Sears Katie E, Gullapalli Keerthi, Trivedi Divya, Mihas Alexander, Bukys Michael A, Jensen Jan
Department of Molecular Medicine, Cleveland Clinic Lerner College of Medicine, Case Western Reserve University, Cleveland, OH 44106, USA.
Department of Biomedical Engineering, Lerner Research Institute, Cleveland Clinic, Cleveland, OH 44195, USA.
iScience. 2022 Mar 21;25(4):104133. doi: 10.1016/j.isci.2022.104133. eCollection 2022 Apr 15.
Successful manufacture of specialized human cells requires process understanding of directed differentiation. Here, we apply high-dimensional Design of Experiments (HD-DoE) methodology to identify critical process parameters (CPPs) that govern neural territory patterning from pluripotency-the first stage toward specification of central nervous system (CNS) cell fates. Using computerized experimental design, 7 developmental signaling pathways were simultaneously perturbed in human pluripotent stem cell culture. Regionally specific genes spanning the anterior-posterior and dorsal-ventral axes of the developing embryo were measured after 3 days and mathematical models describing pathway control were developed using regression analysis. High-dimensional models revealed particular combinations of signaling inputs that induce expression profiles consistent with emerging CNS territories and defined CPPs for anterior and posterior neuroectoderm patterning. The results demonstrate the importance of combinatorial control during neural induction and challenge the use of generic neural induction strategies such as dual-SMAD inhibition, when seeking to specify particular lineages from pluripotency.
成功制造特定的人类细胞需要对定向分化过程有深入的理解。在此,我们应用高维实验设计(HD-DoE)方法来识别关键过程参数(CPPs),这些参数控制着从多能性向中枢神经系统(CNS)细胞命运特化的第一阶段——神经区域模式形成。通过计算机化实验设计,在人类多能干细胞培养中同时干扰了7条发育信号通路。在3天后测量了跨越发育中胚胎前后轴和背腹轴的区域特异性基因,并使用回归分析建立了描述通路控制的数学模型。高维模型揭示了信号输入的特定组合,这些组合诱导出与新兴中枢神经系统区域一致的表达谱,并定义了前后神经外胚层模式形成的CPPs。结果证明了神经诱导过程中组合控制的重要性,并对在试图从多能性中指定特定谱系时使用通用神经诱导策略(如双SMAD抑制)提出了挑战。