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Fluid shear regulates the kinetics and molecular mechanisms of activation-dependent platelet binding to colon carcinoma cells.

机译:流体剪切调节活化依赖性血小板结合结肠癌细胞的动力学和分子机制。

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摘要

This study was undertaken to investigate the kinetics and molecular requirements of platelet binding to tumor cells in bulk suspensions subjected to a uniform linear shear field, using a human colon adenocarcinoma cell line (LS174T) as a model. The effects of shear rate (20-1000 s(-1)), shear exposure time (30-300 s), shear stress (at constant shear rate by adjusting the viscosity of the medium from 1.3-2.6 cP), cell concentration, and platelet activation on platelet-LS174T heteroaggregation were assessed. The results indicate that hydrodynamic shear-induced collisions augment platelet-LS174T binding, which is further potentiated by thrombin/GPRP-NH(2). Peak adhesion efficiency occurs at low shear and decreases with increasing shear. Intercellular contact duration is the predominant factor limiting heteroaggregation at shear rates up to 200 s(-1), whereas these interactions become shear stress-sensitive at > or = 400 s(-1). Heteroaggregation increases with platelet concentration due to an elevation of the intercellular collision frequency, whereas adhesion efficiency remains nearly constant. Moreover, hydrodynamic shear affects the receptor specificity of activation-dependent platelet binding to LS174T cells, as evidenced by the transition from a P-selectin-independent/Arg-Gly-Asp (RGD)-dependent process at 100 s(-1) to a P-selectin/alpha(IIb)beta(3)-dependent interaction at 800 s(-1). This study demonstrates that platelet activation and a fluid-mechanical environment representative of the vasculature affect platelet-tumor cell adhesive interactions pertinent to the process of blood-borne metastasis.
机译:这项研究以人类结肠腺癌细胞系(LS174T)为模型,研究了血小板在均匀悬浮液中的体积与悬浮液中肿瘤细胞结合的动力学和分子需求。剪切速率(20-1000 s(-1)),剪切暴露时间(30-300 s),剪切应力(通过将介质的粘度从1.3-2.6 cP调整为恒定剪切速率),细胞浓度,并评估了血小板对LS174T异质聚集的活化作用。结果表明,水动力剪切诱导的碰撞增加了血小板-LS174T的结合,这进一步被凝血酶/ GPRP-NH(2)增强。峰值粘附效率在低剪切力下发生,并随着剪切力的增加而降低。细胞间接触持续时间是限制剪切速率高达200 s(-1)时杂聚的主要因素,而这些相互作用在>或= 400 s(-1)时变得对剪切应力敏感。由于细胞间碰撞频率的升高,异种聚集随着血小板浓度的增加而增加,而粘附效率几乎保持恒定。此外,流体动力剪切会影响活化依赖性血小板与LS174T细胞结合的受体特异性,这一点可从100 s(-1)的P-选择素非依赖性/ Arg-Gly-Asp(RGD)依赖性过程过渡到一个P-选择素/ alpha(IIb)beta(3)依赖的相互作用在800 s(-1)。这项研究表明血小板活化和代表脉管系统的流体力学环境会影响与血源性转移过程相关的血小板-肿瘤细胞粘附相互作用。

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