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一种用于高信噪比细胞内活细胞成像的荧光 TMP 标签。

A fluorogenic TMP-tag for high signal-to-background intracellular live cell imaging.

机构信息

Department of Chemistry, Columbia University, 550 West 120th Street, MC 4854, NWC Building, New York, New York 10027, United States.

出版信息

ACS Chem Biol. 2013 Aug 16;8(8):1704-12. doi: 10.1021/cb300657r. Epub 2013 Jun 19.

Abstract

Developed to complement the use of fluorescent proteins in live cell imaging, chemical tags enjoy the benefit of modular incorporation of organic fluorophores, opening the possibility of high photon output and special photophysical properties. However, the theoretical challenge in using chemical tags as opposed to fluorescent proteins for high-resolution imaging is background noise from unbound and/or nonspecifically bound ligand-fluorophore. We envisioned we could overcome this limit by engineering fluorogenic trimethoprim-based chemical tags (TMP-tags) in which the fluorophore is quenched until binding with E. coli dihydrofolate reductase (eDHFR)-tagged protein displaces the quencher. Thus, we began by building a nonfluorogenic, covalent TMP-tag based on a proximity-induced reaction known to achieve rapid and specific labeling both in vitro and inside of living cells. Here we take the final step and render the covalent TMP-tag fluorogenic. In brief, we designed a trimeric TMP-fluorophore-quencher molecule (TMP-Q-Atto520) with the quencher attached to a leaving group that, upon TMP binding to eDHFR, would be cleaved by a cysteine residue (Cys) installed just outside the binding pocket of eDHFR. We present the in vitro experiments showing that the eDHFR:L28C nucleophile cleaves the TMP-Q-Atto520 rapidly and efficiently, resulting in covalent labeling and remarkable fluorescence enhancement. Most significantly, while only our initial design, TMP-Q-Atto520 achieved the demanding goal of not only labeling highly abundant, localized intracellular proteins but also less abundant, more dynamic cytoplasmic proteins. These results suggest that the fluorogenic TMP-tag can significantly impact high-resolution live cell imaging and further establish the potential of proximity-induced reactivity and organic chemistry more broadly as part of the growing toolbox for synthetic biology and cell engineering.

摘要

为了补充荧光蛋白在活细胞成像中的应用,化学标签具有将有机荧光团模块化整合的优势,从而有可能实现高光子输出和特殊光物理特性。然而,与荧光蛋白相比,使用化学标签进行高分辨率成像的理论挑战在于未结合和/或非特异性结合的配体-荧光团的背景噪声。我们设想,我们可以通过工程化基于三氨嘧啶的荧光生成化学标签(TMP 标签)来克服这一限制,在该标签中,荧光团被猝灭,直到与标记有大肠杆菌二氢叶酸还原酶(eDHFR)的蛋白质结合的配体-荧光团置换猝灭剂。因此,我们首先构建了一种基于近程诱导反应的非荧光共价 TMP 标签,该反应已知可在体外和活细胞内实现快速和特异性标记。在这里,我们迈出了最后一步,使共价 TMP 标签具有荧光性。简而言之,我们设计了一种三聚体 TMP-荧光团-猝灭剂分子(TMP-Q-Atto520),其中猝灭剂连接到一个离去基团上,该基团在 TMP 与 eDHFR 结合后,会被安装在 eDHFR 结合口袋外部的半胱氨酸残基(Cys)切割。我们展示了体外实验结果,表明 eDHFR:L28C 亲核试剂能快速有效地切割 TMP-Q-Atto520,导致共价标记和显著的荧光增强。最重要的是,虽然只是我们的初步设计,但 TMP-Q-Atto520 不仅实现了标记高度丰富、本地化的细胞内蛋白质的苛刻目标,而且还实现了标记丰度较低、更具动态性的细胞质蛋白质的目标。这些结果表明,荧光生成 TMP 标签可以显著影响高分辨率活细胞成像,并进一步确立了近程诱导反应和有机化学的潜力,作为合成生物学和细胞工程不断增长的工具包的一部分。

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