State Key Laboratory of Cell Biology, Chinese Academy of Sciences Center for Excellence in Molecular Cell Science, Institute of Biochemistry and Cell Biology, Shanghai Institutes for Biological Sciences, University of the Chinese Academy of Sciences, Chinese Academic of Sciences, Shanghai 200031, China.
School of Life Science and Technology, ShanghaiTech University, Shanghai 201210, China.
J Biol Chem. 2020 Jan 17;295(3):690-700. doi: 10.1074/jbc.RA119.011349. Epub 2019 Nov 26.
Genetic lineage tracing is widely used to study organ development and tissue regeneration. Multicolor reporters are a powerful platform for simultaneously tracking discrete cell populations. Here, combining Dre-rox and Cre-loxP systems, we generated a new dual-recombinase reporter system, called Rosa26 traffic light reporter (), to monitor red, green, and yellow fluorescence. Using this new reporter system with the three distinct fluorescent reporters combined on one allele, we found that the readouts of the two recombinases Cre and Dre simultaneously reflect CreDre, CreDre, and CreDre cell lineages. As proof of principle, we show specific labeling in three distinct progenitor/stem cell populations, including club cells, AT2 cells, and bronchoalveolar stem cells, in mice. By using this new dual-recombinase reporter system, we simultaneously traced the cell fate of these three distinct cell populations during lung repair and regeneration, providing a more comprehensive picture of stem cell function in distal airway repair and regeneration. We propose that this new reporter system will advance developmental and regenerative research by facilitating a more sophisticated genetic approach to studying cell fate plasticity.
遗传谱系追踪被广泛用于研究器官发育和组织再生。多色报告基因是同时追踪离散细胞群的强大平台。在这里,我们结合 Dre-rox 和 Cre-loxP 系统,生成了一种新的双重组酶报告系统,称为 Rosa26 红绿灯报告系统 (),以监测红色、绿色和黄色荧光。使用这种新的报告系统和三个不同的荧光报告基因组合在一个等位基因上,我们发现两个重组酶 Cre 和 Dre 的读数同时反映 CreDre、CreDre 和 CreDre 细胞谱系。作为原理验证,我们在 小鼠的三种不同祖细胞/干细胞群中显示出特异性标记,包括 club 细胞、AT2 细胞和支气管肺泡干细胞。通过使用这种新的双重组酶报告系统,我们在肺修复和再生过程中同时追踪了这三种不同细胞群的细胞命运,提供了关于远端气道修复和再生中干细胞功能的更全面的图景。我们提出,这个新的报告系统将通过促进更复杂的遗传方法来研究 细胞命运可塑性,从而推进发育和再生研究。