观察到的一个突出的凸缘是由携带 Phe427 的可移动环的收敛形成的,Phe427 是已知催化蛋白易位的残基。我们的结果确定了 PA 孔的一个关键功能元素的位置,并记录了将纳米盘技术与电子显微镜结合使用来检查膜相互作用蛋白结构的价值。