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Adhesion of a blood platelet to injured tissue

机译:血小板对受伤组织的粘附

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A numerical study of platelet adhesion to injured endothelial wall during blood flow is conducted using the boundary-element method for Stokes flow. An idealised model is presented where the platelet is treated as an elliptical particle carried over a plane wall in simple shear flow. When the platelet is sufficiently close to the wall, adhesive bonds are established tethering the platelet via receptors distributed around its perimeter to ligands sited at specified locations on an injured section of the wall. A generalised boundary-integral equation of the second kind is formulated to determine the translational and angular velocities of the platelet and the force acting on the platelet due to adhesive bonds. Numerical simulations are performed for a small number of bonds behaving as simple springs, and the force required to capture and immobilise an elliptical particle is estimated. Further simulations conducted using an adhesive bond dynamics model show that bond formation operating at realistic biophysical parameter values can lead to platelet capture and arrest.
机译:使用斯托克斯血流的边界元方法对血小板在血流过程中粘附于受损内皮壁的数值进行了研究。提出了一种理想化的模型,其中将血小板视为简单剪切流中携带在平面壁上的椭圆形颗粒。当血小板足够靠近壁时,通过围绕其周边分布的受体建立与血小板的束缚键,该受体与位于壁的受损部分上指定位置的配体结合。公式化了第二种广义边界积分方程,以确定血小板的平移和角速度以及由于粘合剂作用在血小板上的力。对少量的键(如简单的弹簧)进行了数值模拟,并估计了捕获和固定椭圆形粒子所需的力。使用粘合剂键动力学模型进行的进一步模拟显示,在实际的生物物理参数值下操作的键形成会导致血小板捕获和阻滞。

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