SUPA, School of Physics and Astronomy, University of St Andrews, St Andrews KY16 9SS, United Kingdom.
School of Psychology and Neuroscience, University of St Andrews, St Andrews KY16 9SS, United Kingdom.
Sci Rep. 2017 Jan 19;7:40877. doi: 10.1038/srep40877.
Reliable methods to individually track large numbers of cells in real time are urgently needed to advance our understanding of important biological processes like cancer metastasis, neuronal network development and wound healing. It has recently been suggested to introduce microscopic whispering gallery mode lasers into the cytoplasm of cells and to use their characteristic, size-dependent emission spectrum as optical barcode but so far there is no evidence that this approach is generally applicable. Here, we describe a method that drastically improves intracellular delivery of resonators for several cell types, including mitotic and non-phagocytic cells. In addition, we characterize the influence of resonator size on the spectral characteristics of the emitted laser light and identify an optimum size range that facilitates tagging and tracking of thousands of cells simultaneously. Finally, we observe that the microresonators remain internalized by cells during cell division, which enables tagging several generations of cells.
迫切需要可靠的方法来实时追踪大量细胞,以增进我们对癌症转移、神经元网络发育和伤口愈合等重要生物学过程的理解。最近有人建议将微观 whispering gallery 模式激光器引入细胞质,并利用其特征性的、与尺寸相关的发射光谱作为光学条码,但到目前为止,还没有证据表明这种方法具有普遍适用性。在这里,我们描述了一种方法,可以极大地改善谐振器在包括有丝分裂和非吞噬细胞在内的几种细胞类型中的细胞内传递。此外,我们还研究了谐振器尺寸对发射激光光谱特性的影响,并确定了一个最佳尺寸范围,该范围有利于同时对数千个细胞进行标记和跟踪。最后,我们观察到微谐振器在细胞分裂过程中仍然被细胞内化,这使得可以对几代细胞进行标记。