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Real-time label-free monitoring of adipose-derived stem cell differentiation with electric cell-substrate impedance sensing

机译:实时无标签监测脂肪来源的干细胞分化并通过电细胞-基质阻抗传感

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摘要

Real-time monitoring of stem cells (SCs) differentiation will be critical to scale-up SC technologies, while label-free techniques will be desirable to quality-control SCs without precluding their therapeutic potential. We cultured adipose-derived stem cells (ADSCs) on top of multielectrode arrays and measured variations in the complex impedance Z* throughout induction of ADSCs toward osteoblasts and adipocytes. Z* was measured up to 17 d, every 180 s, over a 62.5–64kHz frequency range with an ECIS Zθ instrument. We found that osteogenesis and adipogenesis were characterized by distinct Z* time-courses. Significant differences were found (P = 0.007) as soon as 12 h post induction. An increase in the barrier resistance (Rb) up to 1.7 ohm·cm2 was associated with early osteo-induction, whereas Rb peaked at 0.63 ohm·cm2 for adipo-induced cells before falling to zero at t = 129 h. Dissimilarities in Z* throughout early induction (<24 h) were essentially attributed to variations in the cell-substrate parameter α. Four days after induction, cell membrane capacitance (Cm) of osteo-induced cells (Cm = 1.72 ± 0.10 μF/cm2) was significantly different from that of adipo-induced cells (Cm = 2.25 ± 0.27 μF/cm2), indicating that Cm could be used as an early marker of differentiation. Finally, we demonstrated long-term monitoring and measured a shift in the complex plane in the middle frequency range (1 kHz to 8 kHz) between early (t = 100 h) and late induction (t = 380 h). This study demonstrated that the osteoblast and adipocyte lineages have distinct dielectric properties and that such differences can be used to perform real-time label-free quantitative monitoring of adult stem cell differentiation with impedance sensing.
机译:干细胞(SCs)分化的实时监测对于扩大SC技术至关重要,而无标记技术对于质量控制SC而不希望排除其治疗潜力将是理想的。我们在多电极阵列上培养了脂肪干细胞(ADSC),并在整个ADSC诱导成骨细胞和脂肪细胞过程中测量了复数阻抗Z *的变化。使用ECISZθ仪器在62.5–64kHz频率范围内,每180秒测量一次Z *达17 d。我们发现成骨和成脂的特征是不同的Z *时间过程。诱导后12小时发现显着差异(P = 0.007)。早期骨诱导与屏障电阻(Rb)升高至1.7 ohm·cm 2 有关,而对于脂肪组织,Rb在0.63 ohm·cm 2 达到峰值。诱导的细胞在t = 129 h降至零之前。整个早期诱导(<24小时)中Z *的差异主要归因于细胞底物参数α的变化。诱导后四天,骨诱导细胞的细胞膜电容(Cm)(Cm = 1.72±0.10μF/ cm 2 )与脂肪诱导细胞的细胞膜电容(Cm = 2.25±0.27)显着不同μF/ cm 2 ),表明Cm可以用作分化的早期标记。最后,我们展示了长期监测并测量了中频范围(1 kHz至8 kHz)在早期(t = 100 h)和晚期感应(t = 380 h)之间的复杂平面位移。这项研究表明,成骨细胞和脂肪细胞谱系具有独特的介电特性,这些差异可用于通过阻抗感应对成体干细胞分化进行实时无标签定量监测。

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