A tool for investigating cell-material interactions: surface chemical and topographical gradients
A tool for investigating cell-material interactions: surface chemical and topographical gradients
批准号:
BB/E009360/1
负责人:
Morgan Alexander
金额:
$10.91万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2007
资助国家:
英国
项目状态:
已结题
起止时间:
2007 至 --
中文摘要
了解影响细胞-表面相互作用的因素在组织工程和生物材料领域是重要的。细胞与合成表面的相互作用严重依赖于表面化学和形貌,尽管试图开发基于例如表面润湿性的一般关系,但通常因某些化学功能或细胞类型的例外而受挫。认识到必须对许多细胞类型和表面化学进行采样,才能充分表征影响细胞对表面反应的因素,这促使我们寻求该领域的高通量方法。我们提出了一种方法来产生大量的组合的形貌特征尺寸和聚合物组合物上的一个样品。这将允许以高通量方式确定细胞应答,从而能够有效地开发预测性定量细胞-表面关系。我们建议用化学中的等离子体聚合物梯度涂覆地形特征尺寸的梯度,所述化学中的等离子体聚合物梯度彼此垂直地取向,使得在某个位置处的细胞响应与化学和地形的独特局部组合相关。这种革命性方法的成功开发将代表我们研究细胞与表面相互作用的方式的重大进步,并且在该提案中,我们强调了这些结果将适用于组织工程领域的一些方法。
英文摘要
An understanding of the factors influencing cell-surface interactions is important in tissue engineering and the field of biomaterials. Cellular interactions with synthetic surfaces are critically dependent on surface chemistry and topography, although attempts to develop general relationships based for example on surface wettability, are often frustrated by exceptions for certain chemical functionality or cell type. It is the realisation that many cell types and surface chemistry must be sampled in order to fully characterise the factors influencing cell response to surfaces that leads us to look to a high throughput approach to this area. We propose a method to produce a large number of combinations of topographical feature size and polymeric composition on one sample. This will allow cellular response to be determined in a high throughput manner, enabling efficient development of predictive quantitative cell-surface relationships. We propose coating a gradient in topographical feature size with a plasma polymer gradient in chemistry that is oriented perpendicular to each other enabling cell response at a certain position to be correlated with the unique local combination of chemistry and topography. Successful development of this revolutionary approach will represent a major advance in the way we investigate cell interactions with surfaces and in the proposal we highlight some ways these results will be applicable in the field of tissue engineering.
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