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Cell rolling and adhesion on surfaces in shear flow. A model for an antibody-based microfluidic screening system

机译:细胞在剪切流中滚动并粘附在表面上。基于抗体的微流体筛选系统的模型

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摘要

Here we present a model and an experimental investigation to study cell bound to the floor of a microfluidic system and the flow induced detachment. The experimental investigation has been performed by a microfluidic assay biofunctionalized with specific antibodies. The upregulation of the cell membrane density of specific antigens has been exploited to detect and concentrate cells using hydrodynamic forces. The numerical model explored the role that the hydrodynamic forces have on adhesion-detachment of cell to the biofunctionalized substrate. To account the adhesion force, the cell receptor-surface ligand interaction has been represented by a linear spring exerting adhesive force on the target cell. The experimental investigation with the W6/32, an antibody that binds specifically to MHC class I molecule and which has an important role in the recognition of the tumor cells from the immune system, has been simulated by the numerical model with a constant spring K_s = 7.5 × 10~8 N/s. The velocity of cells and of the fluid and the experimental capture yield have been compared. The existence of three different regimes of cell behavior has been shown, moving from firm adhesion to free rolling. Up to 30 μl/s the cells experience the adherent rolling, whilst at higher flow rate the cells start to move with the fluid in a regime of free rolling. The model provides physical insight, explaining apparently counterintuitive features of the prototype assay data.
机译:在这里,我们提出一个模型和实验研究,以研究细胞绑定到微流控系统的地板和流动引起的分离。已经通过用特异性抗体生物功能化的微流体测定法进行了实验研究。已经利用特定抗原的细胞膜密度的上调来利用流体动力来检测和浓缩细胞。数值模型探讨了流体动力对细胞与生物功能化基质的粘附分离的作用。为了考虑粘附力,细胞受体-表面配体相互作用已通过在靶细胞上施加粘附力的线性弹簧来表示。 W6 / 32是一种与MHC I类分子特异性结合的抗体,在免疫系统识别肿瘤细胞中具有重要作用,该抗体的实验研究已通过具有恒定弹簧系数K_s =的数值模型进行了模拟。 7.5×10〜8 N /秒比较了细胞和液体的速度以及实验的捕获率。已经表明存在三种不同的细胞行为方式,从牢固的粘附变为自由滚动。高达30μl/ s的细胞会经历粘附性滚动,而在更高的流速下,细胞会在自由滚动状态下随流体开始移动。该模型提供了物理洞察力,可以解释原型检测数据的明显违反直觉的特征。

著录项

  • 来源
    《Microelectronic Engineering》 |2012年第10期|p.668-671|共4页
  • 作者单位

    Interdisciplinary Research Centre in Biomaterials - CRIB, University of Napoli Federico II, I'iazzalt' lecchio 80, 80125 Napoli, Italy;

    BioNEM (Bio Nano Engineering and Technology for Medicine) Lab, Universita' Magna Grat'cia di Calanzaru Loc, Gciinaneto, 88100 Culunztuo, Italy;

    Interdisciplinary Research Centre in Biomaterials - CRIB, University of Napoli Federico II, I'iazzalt' lecchio 80, 80125 Napoli, Italy;

    Nanostructme Department, Italian Institute of Technology, Via Morego 30, 16163 Cenova. Italy;

    BioNEM (Bio Nano Engineering and Technology for Medicine) Lab, Universita' Magna Grat'cia di Calanzaru Loc, Gciinaneto, 88100 Culunztuo, Italy;

    BioNEM (Bio Nano Engineering and Technology for Medicine) Lab, Universita' Magna Grat'cia di Calanzaru Loc, Gciinaneto, 88100 Culunztuo, Italy;

    BioNEM (Bio Nano Engineering and Technology for Medicine) Lab, Universita' Magna Grat'cia di Calanzaru Loc, Gciinaneto, 88100 Culunztuo, Italy;

    KIST Europe, Saarbruecken, 66125 Germany;

    Karolinska Institutet, Nobels vaeg 16, Box 280, S-171 77 Stockholm, Sweden;

    Interdisciplinary Research Centre in Biomaterials - CRIB, University of Napoli Federico II, I'iazzalt' lecchio 80, 80125 Napoli, Italy;

    BioNEM (Bio Nano Engineering and Technology for Medicine) Lab, Universita' Magna Grat'cia di Calanzaru Loc, Gciinaneto, 88100 Culunztuo, Italy,Nanostructme Department, Italian Institute of Technology, Via Morego 30, 16163 Cenova. Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    cell rolling; numerical model; microfluidic assay;

    机译:细胞滚动数值模型微流分析;

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