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Effect of Glycocalyx on Drug Delivery Carriers Targeted to Endothelial Cells

机译:糖萼对靶向内皮细胞的药物输送载体的影响

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摘要

Animal models have shown that coupling ligands, targeted to endothelium surface receptors, with drug delivery carriers (DDC) can optimize the treatment of diseases by specific vascular delivery. The endothelium is exposed to hydrodynamic forces that modulate the expression of these cellular adhesion molecules (CAMs) and affect the structural and biological activity of endothelial cells (ECs). In order to investigate how delivery of targeted DDC can be optimized, we investigated carriers binding to flow adapted ECs under flow conditions. Comparison of live ECs to fixed cells from our previous experiments give insight into the effect of receptor motility on the cell surface as well as the effect of other factors such as glycocalyx (a protective layer of carbohydrates on the surface of cells) and actin remodeling. A flow chamber model is used to investigate how DDC size variation alters binding under flow conditions. Binding experiments were done with and without glycocalyx in order to elucidate its protective effect. Using fluorescence microscopy we determined the real time binding and rolling speeds of DDC under flow conditions. We also demonstrate the presence of glycocalyx and image actin filament remodeling. The binding of 1 urn carriers to ECs decreased after flow adaptation, in both non-activated and TNF-a activated ECs compared to non-flow adapted live cells. After removal of the glycocalyx by degrading enzymes binding increased in quiescent ECs, but only increased in activated cells after 2 hr of perfusion with particles. The binding with 100nm carriers also decreased after flow adaptation but to a lesser extent and partially increased after enzyme degradation. These experiments give insight as to how tunable affinity parameters can be optimized to enhance therapeutic capabilities.
机译:动物模型表明,靶向内皮表面受体的配体与药物输送载体(DDC)的结合可以通过特定的血管输送优化疾病的治疗。内皮暴露于流体动力中,该流体动力调节这些细胞粘附分子(CAM)的表达并影响内皮细胞(EC)的结构和生物学活性。为了研究如何优化目标DDC的传递,我们研究了在流动条件下结合流适应EC的载体。通过将我们以前的实验中的活EC与固定细胞进行比较,可以深入了解受体运动对细胞表面的影响以及其他因素的影响,例如糖萼(糖萼(细胞表面碳水化合物的保护层)和肌动蛋白重塑)。流动室模型用于研究DDC尺寸变化如何在流动条件下改变结合。在有或没有糖萼的情况下进行结合实验,以阐明其保护作用。使用荧光显微镜,我们确定了在流动条件下DDC的实时结合和滚动速度。我们还证明了糖萼和图像肌动蛋白丝重塑的存在。与非流动适应的活细胞相比,在非活化和TNF-a活化的EC中,1 carriers载体与EC的结合在流动适应后均降低。通过降解酶去除糖萼后,静态EC中的结合增加,但在灌注颗粒2小时后在活化细胞中仅增加。在流量适应后,与100nm载流子的结合也减少,但程度较小,在酶降解后部分增加。这些实验为如何优化亲和力参数以增强治疗能力提供了见识。

著录项

  • 来源
    《International Journal of Transport Phenomena》 |2011年第2期|p.63-75|共13页
  • 作者单位

    Department of Anesthesiology and Critical Care University of Pennsylvania. Philadelphia, PA 19104 Department of Pharmacology University of Pennsylvania, Philadelphia, PA 19104 Center for Biosystem Research University of Maryland Biotechnology Institute.College Park, MD, 20742;

    Department of Anesthesiology and Critical Care University of Pennsylvania. Philadelphia, PA 19104 Department of Pharmacology University of Pennsylvania, Philadelphia, PA 19104 Center for Biosystem Research University of Maryland Biotechnology Institute.College Park, MD, 20742;

    Department of Anesthesiology and Critical Care University of Pennsylvania. Philadelphia, PA 19104 Department of Pharmacology University of Pennsylvania, Philadelphia, PA 19104 Center for Biosystem Research University of Maryland Biotechnology Institute.College Park, MD, 20742;

    Department of Anesthesiology and Critical Care University of Pennsylvania. Philadelphia, PA 19104 Department of Pharmacology University of Pennsylvania, Philadelphia, PA 19104 Center for Biosystem Research University of Maryland Biotechnology Institute.College Park, MD, 20742;

    Department of Anesthesiology and Critical Care University of Pennsylvania. Philadelphia, PA 19104 Department of Pharmacology University of Pennsylvania, Philadelphia, PA 19104 Center for Biosystem Research University of Maryland Biotechnology Institute.College Park, MD, 20742;

    Department of Anesthesiology and Critical Care University of Pennsylvania. Philadelphia, PA 19104 Department of Pharmacology University of Pennsylvania, Philadelphia, PA 19104 Center for Biosystem Research University of Maryland Biotechnology Institute.College Park, MD, 20742;

    Department of Anesthesiology and Critical Care University of Pennsylvania. Philadelphia, PA 19104 Department of Pharmacology University of Pennsylvania, Philadelphia, PA 19104 Center for Biosystem Research University of Maryland Biotechnology Institute.College Park, MD, 20742;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    glycocalyx; shear stress; flow; targeted delivery; carriers; endothelium; ICAM-1;

    机译:糖萼剪应力流;有针对性的交付;承运人;内皮ICAM-1;

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