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Microfluidic Devices with Engineered Micro-/Nanostructures for Cell Isolation.

机译:具有用于细胞分离的工程化微/纳米结构的微流控设备。

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摘要

Isolation of cells from blood is critical for vast biomedical applications. The focus of this dissertation is on the isolation of circulating tumor cells (CTCs) from patient blood, which contains important prognostic and diagnostic information. Challenges in this field originates from the striking contrast between the rare amount of CTCs (1-10 per mL) and vast other normal cells (millions of white blood cells (WBCs) and billions of red blood cells per mL). Various techniques have been developed to isolate CTCs in the recent decades, while the most demanding clinical requirements lie in two aspects: higher capture efficiency meaning the strong ability to isolate the rare CTCs and higher purity meaning the strong ability to repel all other normal cells. In order to better serve clinical practice, we developed four microfluidic platforms aiming at high capture efficiency and high purity, thus advancing the cancer patient care.;By extending the concept of the hallmark immunoaffinity based grooved-herringbone (HB) chip, we first developed a wavy-HB chip by smoothing the grooved patterns to wavy patterns. The wavy-HB chip was demonstrated to not only achieve high capture efficiency (up to 85.0%) by micro-vortexes induced by HB structures, but achieve high purity (up to 39.4%) due to the smooth wavy microstructures. The HB structures were then further optimized through a refined computational model implemented with cell adhesion probability. The particulate cell transport dynamics was shown to be crucial in determining the optimized geometry for CTC capture. To further enhance the CTC capture, integration of nanostructures was examined due to their intrinsic large surface area-to-volume ratio. By exploring the geometric effects of nanopillars on CTC capture, we unraveled an interesting linear relationship between CTC capture efficiency and effective nanopillar contact area. We then developed a fabrication approach to deposit nanoparticles on the wavy-HB patterns to form hierarchical micro/nanostructures. The hierarchical wavy-HB chip was demonstrated to achieve a capture efficiency up to ~98% and a high purity performance (only ~680 WBCs per 1 mL blood).;Over the course of the above-mentioned work, there emerges another clinical need which requires captured CTCs to be released and re-cultured for post-analysis such as drug screening. We thus developed two microfluidic chips attempting to achieve this goal. The first platform is an integration of immunomagnetic particles on the developed wavy-HB chip. In addition to the good device performance brought by the wavy-HB patterns, CTCs were able to be released from the capture bed by removing the magnetic field. The collected CTCs labeled with magnetic particles were able to be re-cultured and it was found that these magnetic particles were subject to self-removal during cell proliferations. The second platform was an inclined wavy patterns coated with E-selectin, which was able to form weak adhesion forces with WBCs and CTCs. A proof-of-concept work was performed to demonstrate that WBCs and CTCs were able to be separated along different pathways due to the different adhesion forces and the inclined direction guidance.;With all these developed cancer cell isolation microfluidic chips, we showed our contributions toward effective cancer cell isolation and eventually cancer treatment.
机译:从血液中分离细胞对于广泛的生物医学应用至关重要。本文的重点是从患者血液中分离循环肿瘤细胞(CTC),其中包含重要的预后和诊断信息。该领域的挑战源自稀有的四氯化碳(每毫升1-10个)与其他大量正常细胞(每毫升数百万个白细胞(WBC)和数十亿个红细胞)之间的鲜明对比。在最近的几十年中,已经开发出各种技术来分离CTC,而最苛刻的临床要求则在两个方面:更高的捕获效率意味着分离稀有CTC的强大能力,而更高的纯度意味着排斥所有其他正常细胞的强大能力。为了更好地服务于临床实践,我们开发了四个针对高捕获效率和高纯度的微流体平台,从而促进了癌症患者的护理。通过扩展基于标志性免疫亲和力的凹槽人字形(HB)芯片的概念,我们首先开发了通过将沟槽图案平滑成波浪形图案来形成波浪状HB芯片。波浪状HB芯片不仅可以通过HB结构引起的微涡旋实现高捕获效率(高达85.0%),而且由于具有光滑的波浪状微结构,因此可以实现高纯度(高达39.4%)。然后通过以细胞粘附概率实现的精确计算模型进一步优化HB结构。结果表明,颗粒细胞运输动力学对于确定CTC捕获的最佳几何形状至关重要。为了进一步增强CTC捕获,由于其固有的大表面积体积比,对纳米结构的集成进行了检查。通过探索纳米柱对CTC捕获的几何影响,我们揭示了CTC捕获效率与有效纳米柱接触面积之间有趣的线性关系。然后,我们开发了一种制造方法,以将纳米颗粒沉积在波浪状HB模式上,以形成分层的微/纳米结构。经证实,该分层波浪状HB芯片可实现高达〜98%的捕获效率和高纯度性能(每1 mL血液仅约680 WBCs)。在上述工作过程中,还出现了另一种临床需求这就要求释放捕获的四氯化碳并重新培养,以进行后分析,例如药物筛选。因此,我们开发了两种微流体芯片,试图实现这一目标。第一个平台是将免疫磁性颗粒整合到已开发的波浪HB芯片上。除了波浪状HB模式带来的良好设备性能外,还可以通过去除磁场将CTC从捕获床上释放出来。所收集的用磁性颗粒标记的四氯化碳能够被再培养,并且发现这些磁性颗粒在细胞增殖过程中会自我去除。第二个平台是涂有E-选择素的倾斜波浪形图案,能够与WBC和CTC形成较弱的粘附力。进行了概念验证工作,以证明由于不同的粘附力和倾斜的方向引导,WBC和CTC能够沿着不同的途径分离。通过所有这些开发的癌细胞分离微流控芯片,我们展示了我们的贡献致力于有效的癌细胞分离并最终实现癌症治疗。

著录项

  • 作者

    Wang, Shunqiang.;

  • 作者单位

    Lehigh University.;

  • 授予单位 Lehigh University.;
  • 学科 Mechanical engineering.;Biomedical engineering.;Biomechanics.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 159 p.
  • 总页数 159
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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