LeSavage Bauer L, Suhar Nicholas A, Madl Christopher M, Heilshorn Sarah C
Department of Bioengineering, Stanford University.
Department of Materials Science and Engineering, Stanford University.
J Vis Exp. 2018 May 19(135):57739. doi: 10.3791/57739.
Two-dimensional (2D) tissue culture techniques have been essential for our understanding of fundamental cell biology. However, traditional 2D tissue culture systems lack a three-dimensional (3D) matrix, resulting in a significant disconnect between results collected in vitro and in vivo. To address this limitation, researchers have engineered 3D hydrogel tissue culture platforms that can mimic the biochemical and biophysical properties of the in vivo cell microenvironment. This research has motivated the need to develop material platforms that support 3D cell encapsulation and downstream biochemical assays. Recombinant protein engineering offers a unique toolset for 3D hydrogel material design and development by allowing for the specific control of protein sequence and therefore, by extension, the potential mechanical and biochemical properties of the resultant matrix. Here, we present a protocol for the expression of recombinantly-derived elastin-like protein (ELP), which can be used to form hydrogels with independently tunable mechanical properties and cell-adhesive ligand concentration. We further present a methodology for cell encapsulation within ELP hydrogels and subsequent immunofluorescent staining of embedded cells for downstream analysis and quantification.
二维(2D)组织培养技术对于我们理解基础细胞生物学至关重要。然而,传统的二维组织培养系统缺乏三维(3D)基质,导致体外和体内收集的结果之间存在显著脱节。为了解决这一局限性,研究人员设计了三维水凝胶组织培养平台,该平台可以模拟体内细胞微环境的生化和生物物理特性。这项研究激发了开发支持三维细胞封装和下游生化分析的材料平台的需求。重组蛋白工程通过允许对蛋白质序列进行特定控制,从而扩展到所得基质的潜在机械和生化特性,为三维水凝胶材料的设计和开发提供了一套独特的工具。在这里,我们展示了一种重组衍生弹性蛋白样蛋白(ELP)的表达方案,该蛋白可用于形成具有独立可调机械性能和细胞粘附配体浓度的水凝胶。我们还展示了一种将细胞封装在ELP水凝胶中并随后对嵌入细胞进行免疫荧光染色以进行下游分析和定量的方法。