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首页> 外文期刊>Journal of biomedical optics >Two-dimensional and three-dimensional viability measurements of adult stem cells with optical coherence phase microscopy
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Two-dimensional and three-dimensional viability measurements of adult stem cells with optical coherence phase microscopy

机译:光学相干相显微镜测量成年干细胞的二维和三维活力

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Cell viability assays are essential tools for cell biology. They assess healthy cells in a sample and enable the quantification of cellular responses to reagents of interest. Noninvasive and label-free assays are desirable in two-dimensional (2D) and three-dimensional (3D) cell culture to facilitate time-course viability studies. Cellular micromotion, emanating from cell to substrate distance variations, has been demonstrated as a marker of cell viability with electric cell-substrate impedance sensing (ECIS). In this study we investigated if optical coherence phase microscopy (OCPM) was able to report phase fluctuations of adult stem cells in 2D and 3D that could be associated with cellular micromotion. An OCPM has been developed around a Thorlabs engine (λ_o= 930 nm) and integrated in an inverted microscope with a custom scanning head. Human adipose derived stem cells (ADSCs, Invitrogen) were cultured in Mesenpro RS medium and seeded either on ECIS arrays, 2D cell culture dishes, or in 3D highly porous microplotted polymeric scaffolds. ADSC micromotion was confirmed by ECIS analysis. Live and fixed ADSCs were then investigated in 2D and 3D with OCPM. Significant differences were found in phase fluctuations between the different conditions. This study indicated that OCPM could potentially assess cell vitality in 2D and in 3D microstructures.
机译:细胞活力测定是细胞生物学的重要工具。他们评估样品中的健康细胞,并能够量化对目标试剂的细胞反应。在二维(2D)和三维(3D)细胞培养中,需要非侵入性和无标记的测定法以促进时程生存力研究。从细胞到底物的距离变化产生的细胞微运动已被证明是通过电-细胞-底物阻抗感测(ECIS)进行细胞存活的标志。在这项研究中,我们调查了光学相干显微镜(OCPM)是否能够报告成年干细胞在2D和3D中可能与细胞微动有关的相位波动。 OCPM是围绕Thorlabs引擎(λ_o= 930 nm)开发的,并集成在带有定制扫描头的倒置显微镜中。将人脂肪来源的干细胞(ADSC,Invitrogen)在Mesenpro RS培养基中培养,并接种在ECIS阵列,2D细胞培养皿或3D高孔微绘制的聚合物支架中。通过ECIS分析确认了ADSC微动。然后,使用OCPM对实时和固定ADSC进行2D和3D研究。在不同条件之间的相位波动中发现了显着差异。这项研究表明OCPM可以潜在地评估2D和3D微结构中的细胞活力。

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