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一种用于生物成像的荧光聚甲川染料的通用开发策略。

A general strategy to develop fluorogenic polymethine dyes for bioimaging.

机构信息

Department of Chemistry, University of Zurich, Zurich, Switzerland.

École Polytechnique Fédérale de Lausanne (EPFL), Institute of Chemical Sciences and Engineering, Lausanne, Switzerland.

出版信息

Nat Chem. 2024 Jan;16(1):28-35. doi: 10.1038/s41557-023-01367-y. Epub 2023 Nov 27.

Abstract

Fluorescence imaging is an invaluable tool to study biological processes and further progress depends on the development of advanced fluorogenic probes that reach intracellular targets and label them with high specificity. Excellent fluorogenic rhodamine dyes have been reported, but they often require long and low-yielding syntheses, and are spectrally limited to the visible range. Here we present a general strategy to transform polymethine compounds into fluorogenic dyes using an intramolecular ring-closure approach. We illustrate the generality of this method by creating both spontaneously blinking and no-wash, turn-on polymethine dyes with emissions across the visible and near-infrared spectrum. These probes are compatible with self-labelling proteins and small-molecule targeting ligands, and can be combined with rhodamine-based dyes for multicolour and fluorescence lifetime multiplexing imaging. This strategy provides access to bright, fluorogenic dyes that emit at wavelengths that are more red-shifted compared with those of existing rhodamine-based dyes.

摘要

荧光成像是研究生物过程的一种非常有价值的工具,进一步的进展取决于开发能够到达细胞内靶标并以高特异性对其进行标记的先进荧光探针。已经报道了一些出色的荧光素罗丹明染料,但它们通常需要冗长且产量低的合成,并且光谱仅限于可见范围。在这里,我们提出了一种使用分子内环合方法将聚甲川化合物转化为荧光染料的通用策略。我们通过创建自发闪烁和无需洗涤的开-关聚甲川染料,证明了该方法的通用性,这些染料的发射涵盖了可见光谱和近红外光谱。这些探针与自标记蛋白和小分子靶向配体兼容,并且可以与罗丹明基染料结合用于多色和荧光寿命多重成像。该策略提供了对与现有的罗丹明基染料相比发射波长红移的明亮荧光染料的访问。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/92dd/10774129/272389c455c4/41557_2023_1367_Fig1_HTML.jpg

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