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Dissecting the self-assembly kinetics of multimeric pore-forming toxins

机译:剖析多聚体成孔毒素的自组装动力学

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Pore-forming toxins are ubiquitous cytotoxins that are exploited by both bacteria and the immune response of eukaryotes. These toxins kill cells by assembling large multimeric pores on the cell membrane. However, a quantitative understanding of the mechanism and kinetics of this self-assembly process is lacking. We propose an analytically solvable kinetic model for stepwise, reversible oligomerization. In biologically relevant limits, we obtain simple algebraic expressions for the rate of pore formation, as well as for the concentration of pores as a function of time. Quantitative agreement is obtained between our model and time-resolved kinetic experiments of Bacillus thuringiensis Cry1Ac (tetrameric pore), aerolysin, Staphylococcus aureus alpha-haemolysin (heptameric pores) and Escherichia coli cytolysin A (dodecameric pore). Furthermore, our model explains how rapid self-assembly can take place with low concentrations of oligomeric intermediates, as observed in recent single-molecule fluorescence experiments of alpha-haemolysin self-assembly. We propose that suppressing the concentration of oligomeric intermediates may be the key to reliable, error-free, self-assembly of pores.
机译:形成毛孔的毒素是普遍存在的细胞毒素,被细菌和真核生物的免疫反应所利用。这些毒素通过在细胞膜上组装大的多聚体孔杀死细胞。但是,缺乏对这种自组装过程的机理和动力学的定量理解。我们提出了一个可解析的动力学模型,用于逐步,可逆的低聚。在生物学相关的范围内,我们获得了孔形成速率以及孔浓度随时间变化的简单代数表达式。我们的模型与苏云金芽孢杆菌Cry1Ac(四聚体孔),气溶素,金黄色葡萄球菌α-溶血素(七聚体孔)和大肠杆菌溶细胞素A(十二聚体孔)的时间分辨动力学实验之间获得了定量一致性。此外,我们的模型解释了如何在低浓度的低聚中间体发生快速自组装,正如最近在α-溶血素自组装的单分子荧光实验中观察到的那样。我们建议抑制低聚中间体的浓度可能是可靠,无错误,自组装孔的关键。

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