Morningside Laboratory for Chemical Biology, Department of Chemistry, The University of Hong Kong, Pokfulam Road, Hong Kong, China.
J Am Chem Soc. 2020 Oct 7;142(40):17156-17166. doi: 10.1021/jacs.0c08068. Epub 2020 Sep 16.
Chemical modification of proteins in living cells permits valuable glimpses into the molecular interactions that underpin dynamic cellular events. While genetic engineering methods are often preferred, selective labeling of endogenous proteins in a complex intracellular milieu with chemical approaches represents a significant challenge. In this study, we report novel diazocoumarin compounds that can be photoactivated by visible (430-490 nm) and near-infrared light (800 nm) irradiation to photo-uncage reactive carbene intermediates, which could subsequently undergo an insertion reaction with concomitant fluorescence "turned on". With these new molecules in hand, we have developed a new approach for rapid, selective, and fluorogenic labeling of endogenous protein in living cells. By using CA-II and eDHFR as model proteins, we demonstrated that subcellular localization of proteins can be precisely visualized by live-cell imaging and protein levels can be reliably quantified in multiple cell types using flow cytometry. Dynamic protein regulations such as hypoxia-induced CA-IX accumulation can also be detected. In addition, by two-photon excitation with an 800 nm laser, cell-selective labeling can also be achieved with spatially controlled irradiation. Our method circumvents the cytotoxicity of UV light and obviates the need for introducing external reporters with "click chemistries". We believe that this approach of fluorescence labeling of endogenous protein by bioorthogonal photoirradiation opens up exciting opportunities for discoveries and mechanistic interrogation in chemical biology.
在活细胞中对蛋白质进行化学修饰,可以让我们深入了解构成动态细胞事件的分子相互作用。虽然遗传工程方法通常更受青睐,但在复杂的细胞内环境中,用化学方法选择性地标记内源性蛋白质仍然是一个重大挑战。在这项研究中,我们报告了新型重氮环丁烷化合物,它们可以通过可见光(430-490nm)和近红外光(800nm)照射被光解,产生反应性卡宾中间体,随后可以与伴随的荧光“开启”进行插入反应。有了这些新分子,我们开发了一种新的方法,可以快速、选择性地对活细胞内的内源性蛋白质进行荧光标记。我们以 CA-II 和 eDHFR 作为模型蛋白,证明了可以通过活细胞成像精确观察蛋白质的亚细胞定位,并且可以使用流式细胞术在多种细胞类型中可靠地定量蛋白质水平。还可以检测到动态蛋白质调节,如缺氧诱导的 CA-IX 积累。此外,通过 800nm 激光的双光子激发,可以实现具有空间控制照射的细胞选择性标记。我们的方法避免了紫外光的细胞毒性,并且无需使用“点击化学”引入外部报告分子。我们相信,这种通过生物正交光照射对内源性蛋白质进行荧光标记的方法,为化学生物学中的发现和机制研究开辟了令人兴奋的机会。