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Probing ADP Induced Aggregation Kinetics During Platelet-Nanoparticle Interactions: Functional Dynamics Analysis to Rationalize Safety and Benefits

机译:血小板-纳米粒子相互作用过程中探究ADP诱导的聚集动力学:功能动力学分析以合理化安全性和收益

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摘要

Platelets, one of the most sensitive blood cells, can be activated by a range of external and internal stimuli including physical, chemical, physiological, and/or non-physiological agents. Platelets need to respond promptly during injury to maintain blood hemostasis. The time profile of platelet aggregation is very complex, especially in the presence of the agonist adenosine 5′-diphosphate (ADP), and it is difficult to probe such complexity using traditional linear dose response models. In the present study, we explored functional analysis techniques to characterize the pattern of platelet aggregation over time in response to nanoparticle induced perturbations. This has obviated the need to represent the pattern of aggregation by a single summary measure and allowed us to treat the entire aggregation profile over time, as the response. The modeling was performed in a flexible manner, without any imposition of shape restrictions on the curve, allowing smooth platelet aggregation over time. The use of a probabilistic framework not only allowed statistical prediction and inference of the aggregation signatures, but also provided a novel method for the estimation of higher order derivatives of the curve, thereby allowing plausible estimation of the extent and rate of platelet aggregation kinetics over time. In the present study, we focused on the estimated first derivative of the curve, obtained from the platelet optical aggregometric profile over time and used it to discern the underlying kinetics as well as to study the effects of ADP dosage and perturbation with gold nanoparticles. In addition, our method allowed the quantification of the extent of inter-individual signature variations. Our findings indicated several hidden features and showed a mixture of zero and first order kinetics interrupted by a metastable zero order ADP dose dependent process. In addition, we showed that the two first order kinetic constants were ADP dependent. However, we were able to perturb the overall kinetic pattern using gold nanoparticles, which resulted in autocatalytic aggregation with a higher aggregate mass and which facilitated the aggregation rate.
机译:血小板是最敏感的血细胞之一,可被一系列外部和内部刺激激活,包括物理,化学,生理和/或非生理因素。受伤期间血小板需要迅速做出反应以维持血液止血。血小板聚集的时间分布非常复杂,尤其是在存在激动剂腺苷5'-二磷酸(ADP)的情况下,并且使用传统的线性剂量反应模型很难探究这种复杂性。在本研究中,我们探索了功能分析技术来表征随时间变化而响应纳米粒子引起的扰动的血小板聚集模式。这样就消除了通过一个简单的度量来表示聚合模式的需要,并允许我们将整个聚合配置随时间的推移作为响应。建模以灵活的方式进行,在曲线上没有任何形状限制,从而允许血小板随时间平滑聚集。概率框架的使用不仅允许对聚集特征的统计预测和推断,而且为估计曲线的高阶导数提供了一种新颖的方法,从而可以合理估计随时间推移的血小板聚集动力学的程度和速率。 。在本研究中,我们着眼于曲线的一阶导数,该曲线是从血小板光学总凝集曲线随时间获得的,并用于识别基本动力学以及研究金纳米颗粒对ADP剂量和扰动的影响。另外,我们的方法允许量化个体间特征差异的程度。我们的发现表明了一些隐藏的特征,并显示了由亚稳态零级ADP剂量依赖性过程中断的零级和一级动力学混合。此外,我们表明两个一级动力学常数是ADP依赖性的。但是,我们能够使用金纳米颗粒干扰整体动力学模式,从而导致具有更高聚集质量的自催化聚集,并促进了聚集速率。

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