Fateh Shirin, Alromaihi Reem A, Ghaemmaghami Amir M, Alexander Morgan R
School of Pharmacy, University of Nottingham, Nottingham, UK.
School of Life Sciences, University of Nottingham, Nottingham, UK.
Bio Protoc. 2024 Feb 20;14(4):e4939. doi: 10.21769/BioProtoc.4939.
Biomaterials are designed to interact with biological systems to replace, support, enhance, or monitor their function. However, there are challenges associated with traditional biomaterials' development due to the lack of underlying theory governing cell response to materials' chemistry. This leads to the time-consuming process of testing different materials plus the adverse reactions in the body such as cytotoxicity and foreign body response. High-throughput screening (HTS) offers a solution to these challenges by enabling rapid and simultaneous testing of a large number of materials to determine their bio-interactions and biocompatibility. Secreted proteins regulate many physiological functions and determine the success of implanted biomaterials through directing cell behaviour. However, the majority of biomaterials' HTS platforms are suitable for microscopic analyses of cell behaviour and not for investigating non-adherent cells or measuring cell secretions. Here, we describe a multi-well platform adaptable to robotic printing of polymers and suitable for secretome profiling of both adherent and non-adherent cells. We detail the platform's development steps, encompassing the preparation of individual cell culture chambers, polymer printing, and the culture environment, as well as examples to demonstrate surface chemical characterisation and biological assessments of secreted mediators. Such platforms will no doubt facilitate the discovery of novel biomaterials and broaden their scope by adapting wider arrays of cell types and incorporating assessments of both secretome and cell-bound interactions. Key features • Detailed protocols for preparation of substrate for contact printing of acrylate-based polymers including O plasma etching, functionalisation process, and Poly(2-hydroxyethyl methacrylate) (pHEMA) dip coating. • Preparations of 7 mm × 7 mm polymers employing pin printing system. • Provision of confined area for each polymer using ProPlate multi-well chambers. • Compatibility of this platform was validated using adherent cells [primary human monocyte-derived macrophages (MDMs)) and non-adherent cells (primary human monocyte-derived dendritic cells (moDCs)]. • Examples of the adaptability of the platform for secretome analysis including five different cytokines using enzyme-linked immunosorbent assay (ELISA, DuoSet). Graphical overview.
生物材料旨在与生物系统相互作用,以替代、支持、增强或监测其功能。然而,由于缺乏指导细胞对材料化学性质反应的基础理论,传统生物材料的开发面临挑战。这导致了测试不同材料的耗时过程以及体内的不良反应,如细胞毒性和异物反应。高通量筛选(HTS)通过能够快速同时测试大量材料以确定其生物相互作用和生物相容性,为这些挑战提供了一种解决方案。分泌蛋白调节许多生理功能,并通过指导细胞行为来决定植入生物材料的成功与否。然而,大多数生物材料的高通量筛选平台适用于细胞行为的微观分析,而不适用于研究非贴壁细胞或测量细胞分泌物。在此,我们描述了一种适用于聚合物机器人打印的多孔平台,适用于贴壁和非贴壁细胞的分泌蛋白组分析。我们详细介绍了该平台的开发步骤,包括单个细胞培养室的制备、聚合物打印和培养环境,以及展示分泌介质的表面化学表征和生物学评估的示例。这样的平台无疑将有助于发现新型生物材料,并通过适应更广泛的细胞类型阵列以及纳入分泌蛋白组和细胞结合相互作用的评估来拓宽其范围。关键特性• 用于丙烯酸酯基聚合物接触印刷的底物制备的详细方案,包括氧等离子体蚀刻、功能化过程和聚(甲基丙烯酸2-羟乙酯)(pHEMA)浸涂。• 使用针式打印系统制备7毫米×7毫米的聚合物。• 使用ProPlate多孔板为每种聚合物提供受限区域。• 使用贴壁细胞[原代人单核细胞衍生的巨噬细胞(MDM)]和非贴壁细胞[原代人单核细胞衍生的树突状细胞(moDC)]验证了该平台的兼容性。• 该平台用于分泌蛋白组分析的适应性示例,包括使用酶联免疫吸附测定(ELISA,DuoSet)检测五种不同的细胞因子。图形概述。