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Optimizing the SYBR green related cyanine dye structure to aim for brighter nucleic acid visualization

Authors :
Johanna M. Alaranta
Khai-Nghi Truong
María Francisca Matus
Sami A. Malola
Kari T. Rissanen
Sailee S. Shroff
Varpu S. Marjomäki
Hannu J. Häkkinen
Tanja M. Lahtinen
Source :
Dyes and Pigments. 208:110844
Publication Year :
2022
Publisher :
Elsevier BV, 2022.

Abstract

In recent years, the studies of RNA and its use for the development of RNA based vaccines have increased drastically. Although cyanine dyes are commonly used probes for studying nucleic acids, in a wide range of applications, there is still a growing need for better and brighter dyes. To meet this demand, we have systematically studied the structure of SYBR green-related cyanine dyes to gain a deeper understanding of their interactions with biomolecules especially how they interact with nucleic acids and the structural components which makes them strongly fluorescent. Herein, five new dyes were synthesized, and their photophysical properties were evaluated. Observations of photophysical characteristics were compared to calculations by using density functional theory in its ground state and time-dependent form to model the optical absorption spectra and excited state properties of the selected molecules. Single crystal X-ray crystal structures of five cyanine dyes were determined and the interactions of the cyanine dye-DNA complex were studied by using molecular docking and molecular dynamics calculations. Three molecular structural features were discovered: a) removing the benzene ring from the thiazolium moiety of the dye lowers the fluorescence drastically, and that the quantum yield can be enhanced, therefore increasing the fluorescence, by b) incorporating methanethiol substituent at the quinoline moiety instead of dimethylamine or c) changing the thiazolium moiety to an oxazolium moiety. peerReviewed

Details

ISSN :
01437208
Volume :
208
Database :
OpenAIRE
Journal :
Dyes and Pigments
Accession number :
edsair.doi.dedup.....3c0830c2cfba85f80ca4bf0ed58a2a11
Full Text :
https://doi.org/10.1016/j.dyepig.2022.110844