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Understanding cell migration through microscale in vitro models

Understanding cell migration through microscale in vitro models
通过微型体外模型了解细胞迁移
批准号:
8324582
负责人:
David J Beebe
金额:
$42.36万
依托单位国家:
美国
项目类别:
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-09-01 至 2015-06-30

项目摘要

项目成果

David J Beebe的其他基金

相关文献

中文摘要
翻译
描述(由申请人提供):细胞迁移是一个复杂的多步骤过程,是多种疾病过程发病机制的核心。虽然中性粒细胞是先天免疫反应的重要组成部分,但其不适当的募集是慢性炎性疾病(包括哮喘、关节炎和炎性肠病)的核心;并且还有助于其他疾病(如心血管疾病、肿瘤进展和阿尔茨海默病)的发病机制。趋化性,即细胞在化学梯度内的运动,是中性粒细胞募集的基本过程。尽管其重要性,目前的工具限制了对了解调节细胞迁移的分子机制的进展。特别地,当前的方法在很大程度上限于2D环境,需要相对大的血液抽取并且使用可疑的生理相关性的刺激。我们的目标是使用并进一步开发克服这些挑战的微尺度方法和微尺度体外模型,增强我们识别在涉及先天免疫系统的疾病背景下调节细胞极化和定向运动的信号通路的能力-特别是在严重先天性中性粒细胞减少症(SCN)背景下,Hax 1信号在中性粒细胞趋化性中的作用。目前,趋化性研究是非常费时费力的,限制了可以探索的实验条件的数量。我们的方法从根本上改变了研究人员进行趋化性研究的方式。可以用相同的时间/精力检查更多的实验条件。该应用的关键优势在于使用新型(但简单的)微流体装置,该装置产生限定的且稳定的化学梯度,其不需要层流来形成或维持梯度,并且可以适于高通量筛选。在目标1中,我们将开发改进的3D测定,为细胞迁移提供更生理相关的背景,并开发允许使用小体积手指针刺样品的方法。在目标2中,我们将开发基于微流体的伤口测定来分析中性粒细胞通过细胞来源的梯度募集,以确定在多细胞环境中调节细胞极化和定向细胞迁移的因素。在目标3中,我们建议研究Hax 1/HS 1/G113信号传导如何在更复杂的3D和细胞来源的梯度中调节中性粒细胞运动和募集,以模拟体内条件。使用这些系统,我们将剖析Hax 1如何调节梯度感应和定向细胞迁移与Hax 1缺陷的嗜中性粒细胞样PLB 987细胞。未来的应用将包括使用2D和3D/细胞来源的微流体系统分析中性粒细胞减少症患者的中性粒细胞运动,以了解疾病发病机制并确定新的治疗靶点。
英文摘要
DESCRIPTION (provided by applicant): Cell migration is a complicated multistep process that is central to the pathogenesis of diverse disease processes. Although neutrophils are an essential part of the innate immune response, their inappropriate recruitment is central to chronic inflammatory disorders including asthma, arthritis and inflammatory bowel disease; and also contributes to the pathogenesis of other diseases such as cardiovascular disease, tumor progression and Alzheimer's disease. Chemotaxis, the movement of cells within a chemical gradient, is the fundamental process underlying neutrophil recruitment. Despite its importance, current tools limit progress towards understanding the molecular mechanisms that regulate cell migration. In particular, current methods are largely limited to 2D environments, require relatively large blood draws and use stimuli of questionable physiological relevance. Our goal is to use and further develop microscale methods and microscale in vitro models that overcome these challenges, enhancing our ability to identify signaling pathways that regulate cell polarization and directed motility in the context of disorders involving the innate immune system - specifically the role of Hax1 signaling in neutrophil chemotaxis in the context of severe congential neutropenia (SCN). Currently, chemotaxis studies are very time and labor intensive limiting the number of experimental conditions that can be explored. Our approach fundamentally changes the way a researcher can approach chemotaxis studies. Many more experimental conditions can be examined with the same time/effort. A key strength of this application lies in the use of novel (but simple) microfluidic devices that generate defined and stable chemical gradients that do not require laminar flow for gradient formation or maintenance and can be adapted to high throughput screening. In Aim 1, we will develop improved 3D assays that provide a more physiologically relevant context for cell migration and develop methods that allow the use of small volume finger stick samples. In Aim 2, we will develop microfluidic-based wound assays to analyze neutrophil recruitment through cell sourced gradients to determine factors that regulate cell polarization and directed cell migration in multicelluar environments In Aim 3, we propose to study how Hax1/HS1/G113 signaling modulates neutrophil motility and recruitment in more complex 3D and cell sourced gradients to mimic in vivo conditions. Using these systems, we will dissect how Hax1 regulates gradient sensing and directed cell migration with Hax1-deficient neutrophil-like PLB987 cells. Future applications will include analysis of neutrophil motility from patients presenting with neutropenia using 2D and 3D/cell sourced microfluidic systems to understand disease pathogenesis and identify novel therapeutic targets.
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