Gunasekara Hirushi, Cheng Yu-Shiuan, Perez-Silos Vanessa, Zevallos-Morales Alejandro, Abegg Daniel, Burgess Alyssa, Gong Liang-Wei, Minshall Richard D, Adibekian Alexander, Murga-Zamalloa Carlos, Ondrus Alison E, Hu Ying S
Department of Chemistry, College of Liberal Arts and Sciences, University of Illinois Chicago, Chicago, IL, 60607, USA.
Department of Pathology, College of Medicine, University of Illinois Chicago, Chicago, IL, 60612, USA.
Nat Commun. 2025 Apr 15;16(1):3584. doi: 10.1038/s41467-025-58779-2.
Dynamic protein distribution within and across the plasma membrane is pivotal in regulating cell communication. However, rapid, high-density labeling methods for multiplexed live imaging across diverse cell types remain scarce. Here, we demonstrate N-hydroxysuccinimide (NHS)-ester-based amine crosslinking of fluorescent dyes to uniformly label live mammalian cell surface proteins. Using model cell systems, we capture previously elusive membrane topology and cell-cell interactions. Live imaging shows transient membrane protein accumulation at cell-cell contacts and bidirectional migration patterns guided by membrane fibers in DC2.4 dendritic cells. Multiplexed superresolution imaging reveals the biogenesis of membrane tunneling nanotubes that facilitate intercellular transfer in DC2.4 cells, and caveolin 1-dependent endocytosis of insulin receptors in HEK293T cells. 3D superresolution imaging reveals membrane topology remodeling in response to stimulation, generation of microvesicles, and phagocytic activities in Jurkat T cells. Furthermore, NHS-labeling remains stable in vivo, enabling visualization of intercellular transfer among splenocytes using a T cell lymphoma mouse model.
质膜内和跨质膜的动态蛋白质分布在调节细胞通讯中起关键作用。然而,用于多种细胞类型的多重活细胞成像的快速、高密度标记方法仍然很少。在这里,我们展示了基于N-羟基琥珀酰亚胺(NHS)酯的荧光染料胺交联,以均匀标记活的哺乳动物细胞表面蛋白。使用模型细胞系统,我们捕捉到了以前难以捉摸的膜拓扑结构和细胞间相互作用。活细胞成像显示,在DC2.4树突状细胞中,膜蛋白在细胞间接触处短暂积累,并由膜纤维引导双向迁移模式。多重超分辨率成像揭示了促进DC2.4细胞间转移的膜隧道纳米管的生物发生,以及HEK293T细胞中胰岛素受体的小窝蛋白1依赖性内吞作用。三维超分辨率成像揭示了Jurkat T细胞中响应刺激的膜拓扑结构重塑、微泡的产生和吞噬活性。此外,NHS标记在体内保持稳定,使用T细胞淋巴瘤小鼠模型能够可视化脾细胞之间的细胞间转移。