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Mechanical switching and coupling between two dissociation pathways in a P-selectin adhesion bond

机译:P-选择素粘附键中两个解离路径之间的机械转换和耦合

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摘要

Many biomolecular bonds exhibit a mechanical strength that increases in proportion to the logarithm of the rate of force application. Consistent with exponential decrease in bond lifetime under rising force, this kinetically limited failure reflects dissociation along a single thermodynamic pathway impeded by a sharp free energy barrier. Using a sensitive force probe to test the leukocyte adhesion bond P-selectin glycoprotein ligand 1 (PSGL-1)–P-selectin, we observed a linear increase of bond strength with each 10-fold increase in the rate of force application from 300 to 30,000 pN/sec, implying a single pathway for failure. However, the strength and lifetime of PSGL-1–P-selectin bonds dropped anomalously when loaded below 300 pN/sec, demonstrating unexpectedly faster dissociation and a possible second pathway for failure. Remarkably, if first loaded by a “jump” in force to 20–30 pN, the bonds became strong when subjected to a force ramp as slow as 30 pN/sec and exhibited the same single-pathway kinetics under all force rates. Applied in this way, a new “jump/ramp” mode of force spectroscopy was used to show that the PSGL-1–P-selectin bond behaves as a mechanochemical switch where force history selects between two dissociation pathways with markedly different properties. Furthermore, replacing PSGL-1 by variants of its 19-aa N terminus and by the crucial tetrasaccharide sialyl LewisX produces dramatic changes in the failure kinetics, suggesting a structural basis for the two pathways. The two-pathway switch seems to provide a mechanism for the “catch bond” response observed recently with PSGL-1–P-selectin bonds subjected to small-constant forces.
机译:许多生物分子键表现出的机械强度与施加力的对数成正比。与在升高的作用力下键合寿命的指数下降一致,这种动力学受限的破坏反映了沿一条热力学途径的解离,该途径受急剧的自由能垒阻碍。使用灵敏的力探针测试白细胞粘附键P-选择蛋白糖蛋白配体1(PSGL-1)-P-选择蛋白,我们观察到结合强度呈线性增加,施力速率从300升高到10倍。 30,000 pN / sec,这意味着失败的单一途径。但是,当负载低于300 pN / sec时,PSGL-1–P-选择素键的强度和寿命会异常下降,这表明了意外的更快解离和可能的第二条失败途径。值得注意的是,如果首先通过“跳跃”力加载至20–30 pN,则当以低至30 pN / sec的速度缓慢倾斜时,键会变得牢固,并且在所有力速率下均表现出相同的单路径动力学。以这种方式应用后,使用了一种新的“跳跃/斜坡”力谱模式,以显示PSGL-1–P-选择素键的行为表现为机械化学转换,其中力历史在两个具有明显不同特性的解离路径之间进行选择。此外,用其19-aa N末端的变体和关键的四糖唾液酸的Lewis X 替代PSGL-1会导致失效动力学发生显着变化,为这两种途径提供了结构基础。两路转换似乎为最近观察到的承受小的恒定力的PSGL-1–P-选择素键的“捕获键”响应提供了一种机制。

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