Collaborative Research: EAGER: The Role Of Cell-Cell Forces In The Cadherin Switch Model
Collaborative Research: EAGER: The Role Of Cell-Cell Forces In The Cadherin Switch Model
批准号:
1262780
负责人:
Christian Franck
金额:
$4.83万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-02-01 至 2014-07-31
中文摘要
这项早期概念探索性研究资助(EAGER)的研究目标是建立钙粘蛋白表达变化或钙粘蛋白开关模型与分化的间充质干细胞(MSCs)在骨形成过程中遇到的不断变化的机械微环境之间的联系。间充质干细胞在分化过程中经历细胞基质或整合素介导和细胞-细胞或钙粘蛋白介导的作用力。然而,尽管钙粘蛋白对正常骨形成至关重要,但细胞-细胞力通过钙粘蛋白的作用在很大程度上被忽视了。“钙粘蛋白开关”指出,当骨髓间充质干细胞分化为骨形成细胞时,一种钙粘蛋白被上调,另一种钙粘蛋白被下调。该开关与骨形成过程中机械环境的变化相似:MSCs始于软骨髓(~1kPa),并在坚硬的非矿化基质(10s kPa)中分化为骨基质生成细胞。这项工作旨在将钙粘蛋白开关与MSCs不断变化的机械微环境联系起来。该方法结合了两种工具:电流体动力学(E-Jet)和3D全场牵引力显微镜(3D TFM)。E-Jet将在聚丙烯酰胺底物上对蛋白质和刚度进行建模,并能够操纵细胞-细胞和细胞-底物的作用力。三维TFM将测量力,从而定量地建立关系。细胞-细胞力在分化和骨形成中的影响在很大程度上被忽视了。这项工作的结果可能会导致骨疾病的新治疗方法,并更全面地了解骨骼和其他组织的组织发育。通过这项工作,相对较新的技术,3D TFM和细胞培养基质的E-Jet模式,将使更广泛的科学界更容易获得。教育部分侧重于研究生的培训和研究经验,通过机构之间和跨学科的互动。该研究还将用于突出机械工程(ME)领域的广度,特别是为女孩的校园中学(CMS),目的是使这些学生和其他K-12学生更容易接触到机械工程,否则他们可能对基于该领域的先入为主的概念不感兴趣。
英文摘要
The research objective of this EArly-Concept Grant for Exploratory Research (EAGER) is to establish the link between the changing cadherin expression, or the cadherin switch model, and the evolving mechanical microenvironment that differentiating mesenchymal stem cells (MSCs) encounter during bone formation. MSCs experience both cell-matrix, or integrin-mediated, and cell-cell, or cadherin-mediated, forces during differentiation. However, the role of cell-cell forces through cadherins has been largely neglected despite that cadherin regulation is essential to normal bone formation. The "cadherin switch" specifies that as MSCs differentiate in to bone forming cells, one cadherin is up regulated and another is down regulated. The switch parallels the changing mechanical environment during bone formation: MSCs begin in soft marrow (~1kPa) and differentiate into bone matrix-producing cells in stiff, unmineralized matrix (10s of kPa). This work aims to relate the cadherin switch to the changing mechanical microenvironment for MSCs. The approach uses a combination of two tools: Electrohydrodynamic (E-Jet) and 3D, full-field traction force microscopy (3D TFM). E-Jet will pattern both proteins and stiffness on polyacrylamide substrates and enable manipulation cell-cell and cell-substrate forces. 3D TFM will measure the forces thus quantitatively establishing the relationship. The influence of cell-cell forces in differentiation and bone formation has largely been neglected. Results from this work could lead to new treatments for bone diseases and a more complete understanding of tissue development both for bone and for other tissues. Through the work the relatively new techniques, 3D TFM and E-Jet patterning of cell culture substrates, will be made more accessible to a broader scientific community. The educational component focuses on graduate student training and research experiences through interactions between institutions and across disciplines. The research will also be used to highlight the breadth of the field of Mechanical Engineering (ME) specifically for the Campus Middle School (CMS) for Girls, with the goal of making ME more accessible to these and other K-12 students who otherwise may not be interested in ME based on preconceptions of the field.
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