Center for Systems Biology, Massachusetts General Hospital, Boston, MA, USA.
Institute of Applied Synthetic Chemistry, TU Wien, Vienna, Austria.
Nat Biotechnol. 2022 Nov;40(11):1654-1662. doi: 10.1038/s41587-022-01339-6. Epub 2022 Jun 2.
Cells in complex organisms undergo frequent functional changes, but few methods allow comprehensive longitudinal profiling of living cells. Here we introduce scission-accelerated fluorophore exchange (SAFE), a method for multiplexed temporospatial imaging of living cells with immunofluorescence. SAFE uses a rapid bioorthogonal click chemistry to remove immunofluorescent signals from the surface of labeled cells, cycling the nanomolar-concentration reagents in seconds and enabling multiple rounds of staining of the same samples. It is non-toxic and functional in both dispersed cells and intact living tissues. We demonstrate multiparameter (n ≥ 14), non-disruptive imaging of murine peripheral blood mononuclear and bone marrow cells to profile cellular differentiation. We also show longitudinal multiplexed imaging of bone marrow progenitor cells as they develop into neutrophils over 6 days and real-time multiplexed cycling of living mouse hepatic tissues. We anticipate that SAFE will find broad utility for investigating physiologic dynamics in living systems.
在复杂的生物体中,细胞会经历频繁的功能变化,但很少有方法可以全面纵向分析活细胞。在这里,我们介绍了一种用于对活细胞进行免疫荧光多重时空成像的方法——分裂加速荧光团交换(scission-accelerated fluorophore exchange,SAFE)。SAFE 使用快速生物正交点击化学从标记细胞的表面去除免疫荧光信号,在几秒钟内循环使用纳摩尔浓度的试剂,从而可以对同一样本进行多次染色。该方法无毒,且在分散细胞和完整的活体组织中均具有功能。我们通过多参数(n≥14)、非破坏性成像,对小鼠外周血单核细胞和骨髓细胞进行分析,以研究细胞分化。我们还展示了骨髓祖细胞在 6 天内发育成中性粒细胞的纵向多重成像,以及活体小鼠肝组织的实时多重循环。我们预计 SAFE 将广泛用于研究活体系统中的生理动态。