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气溶素孔道的分子组装揭示了一种旋转的膜插入机制。

Molecular assembly of the aerolysin pore reveals a swirling membrane-insertion mechanism.

机构信息

1] Institute of Bioengineering, School of Life Sciences, Ecole Polytechnique Fédérale de Lausanne, Lausanne, Switzerland. [2] [3].

出版信息

Nat Chem Biol. 2013 Oct;9(10):623-9. doi: 10.1038/nchembio.1312. Epub 2013 Aug 4.

Abstract

Aerolysin is the founding member of a superfamily of β-pore-forming toxins whose pore structure is unknown. We have combined X-ray crystallography, cryo-EM, molecular dynamics and computational modeling to determine the structures of aerolysin mutants in their monomeric and heptameric forms, trapped at various stages of the pore formation process. A dynamic modeling approach based on swarm intelligence was applied, whereby the intrinsic flexibility of aerolysin extracted from new X-ray structures was used to fully exploit the cryo-EM spatial restraints. Using this integrated strategy, we obtained a radically new arrangement of the prepore conformation and a near-atomistic structure of the aerolysin pore, which is fully consistent with all of the biochemical data available so far. Upon transition from the prepore to pore, the aerolysin heptamer shows a unique concerted swirling movement, accompanied by a vertical collapse of the complex, ultimately leading to the insertion of a transmembrane β-barrel.

摘要

aerolysin 是一个β-孔形成毒素超家族的创始成员,其孔结构尚不清楚。我们结合 X 射线晶体学、低温电子显微镜、分子动力学和计算建模来确定单体和七聚体形式的 aerolysin 突变体在孔形成过程的各个阶段的结构。应用了一种基于群体智能的动态建模方法,其中从新的 X 射线结构中提取的 aerolysin 的固有灵活性被用来充分利用低温电子显微镜的空间限制。使用这种综合策略,我们获得了 prepore 构象的全新排列和 aerolysin 孔的近原子结构,这与迄今为止所有可用的生化数据完全一致。从 prepore 到孔的转变过程中,aerolysin 七聚体表现出独特的协同旋转运动,伴随着复合物的垂直坍塌,最终导致跨膜β-桶的插入。

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