二元和三元SNARE配合物中蛋白质相互作用自由能的单分子测量。

W Liu, Vedrana Montana, Vladimir Parpura, U Mohideen
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引用次数: 27

摘要

我们使用基于原子力显微镜的单分子测量来评估SNARE蛋白syntaxin 1A, SNAP25B和synaptobrevin 2相互作用的激活自由能,这些蛋白调节囊泡与靶膜的细胞内融合。通过破裂力分布作为施加力速率的函数来测量二元syntaxin-synaptobrevin和三元syntaxin-SNAP25B-synaptobrevin复合物的解离速率。利用温度对自发解离速率的依赖性,得到了二元和三元配合物过渡态的活化能分别为19.8 +/- 3.5 kcal/mol = 33 +/- 6 k(B)T和25.7 +/- 3.0 kcal/mol = 43 +/- 5 k(B)T。它们与先前脂质膜中三元复合物的测量结果一致,并且对双层融合和孔形成的顺序是预期的。二元和三元配合物的DeltaG分别为12.4 ~ 16.6 kcal/mol = 21 ~ 28 k(B)T和13.8 ~ 18.0 kcal/mol = 23 ~ 30 k(B)T。三元配合物在1.4 kcal/mol = 2.3 k(B)T时更稳定,与自发解离速率一致。用SNAP25B测量到的更高的粘附能和更小的分子延伸表明,它可能具有独特而重要的生理作用,可以将囊泡拴在/对接到更靠近质膜的地方,增加融合完成的可能性。
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Single Molecule Measurements of Interaction Free Energies Between the Proteins Within Binary and Ternary SNARE Complexes.

We use an Atomic Force Microscope based single molecule measurements to evaluate the activation free energy in the interaction of SNARE proteins syntaxin 1A, SNAP25B and synaptobrevin 2 which regulate intracellular fusion of vesicles with target membranes. The dissociation rate of the binary syntaxin-synaptobrevin and the ternary syntaxin-SNAP25B-synaptobrevin complex was measured from the rupture force distribution as a function of the rate of applied force. The temperature dependence of the spontaneous dissociation rate was used to obtain the activation energy to the transition state of 19.8 +/- 3.5 kcal/mol = 33 +/- 6 k(B)T and 25.7 +/- 3.0 kcal/mol = 43 +/- 5 k(B)T for the binary and ternary complex, respectively. They are consistent with those measured previously for the ternary complex in lipid membranes and are of order expected for bilayer fusion and pore formation. The DeltaG was 12.4-16.6 kcal/mol = 21-28 k(B)T and 13.8-18.0 kcal/mol = 23-30 k(B)T for the binary and ternary complex, respectively. The ternary complex was more stable by 1.4 kcal/mol = 2.3 k(B)T, consistent with the spontaneous dissociation rates. The higher adhesion energies and smaller molecular extensions measured with SNAP25B point to its possible unique and important physiological role in tethering/docking the vesicle in closer proximity to the plasma membrane and increasing the probability for fusion completion.

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