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Large Field of View Quantitative Phase Imaging of Induced Pluripotent Stem Cells and Optical Pathlength Reference Materials

机译:诱导多能干细胞和光程参考材料的大视野定量相成像

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Induced pluripotent stem cells (iPSCs) are reprogrammed cells that can have heterogeneous biological potential. Quality assurance metrics of reprogrammed iPSCs will be critical to ensure reliable use in cell therapies and personalized diagnostic tests. We present a quantitative phase imaging (QPI) workflow which includes acquisition, processing, and stitching multiple adjacent image tiles across a large field of view (LFOV) of a culture vessel. Low magnification image tiles (10x) were acquired with a Phasics SID4BIO camera on a Zeiss microscope. iPSC cultures were maintained using a custom stage incubator on an automated stage. We implement an image acquisition strategy that compensates for non-flat illumination wavefronts to enable imaging of an entire well plate, including the meniscus region normally obscured in Zernike phase contrast imaging. Polynomial fitting and background mode correction was implemented to enable comparability and stitching between multiple tiles. LFOV imaging of reference materials indicated that image acquisition and processing strategies did not affect quantitative phase measurements across the LFOV. Analysis of iPSC colony images demonstrated mass doubling time was significantly different than area doubling time. These measurements were benchmarked with prototype microsphere beads and etched-glass gratings with specified spatial dimensions designed to be QPI reference materials with optical pathlength shifts suitable for cell microscopy. This QPI workflow and the use of reference materials can provide non-destructive traceable imaging method for novel iPSC heterogeneity characterization.
机译:诱导多能干细胞(iPSC)是重新编程的细胞,可能具有异质的生物潜力。重新编程的iPSC的质量保证指标对于确保可靠地用于细胞疗法和个性化诊断测试至关重要。我们提出了定量相位成像(QPI)工作流程,其中包括跨培养皿大视野(LFOV)的采集,处理和拼接多个相邻图像图块。用Zeiss显微镜上的Phasics SID4BIO相机获取低倍率图像图块(10x)。使用定制阶段培养箱将iPSC培养物保持在自动化阶段。我们实现了一种图像获取策略,该策略可以补偿非平坦照明波前,从而实现整个孔板的成像,包括在Zernike相衬成像中通常被遮盖的弯月面区域。实现了多项式拟合和背景模式校正,以实现多个图块之间的可比性和拼接。参考材料的LFOV成像表明,图像采集和处理策略不会影响整个LFOV的定量相位测量。 iPSC菌落图像分析表明,质量加倍时间与面积加倍时间显着不同。使用原型微球珠和具有指定空间尺寸的蚀刻玻璃光栅作为基准,对这些测量结果进行了设计,这些光栅被设计为QPI参考材料,其光程变化适合于细胞显微镜。这种QPI工作流程和参考材料的使用可以为新型iPSC异质性表征提供无损的可追溯成像方法。

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