Institute of Biological and Chemical Systems - Functional Molecular Systems, Karlsruhe Institute of Technology, Hermann-von-Helmholtz-Platz 1, 76344, Eggenstein-Leopoldshafen, Germany.
Zoological Institute, Cell- and Neurobiology, Karlsruhe Institute of Technology, Fritz-Haber-Weg 4, 76131, Karlsruhe, Germany.
Adv Healthc Mater. 2022 Sep;11(18):e2200718. doi: 10.1002/adhm.202200718. Epub 2022 Jul 20.
Human induced pluripotent stem cells (hiPSCs) are crucial for disease modeling, drug discovery, and personalized medicine. Animal-derived materials hinderapplications of hiPSCs in medical fields. Thus, novel and well-defined substrate coatings capable of maintaining hiPSC pluripotency are important for advancing biomedical applications of hiPSCs. Here a miniaturized droplet microarray (DMA) platform to investigate 11 well-defined proteins, their 55 binary and 165 ternary combinations for their ability to maintainpluripotency of hiPSCs when applied as a surface coating, is used. Using this screening approach, ten protein group coatings are identified, which promote significantly higher NANOG expression of hiPSCs in comparison with Matrigel coating. With two of the identified coatings, long-term pluripotency maintenance of hiPSCs and subsequent differentiation into three germ layers are achieved. Compared with conventional high-throughput screening (HTS) in 96-well plates, the DMA platform uses only 83 µL of protein solution (0.83 µg total protein) and only ≈2.8 × 10 cells, decreasing the amount of proteins and cells ≈860 and 25-fold, respectively. The identified proteins will be essential for research and applications using hiPSCs, while the DMA platform demonstrates great potential for miniaturized HTS of scarce cells or expensive materials such as recombinant proteins.
人类诱导多能干细胞(hiPSCs)对于疾病建模、药物发现和个性化医疗至关重要。动物源性材料阻碍了 hiPSCs 在医学领域的应用。因此,新型且明确的能够维持 hiPSC 多能性的基底涂层对于推进 hiPSCs 的生物医学应用非常重要。本研究使用微型化液滴微阵列(DMA)平台来研究 11 种明确的蛋白质,以及它们 55 种二元和 165 种三元组合,以评估其作为表面涂层时维持 hiPSC 多能性的能力。通过这种筛选方法,确定了 10 种蛋白质组涂层,与 Matrigel 涂层相比,这些涂层显著提高了 hiPSC 的 NANOG 表达。使用其中两种鉴定出的涂层,成功维持了 hiPSC 的长期多能性,并随后分化为三个胚层。与传统的 96 孔板高通量筛选(HTS)相比,DMA 平台仅使用 83µL 的蛋白质溶液(总蛋白 0.83µg)和≈2.8×10^3 个细胞,分别减少了约 860 倍和 25 倍的蛋白质和细胞用量。鉴定出的蛋白质将是使用 hiPSCs 进行研究和应用的关键,而 DMA 平台在对稀有细胞或昂贵材料(如重组蛋白)进行微型化 HTS 方面具有巨大潜力。