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Improved Imaging of Magnetically Labeled Cells Using Rotational Magnetomotive Optical Coherence Tomography

机译:使用旋转磁动光学相干层析成像技术对磁性标记细胞的改进成像。

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In this paper, we present a reliable and robust method for magnetomotive optical coherence tomography (MM-OCT) imaging of single cells labeled with iron oxide particles. This method employs modulated longitudinal and transverse magnetic fields to evoke alignment and rotation of anisotropic magnetic structures in the sample volume. Experimental evidence suggests that magnetic particles assemble themselves in elongated chains when exposed to a permanent magnetic field. Magnetomotion in the intracellular space was detected and visualized by means of 3D OCT as well as laser speckle reflectometry as a 2D reference imaging method. Our experiments on mesenchymal stem cells embedded in agar scaffolds show that the magnetomotive signal in rotational MM-OCT is significantly increased by a factor of ~3 compared to previous pulsed MM-OCT, although the solenoid’s power consumption was 16 times lower. Finally, we use our novel method to image ARPE-19 cells, a human retinal pigment epithelium cell line. Our results permit magnetomotive imaging with higher sensitivity and the use of low power magnetic fields or larger working distances for future three-dimensional cell tracking in target tissues and organs.
机译:在本文中,我们提出了一种可靠且鲁棒的方法,用于用铁氧化物颗粒标记的单细胞的磁动力光学相干断层扫描(MM-OCT)成像。该方法采用调制的纵向和横向磁场来引起样品体积中各向异性磁性结构的对准和旋转。实验证据表明,磁性颗粒在暴露于永久磁场时会以细长链的形式组装。通过3D OCT以及作为2D参考成像方法的激光散斑反射法,检测并可视化了细胞内空间中的磁运动。我们对琼脂支架中嵌入的间充质干细胞的实验表明,与以前的脉冲MM-OCT相比,旋转MM-OCT中的磁动信号显着增加了约3倍,尽管螺线管的功耗降低了16倍。最后,我们使用我们的新方法对ARPE-19细胞(一种人类视网膜色素上皮细胞系)进行成像。我们的结果允许磁动力成像具有更高的灵敏度,并且可以使用低功率磁场或更大的工作距离来对目标组织和器官进行未来的三维细胞跟踪。

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