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不同功能形式霍乱弧菌溶血素寡聚物的三维结构:冷冻电镜研究。

Three-dimensional structure of different functional forms of the Vibrio cholerae hemolysin oligomer: a cryo-electron microscopic study.

机构信息

Division of Electron Microscopy, National Institute of Cholera and Enteric Diseases, P-33, C.I.T. Road, Scheme XM, Beleghata, Kolkata 700010, India.

出版信息

J Bacteriol. 2010 Jan;192(1):169-78. doi: 10.1128/JB.00930-09.

DOI:10.1128/JB.00930-09
PMID:19854900
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2798276/
Abstract

Vibrio cholerae hemolysin (HlyA) is a 65-kDa water-soluble pore-forming toxin that causes lysis of eukaryotic cells by destroying selective permeability of the plasma membrane bilayer. The HlyA monomer self-assembles on the target cell surface to the more stable beta-barrel amphipathic heptamer, which inserts into the membrane bilayer to form a diffusion channel. Deletion of the 15-kDa beta-prism lectin domain at the C terminus generates a 50-kDa hemolysin variant (HlyA50) with an approximately 1,000-fold decrease in hemolytic activity. Because functional differences are eventually dictated by structural differences, we determined three-dimensional structures of 65- and 50-kDa HlyA oligomers, using cryo-electron microscopy and single-particle methods. Our study clearly shows that the HlyA oligomer has sevenfold symmetry but that the HlyA50 oligomer is an asymmetric molecule. The HlyA oligomer has bowl-like, arm-like, and ring-like domains. The bowl-like domain is coupled with the ring-like domain, and seven side openings are present just beneath the ring-like domain. Although a central channel is present in both HlyA and HlyA50 oligomers, they differ in pore size as well as in shape of the molecules and channel. These structural differences may be relevant to the striking difference in efficiencies of functional channel formation by the two toxin forms.

摘要

霍乱弧菌溶血素 (HlyA) 是一种 65kDa 的水溶性成孔毒素,通过破坏质膜双层的选择性通透性导致真核细胞裂解。HlyA 单体在靶细胞表面自组装成更稳定的β-桶两性七聚体,该七聚体插入膜双层形成扩散通道。在 C 末端缺失 15kDaβ-棱柱凝集素结构域会产生约 1000 倍降低溶血活性的 50kDa 溶血素变体 (HlyA50)。由于功能差异最终取决于结构差异,因此我们使用低温电子显微镜和单颗粒方法确定了 65kDa 和 50kDa HlyA 寡聚物的三维结构。我们的研究清楚地表明,HlyA 寡聚体具有七倍对称性,但 HlyA50 寡聚体是不对称分子。HlyA 寡聚体具有碗状、臂状和环状结构域。碗状结构域与环状结构域相连,在环状结构域下方有七个侧开口。尽管 HlyA 和 HlyA50 寡聚体中都存在中央通道,但它们在孔径以及分子和通道的形状上存在差异。这些结构差异可能与两种毒素形式在功能通道形成效率上的显著差异有关。

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