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Measuring Leukocyte Adhesion to (Primary) Endothelial Cells after Photon and Charged Particle Exposure with a Dedicated Laminar Flow Chamber

机译:用专用层流室测量光子和带电粒子暴露后白细胞对(原代)内皮细胞的粘附

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摘要

The vascular endothelium interacts with all types of blood cells and is a key modulator of local and systemic inflammatory processes, for example, in the adhesion of blood leukocytes to endothelial cells (EC) and the following extravasation into the injured tissue. The endothelium is constantly exposed to mechanical forces caused by blood flow, and the resulting shear stress is essential for the maintenance of endothelial function. Changes in local hemodynamics are sensed by EC, leading to acute or persistent changes. Therefore, in vitro assessment of EC functionality should include shear stress as an essential parameter. Parallel-plate flow chambers with adjustable shear stress can be used to study EC properties. However, commercially available systems are not suitable for radiation experiments, especially with charged particles, which are increasingly used in radiotherapy of tumors. Therefore, research on charged-particle-induced vascular side effects is needed. In addition, α-particle emitters (e.g., radon) are used to treat inflammatory diseases at low doses. In the present study, we established a flow chamber system, applicable for the investigation of radiation induced changes in the adhesion of lymphocytes to EC as readout for the onset of an inflammatory reaction or the modification of a pre-existing inflammatory state. In this system, primary human EC are cultured under physiological laminar shear stress, subjected to a proinflammatory treatment and/or irradiation with X-rays or charged particles, followed by a coincubation with primary human lymphocytes (peripheral blood lymphocytes (PBL)). Analysis is performed by semiautomated quantification of fluorescent staining in microscopic pictures. First results obtained after irradiation with X-rays or helium ions indicate decreased adhesion of PBL to EC under laminar conditions for both radiation qualities, whereas adhesion of PBL under static conditions is not clearly affected by irradiation. Under static conditions, no radiation-induced changes in surface expression of adhesion molecules and activation of nuclear factor kappa B (NF-κB) signaling were observed after single cell-based high-throughput analysis. In subsequent studies, these investigations will be extended to laminar conditions.
机译:血管内皮与所有类型的血细胞相互作用,并且是局部和全身性炎症过程的关键调节剂,例如,在血液白细胞与内皮细胞(EC)的粘附以及随后渗入受伤组织中。内皮不断暴露于由血流引起的机械力,因此产生的剪切应力对于维持内皮功能至关重要。 EC感知到局部血液动力学的变化,导致急性或持续性变化。因此,体外对EC功能的评估应包括剪切应力作为基本参数。具有可调剪应力的平行板流动室可用于研究EC特性。但是,可商购的系统不适用于放射实验,尤其是带电粒子,这种粒子正越来越多地用于肿瘤的放射治疗。因此,需要对带电粒子引起的血管副作用进行研究。另外,α-粒子发射体(例如ra)用于低剂量治疗炎性疾病。在本研究中,我们建立了一个流动室系统,该系统可用于研究辐射诱导的淋巴细胞与EC粘附的变化,以此作为炎症反应或预先存在的炎症状态改变的读数。在该系统中,原代人EC在生理层流剪切应力下培养,进行促炎处理和/或用X射线或带电粒子照射,然后与原代人淋巴细胞(外周血淋巴细胞(PBL))共同孵育。通过显微镜图像中荧光染色的半自动定量进行分析。 X射线或氦离子辐照后获得的最初结果表明,在两种辐射质量的层流条件下,PBL对EC的粘附力均降低,而在静态条件下,PBL的粘附力并未受到辐射的明显影响。在静态条件下,基于单细胞的高通量分析后,未观察到辐射诱导的粘附分子表面表达的变化和核因子κB(NF-κB)信号的激活。在随后的研究中,这些研究将扩展到层流条件。

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