| Literature DB >> 30843301 |
Guangfu Feng1, Xingyu Luo1, Xu Lu1, Shiyi Xie1, Lu Deng1, Wenyuan Kang1, Fang He1, Jiaheng Zhang1, Chunyang Lei1, Bin Lin2, Yan Huang1, Zhou Nie1, Shouzhuo Yao1.
Abstract
The comprehensive understanding of the mechanisms underlying the interaction of cells with their membrane microenvironment is of great value for fundamental biological research; however, tracking biomolecules on cell surfaces with high temporal and spatial resolution remains a challenge. Herein, a modular strategy is presented for the construction of cell surface DNA-based sensors by engineering DNA motifs and synthetic cofactors. In this strategy, a stimuli-reactive organic molecule is employed as the cofactor for the DNA motif, and the self-assembly of them forms a FRET-based holo DNA-based sensor. With the use of the DNA-based sensors, the versatility of this modular strategy has been demonstrated in the ratiometric imaging of the cellular extrusion process of endogenous signaling molecules, including sulfur dioxide derivatives and nitric oxide.Entities:
Keywords: DNA-based sensor; bioimaging; nucleic acids; signaling molecules; synthetic cofactor
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Year: 2019 PMID: 30843301 DOI: 10.1002/anie.201901320
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336