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Reliability theory for receptor-ligand bond dissociation

机译:受体-配体键解离的可靠性理论

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Cell adhesion in the presence of hydrodynamic forces is a critical factor in inflammation, cancer metastasis, and blood clotting. A number of assays have recently been developed to apply forces to small numbers of the receptor—ligand bonds responsible for adhesion. Examples include assays using hydrodynamic shear in flow chambers or elastic probe deflection assays such as the atomic force microscope or the biomembrane force probe. One wishes to use the data on the time distribution of dissociation from these assays to derive information on the force dependence of reaction rates, an important determinant of cell adhesive behavior. The dissociation process can be described using the theory developed for reliability engineering of electronic components and networks. We use this framework along with the Bell model for the reverse reaction rate (kr = k’,’ expEro fIkT], where f is the applied force and k? and r0 are Bell model parameters) to write closed form expressions for the probability distribution of break-up with multiple independent or interacting bonds. These expressions show that the average lifetime of n bonds scales with the nth harmonic number multiplied by the lifetime of a single bond. Results from calculation and simulations are used to describe the effect of experimental procedures in forced unbinding assays on the estimation of parameters for the force dependence of reverse reaction rates.
机译:在存在水动力的情况下,细胞粘附是炎症,癌症转移和血液凝结的关键因素。最近已经开发出许多测定法,以将力施加到少量的负责粘附的受体-配体键上。实例包括在流动室中使用流体动力剪切的分析或弹性探针偏转分析,例如原子力显微镜或生物膜力探针。人们希望使用这些测定中解离时间分布的数据来得出有关反应速率的作用力依赖性的信息,反应速率是细胞粘附行为的重要决定因素。可以使用为电子组件和网络的可靠性工程开发的理论来描述解离过程。我们将这个框架与Bell模型一起用于逆反应速率(kr = k','expEro fIkT],其中f是施加力,k?和r0是Bell模型参数)来编写概率分布的封闭形式表达式与多个独立或相互作用的键断裂。这些表达式表明,n键的平均寿命与n次谐波数乘以单键的寿命成比例。来自计算和模拟的结果用于描述强制解开测定中实验程序对反向反应速率的力依赖性参数估计的影响。

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