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基于冷冻电镜的结构研究揭示了金黄色葡萄球菌γ-溶素超分子组装体的孔形成机制。

Cryo-EM-based structural insights into supramolecular assemblies of γ-hemolysin from S. aureus reveal the pore formation mechanism.

机构信息

Molecular Biophysics Unit, Indian Institute of Science, Bangalore 560012, India.

Molecular Biophysics Unit, Indian Institute of Science, Bangalore 560012, India.

出版信息

Structure. 2023 Jun 1;31(6):651-667.e5. doi: 10.1016/j.str.2023.03.009. Epub 2023 Apr 4.

Abstract

γ-Hemolysin (γ-HL) is a hemolytic and leukotoxic bicomponent β-pore-forming toxin (β-PFT), a potent virulence factor from the Staphylococcus aureus Newman strain. In this study, we performed single-particle cryoelectron microscopy (cryo-EM) of γ-HL in a lipid environment. We observed clustering and square lattice packing of octameric HlgAB pores on the membrane bilayer and an octahedral superassembly of octameric pore complexes that we resolved at resolution of 3.5 Å. Our atomic model further demonstrated the key residues involved in hydrophobic zipping between the rim domains of adjacent octameric complexes, providing additional structural stability in PFTs post oligomerization. We also observed extra densities at the octahedral and octameric interfaces, providing insights into the plausible lipid-binding residues involved for HlgA and HlgB components. Furthermore, the hitherto elusive N-terminal region of HlgA was also resolved in our cryo-EM map, and an overall mechanism of pore formation for bicomponent β-PFTs is proposed.

摘要

γ-溶血素 (γ-HL) 是一种溶血和白细胞毒性双组份 β-孔形成毒素 (β-PFT),是来自金黄色葡萄球菌 Newman 株的一种有效的毒力因子。在这项研究中,我们在脂质环境中对 γ-HL 进行了单颗粒冷冻电镜 (cryo-EM) 研究。我们观察到八聚体 HlgAB 孔在膜双层上的聚集和正方形晶格排列,以及我们在分辨率为 3.5 Å 下解析的八聚体孔复合物的八面体超组装。我们的原子模型进一步证明了参与相邻八聚体复合物边缘域之间疏水性拉链的关键残基,为寡聚化后 PFT 提供了额外的结构稳定性。我们还在八面体和八聚体界面观察到额外的密度,为 HlgA 和 HlgB 成分中可能涉及的脂质结合残基提供了见解。此外,HlgA 的迄今难以捉摸的 N 端区域也在我们的 cryo-EM 图谱中得到解决,并提出了双组份 β-PFT 孔形成的总体机制。

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