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Microfluidic Generated EGF-Gradients Induce Chemokinesis of Transplantable Retinal Progenitor Cells via the JAK/STAT and PI3Kinase Signaling Pathways

机译:微流体生成的EGF梯度通过JAK / STAT和PI3Kinase信号传导途径诱导可移植视网膜祖细胞的化学代谢。

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摘要

A growing number of studies are evaluating retinal progenitor cell (RPC) transplantation as an approach to repair retinal degeneration and restore visual function. To advance cell-replacement strategies for a practical retinal therapy, it is important to define the molecular and biochemical mechanisms guiding RPC motility. We have analyzed RPC expression of the epidermal growth factor receptor (EGFR) and evaluated whether exposure to epidermal growth factor (EGF) can coordinate motogenic activity in vitro. Using Boyden chamber analysis as an initial high-throughput screen, we determined that RPC motility was optimally stimulated by EGF concentrations in the range of 20-400ng/ml, with decreased stimulation at higher concentrations, suggesting concentration-dependence of EGF-induced motility. Using bioinformatics analysis of the EGF ligand in a retina-specific gene network pathway, we predicted a chemotactic function for EGF involving the MAPK and JAK-STAT intracellular signaling pathways. Based on targeted inhibition studies, we show that ligand binding, phosphorylation of EGFR and activation of the intracellular STAT3 and PI3kinase signaling pathways are necessary to drive RPC motility. Using engineered microfluidic devices to generate quantifiable steady-state gradients of EGF coupled with live-cell tracking, we analyzed the dynamics of individual RPC motility. Microfluidic analysis, including center of mass and maximum accumulated distance, revealed that EGF induced motility is chemokinetic with optimal activity observed in response to low concentration gradients. Our combined results show that EGFR expressing RPCs exhibit enhanced chemokinetic motility in the presence of low nanomole levels of EGF. These findings may serve to inform further studies evaluating the extent to which EGFR activity, in response to endogenous ligand, drives motility and migration of RPCs in retinal transplantation paradigms.
机译:越来越多的研究正在评估视网膜祖细胞(RPC)移植作为修复视网膜变性和恢复视觉功能的一种方法。为了促进实际视网膜治疗的细胞替代策略,重要的是确定指导RPC运动的分子和生化机制。我们已经分析了表皮生长因子受体(EGFR)的RPC表达,并评估了暴露于表皮生长因子(EGF)是否可以协调体外的成虫活性。使用Boyden室分析作为初始的高通量筛选,我们确定EGF浓度在20-400ng / ml范围内可以最佳地刺激RPC运动,在更高的浓度下刺激降低,表明EGF诱导的运动的浓度依赖性。使用视网膜特定基因网络途径中EGF配体的生物信息学分析,我们预测了涉及MAPK和JAK-STAT细胞内信号传导途径的EGF的趋化功能。基于有针对性的抑制研究,我们表明配体结合,EGFR的磷酸化和细胞内STAT3和PI3激酶信号通路的激活是驱动RPC运动的必要条件。使用工程微流控设备生成可量化的EGF稳态梯度与活细胞跟踪相结合,我们分析了单个RPC运动的动力学。微流体分析,包括质心和最大累积距离,表明EGF诱导的运动是化学动力学的,具有对低浓度梯度的最佳活性。我们的综合结果表明,在低纳摩尔水平的EGF存在下,表达EGFR的RPC表现出增强的化学运动动力。这些发现可能有助于进一步的研究,以评估EGFR活性对视网膜内移植范例中内源性配体的响应驱动RPC的运动和迁移的程度。

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