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Scalable 96-well Plate Based iPSC Culture and Production Using a Robotic Liquid Handling System

机译:基于机器人液体处理系统的可扩展96孔板iPSC培养和生产

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摘要

Continued advancement in pluripotent stem cell culture is closing the gap between bench and bedside for using these cells in regenerative medicine, drug discovery and safety testing. In order to produce stem cell derived biopharmaceutics and cells for tissue engineering and transplantation, a cost-effective cell-manufacturing technology is essential. Maintenance of pluripotency and stable performance of cells in downstream applications (e.g., cell differentiation) over time is paramount to large scale cell production. Yet that can be difficult to achieve especially if cells are cultured manually where the operator can introduce significant variability as well as be prohibitively expensive to scale-up. To enable high-throughput, large-scale stem cell production and remove operator influence novel stem cell culture protocols using a bench-top multi-channel liquid handling robot were developed that require minimal technician involvement or experience. With these protocols human induced pluripotent stem cells (iPSCs) were cultured in feeder-free conditions directly from a frozen stock and maintained in 96-well plates. Depending on cell line and desired scale-up rate, the operator can easily determine when to passage based on a series of images showing the optimal colony densities for splitting. Then the necessary reagents are prepared to perform a colony split to new plates without a centrifugation step. After 20 passages (~3 months), two iPSC lines maintained stable karyotypes, expressed stem cell markers, and differentiated into cardiomyocytes with high efficiency. The system can perform subsequent high-throughput screening of new differentiation protocols or genetic manipulation designed for 96-well plates. This technology will reduce the labor and technical burden to produce large numbers of identical stem cells for a myriad of applications.
机译:多能干细胞培养的持续发展正在缩小工作台和床旁之间的距离,以便在再生医学,药物发现和安全性测试中使用这些细胞。为了生产干细胞衍生的生物药物和用于组织工程和移植的细胞,具有成本效益的细胞制造技术至关重要。随着时间的流逝,在下游应用中维持多能性和稳定的细胞性能(例如,细胞分化)对于大规模细胞生产至关重要。然而,这可能很难实现,尤其是如果人工培养细胞,操作员可能会引入很大的变异性,并且规模扩大的成本过高。为了实现高通量,大规模的干细胞生产并消除操作员的影响,开发了使用台式多通道液体处理机器人的新型干细胞培养方案,该技术需要最少的技术人员参与或经验。通过这些方案,可以在无饲养层的条件下直接从冷冻原种培养人诱导的多能干细胞(iPSC),并保存在96孔板中。根据细胞系和所需的放大率,操作员可以根据显示最佳分裂菌落密度的一系列图像轻松确定何时通过。然后准备必要的试剂,以在不进行离心步骤的情况下将菌落分裂成新板。经过20代(约3个月),两条iPSC品系保持稳定的核型,表达干细胞标记,并高效分化为心肌细胞。该系统可以执行针对96孔板的新分化方案或基因操作的后续高通量筛选。这项技术将减少为大量应用生产大量相同干细胞的人工和技术负担。

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